Showing posts with label Electric Grid. Show all posts
Showing posts with label Electric Grid. Show all posts

Some of the Lights On

SUBHEAD: We should be redefining Energy Security as keeping at least "Some of the Lights On".

By Kris De Decker on 10 December 2018 for Low-Tech Magazine -
(https://www.lowtechmagazine.com/2018/12/keeping-some-of-the-lights-on-redefining-energy-security.html)


Image above: Keeping some of the lightbulbs on is better than all or nothing. From (http://www.womeninaction.co.za/be-different-to-make-a-difference/).

What is Energy Security?
What does it mean for a society to have “energy security”? Although there are more than forty different definitions of the concept, they all share the fundamental idea that energy supply should always meet energy demand. This also implies that energy supply needs to be constant – there can be no interruptions in the service. [1-4]

For example, the International Energy Agency (IEA) defines energy security as “the uninterrupted availability of energy sources at an affordable price”, the US Department of Energy and Climate Change (DECC) defines the concept as meaning that “the risks of interruption to energy supply are low”, and the EU defines it as a “stable and abundant supply of energy”. [5-7]

Historically, energy security was achieved by securing access to forests or peat bogs for thermal energy, and to human, animal, wind or water power sources for mechanical energy. With the arrival of the Industrial Revolution, energy security came to depend on the supply of fossil fuels.

As a theoretical concept, energy security is most closely related to the oil crises from the 1970s, when embargoes and price manipulations limited oil supply to Western nations.

As a result, most industrialised societies still stockpile oil reserves that are equivalent to several months of consumption.

Although oil remains as vital to industrial economies as it was in the 1970s, mainly for transportation and agriculture, it’s now recognised that energy security in modern societies also depends on other infrastructures, such as those supplying gas, electricity, and even data.

Furthermore, these infrastructures increasingly interconnect and depend on each other.

For example, gas is an important fuel for power production, while the power grid is now required to operate gas pipelines. Power grids are needed to run data networks, and data networks are now needed to run power grids.

This article investigates the concept of energy security by focusing on the power grid, which has become just as vital to industrial societies as oil. Moreover, electrification is seen as a way to decrease dependency on fossil fuels – think electric vehicles, heat pumps, and wind turbines.

The “security” or “reliability” of a power grid can be measured precisely by indicators of continuity such as the “Loss-of-Load Probability” (LOLP), and the “System Average Interruption Duration Index” (SAIDI). Using these indicators, one can only conclude that power grids in industrial societies are very secure.

For example, in Germany, power is available for 99.996% of the time, which corresponds to an interruption in service of less than half an hour per customer per year. [8]

Even the worst performing countries in Europe (Latvia, Poland, Lithuania) have supply shortages of only eight hours per customer per year, which corresponds to a reliability of 99.90%. [8]

The US power grid is in between these values, with supply interruptions of less than four hours per customer per year (99.96% reliability). [9]

How Secure is a Renewable Power Grid?

In the current operation of infrastructures, the paradigm is that consumers could and should have access to as much electricity, gas, oil, data or water as they want, anytime they want it, for as long as they want it.

The only requirement is that they pay the bill. Looking at the power sector, this vision of energy security is quite problematic, for several reasons.

First of all, most energy sources from which electricity is made are finite – and maintaining a steady supply of something that’s finite is of course impossible. In the long run, the strategy to maintain energy security is certainly doomed to fail. In the shorter term, it may disrupt the climate and provoke armed conflicts.

The International Energy Agency (IEA), which was set up following the first oil crisis in the early 1970s, encourages the use of renewable energy sources in order to diversify the energy supply and improve energy security in the long term.

A renewable power system is not dependent on foreign energy imports nor vulnerable to fuel price manipulations – which are the main worries in an energy infrastructure that is largely based on fossil fuels.

Of course, solar panels and wind turbines have limited lifetimes and need to be manufactured, which also requires resources that could come from abroad or which can become depleted. But, once they are installed, renewable power systems are “secure” in a way and for a period of time that fossil fuels (and atomic energy) are not.

Furthermore, solar and wind power provide more security concerning physical failure or sabotage, even more so when renewable power production is decentralised. Renewable power plants also have lower CO2-emissions, and the extreme weather events caused by climate change are a risk to energy security as well.

However, in spite of all these advantages, renewable energy sources pose fundamental challenges to the current understanding of energy security.

Most importantly, the renewable energy sources with the largest potential – sun and wind – are only intermittently available, depending on the weather and the seasons.

This means that solar and wind power don’t match the criterium that all definitions of energy security consider to be essential: the need for an uninterrupted, unlimited supply of power.

The reliability of a power grid with a high share of solar and wind power would be significantly below today’s standards for continuity of service. [10-14]

In such a renewable power grid, a 24/7 power supply can only be maintained at very high costs, because it requires an extensive infrastructure for energy storage, power transmission, and excess generation capacity.

This additional infrastructure risks making a renewable power grid unsustainable, because above a certain threshold, the fossil fuel energy used for building, installing and maintaining this infrastructure becomes higher than the fossil fuel energy saved by the solar panels and the wind turbines.

Intermittency is not the only disadvantage of renewable energy sources. Although many media and environmental organisations have painted a picture of solar and wind power as abundant sources of energy (“The sun delivers more energy to Earth in an hour than the world consumes in a year”), reality is more complex.

The “raw” supply of solar (and wind) energy is enormous indeed.

However, because of their very low power density, to convert this energy supply into a useful form solar panels and wind turbines require magnitudes of order more space and materials compared to thermal power plants – even if the mining and distribution of fuels is included. [15]

Therefore, a renewable power grid cannot guarantee that consumers have access to as much electricity as they want, even if the weather conditions are optimal.


How Secure is an Off-the-Grid Power System?
Today’s energy policies related to electricity try to reconcile three aims: an uninterrupted and limitless supply of power, affordability of electricity prices, and environmental sustainability.

A power grid that is mainly based on fossil fuels and atomic energy cannot achieve the aim of environmental sustainability, and it can only achieve the other goals as long as foreign suppliers do not cut off supplies or raise energy prices (or as long as national or international reserves are not depleted).

However, a renewable power grid cannot reconcile these three goals either. To achieve an unlimited 24/7 supply of power, the infrastructure needs to be oversized, which makes it expensive and unsustainable.

Without that infrastructure, a renewable power grid could be affordable and sustainable, but it could never offer an unlimited 24/7 supply of power.

Consequently, if we want a power infrastructure that is affordable and sustainable, we need to redefine the concept of energy security – and question the criterium of an unlimited and uninterrupted power supply.

If we look beyond the typical large-scale central infrastructures in industrial societies, it becomes clear that not all provisioning systems offer a limitless supply of resources.

Off-the-Grid microgeneration – the local production and storage of electricity using batteries and solar PV panels or wind turbines – is one example.

In principle, off-the-grid systems can be sized in such a way that they are “always on”. This can be done by following the “worst-month method”, which oversizes generation and storage capacity so that supply can meet demand even during the shortest and darkest days of the year.

However, just like in an imaginary large-scale renewable power grid, matching supply to demand at all times makes an off-the-grid system very costly and unsustainable, especially in high seasonality climates. [16-18]

Therefore, most off-the-grid systems are sized according to a method that aims for a compromise between reliability, economic cost and sustainability. The “loss-of-load probability sizing method” specifies a number of days per year that supply does not match demand. [19-21]

n other words, the system is sized, not only according to a projected energy demand, but also according to the available budget and/or the available space.

Sizing an off-the-grid power system in this way generates significant cost reductions, even if “reliability” is reduced just a little bit.

For example, a calculation for an off-the-grid house in Spain shows that decreasing the reliability from 99.75% to 99.00% produces a 60% cost reduction, with similar benefits for sustainability. Supply would be interrupted for 87.6 hours per year, compared to 22 hours in the higher reliability system. [16]

According to the current understanding of energy security, off-the-grid power systems that are sized in this way are a failure: energy supply doesn’t always meet energy demand.

However, off-gridders don’t seem to complain about a lack of energy security, on the contrary. There’s a simple reason for this: they adapt their energy demand to a limited and intermittent power supply.

In their 2015 book Off-the-Grid: Re-Assembling Domestic Life, Phillip Vannini and Jonathan Taggart document their travels across Canada to interview about 100 off-the-grid households. [22]

Among their most important observations is that voluntary off-gridders use less electricity overall and routinely adapt their energy demand to the weather and the seasons.

For example, washing machines, vacuum cleaners, power tools, toasters or videogame consoles are not used at all, or they are only used during periods of abundant energy, when batteries can accommodate no further charge.

If the sky is overcast, off-gridders act differently to draw less power and have some more left over for the day after.

Vannini and Taggart also observe that voluntary off-gridders seem to feel perfectly happy with levels of lighting or heating that are different from the standards that many in the western world have come to expect. Often, this shows itself in concentrating activities around more localised sources of heat and light. [22]

Similar observations can be made in places where people – involuntarily – depend on infrastructures that are not always on.

If centralised water, electricity and data networks are present in less industrialised countries, they are often characterised by regular and irregular interruptions in the supply. [23-25]

However, in spite of the very low reliability of these infrastructures – according to common indicators of continuity – life goes on.

Daily household routines are shaped around disruptions of supply systems, which are viewed as normal and a largely accepted part of life.

For example, if electricity, water or Internet are only available during certain times of the day, household tasks or other activities are planned accordingly. People also use less energy overall: the infrastructure simply doesn’t allow for a resource-intensive lifestyle. [23]
 
More Reliable, Less Secure?

The very high “reliability” of power grids in industrial societies is justified by calculating the “value of lost load” (VOLL), which compares the financial loss due to power shortages to the extra investment costs to avoid these shortages. [1][10] [26-29]

However, the value of lost load is highly dependent on how society is organised. The more it depends on electricity, the higher the financial losses due to power shortages will be.

Current definitions of energy security consider supply and demand to be unrelated, and focus almost entirely on securing energy supply.

However, alternative forms of power infrastructures like those described above show that people adapt and match their expectations to a power supply that is limited and not always on. In other words, energy security can be improved, not just by increasing reliability, but also by reducing dependency on energy.

Demand and supply are also interlinked, and mutually influence each other, in 24/7 power systems – but with the opposite effect. Just like “unreliable” off-the-grid power infrastructures foster lifestyles that are less dependent on electricity, “reliable” infrastructures foster lifestyles that are increasingly dependent on electricity.

In their 2018 book Infrastructures and Practices: the Dynamics of Demand in Networked Societies, Olivier Coutard and Elizabeth Shove argue that an unlimited and uninterrupted power supply has enabled people in industrial societies to adopt a multitude of power dependent technologies – such as washing machines, air conditioners, refrigerators, automatic doors, or 24/7 mobile internet access – which become “normal” and central to everyday life.

At the same time, alternative ways of doing things – such as washing clothes by hand, storing food without electricity, keeping cool without air-conditioning, or navigating and communicating without mobile phones – have withered away, or are withering away. [30]

As a result, energy security is in fact higher in off-the-grid power systems and “unreliable” central power infrastructures, while industrial societies are the weakest and most fragile in the face of supply interruptions.

What is generally assumed to be a proof of energy security – an unlimited and uninterrupted power supply – is actually making industrial societies ever more vulnerable to supply interruptions: people increasingly lack the skills and the technology to function without a continuous power supply.

Redefining Energy Security
To arrive to a more accurate definition of energy security requires the concept to be defined, not in terms of commodities like kilowatt-hours of electricity, but in terms of energy services, social practices, or basic needs. [1]

People don’t need electricity in itself. What they need, is to store food, wash clothes, open and close doors, communicate with each other, move from one place to another, see in the dark, and so on.

All these things can be achieved either with or without electricity, and in the first case, with more or less electricity.

Defined in this way, energy security is not just about securing the supply of electricity, but also about improving the resilience of the society, so that it becomes less dependent on a continuous supply of power.

This includes the resilience of people (do they have the skills to do things without electricity?), the resilience of devices and technological systems (can they handle an intermittent power supply?), and the resilience of institutions (is it legal to operate a power grid that is not always on?).

Depending on the resilience of the society, a disruption of the power supply may or may not lead to a disruption of energy services or social practices.

For example, although our food distribution system is dependent on a cold chain that requires a continuous power supply, there are many alternatives.

We could adapt refrigerators to an irregular power supply by insulating them much better, we could reintroduce cold cellars (which keep food fresh without electricity), or we could relearn older methods of food storage, like fermentation.

We could also improve people’s skills in terms of fresh cooking, switch to diets based on ingredients that don’t need cold storage, and encourage local daily shopping over weekly trips to large supermarkets.

If we look at energy security in a more holistic way, taking into account both supply and demand, it quickly becomes clear that energy security in industrial societies continues to deteriorate. We keep delegating more and more tasks to machines, computers and large-scale infrastructures, thus increasing our dependency on electricity.

Furthermore, the Internet is becoming just as essential as the power grid, and trends like cloud computing, the Internet of Things, and self-driving cars are all based on several interconnected layers of continuously operating infrastructures.


Because demand and supply influence each other, we come to a counter-intuitive conclusion: to improve energy security, we need to make the power grid less reliable. This would encourage resilience and substitution, and thus make industrial societies less vulnerable to supply interruptions.

Coutard and Shove argue that “it would make sense to pay more attention to opportunities for innovation that are opened when large network systems are weakened and abandoned, or when they become less reliable”. They add that the experiences of voluntary off-gridders “provide some insights into the types of configuration at stake”. [30]

Arguing for a less reliable power supply is sure to be controversial. In fact, “Keeping the lights on” is a phrase that is often used to justify energy reforms such as building more atomic plants, or keeping them in operation past their planned lifetimes.

To achieve real energy security, “keeping the lights on” should be replaced by phrases like “keeping some of the lights on”, “which lights should we turn off next?”, or “what’s wrong with a bit more dark?”. [31]

Obviously, a less reliable energy supply would bring fundamental changes to routines and technologies, whether it is in households, factories, transport systems, or communications networks – but that’s exactly the point. Present ways of life in industrial societies are simply not sustainable.

Sources
[1] Winzer, Christian. "Conceptualizing energy security." Energy policy 46 (2012): 36-48. https://www.repository.cam.ac.uk/bitstream/handle/1810/242060/cwpe1151.pdf?sequence=1&isAllowed=y

[2] Sovacool, Benjamin K., and Ishani Mukherjee. "Conceptualizing and measuring energy security: A synthesized approach." Energy 36.8 (2011): 5343-5355. https://relooney.com/NS4053-Energy/00-Energy-Security_1.pdf

[3] Kruyt, Bert, et al. "Indicators for energy security." Energy policy37.6 (2009): 2166-2181. https://www.sciencedirect.com/science/article/pii/S0301421509000883

[4] Cherp, Aleh, and Jessica Jewell. "The concept of energy security: Beyond the four As." Energy Policy 75 (2014): 415-421. https://www.sciencedirect.com/science/article/pii/S0301421514004960

5] Energy security, International Energy Agency. https://www.iea.org/topics/energysecurity/

[6] Lucas, Javier Noel Valdés, Gonzalo Escribano Francés, and Enrique San Martín González. "Energy security and renewable energy deployment in the EU: Liaisons Dangereuses or Virtuous Circle?." Renewable and Sustainable Energy Reviews 62 (2016): 1032-1046. https://www.researchgate.net/profile/Javier_Valdes4/publication/303361228_Energy_security_and_renewable_energy_deployment_in_the_EU_Liaisons_Dangereuses_or_Virtuous_Circle/links/5a536f45458515e7b72eab26/Energy-security-and-renewable-energy-deployment-in-the-EU-Liaisons-Dangereuses-or-Virtuous-Circle.pdf

[7] Strambo, Claudia, Måns Nilsson, and André Månsson. "Coherent or inconsistent? Assessing energy security and climate policy interaction within the European Union." Energy Research & Social Science 8 (2015): 1-12. https://www.sciencedirect.com/science/article/pii/S221462961500047X

[8] CEER Benchmarking Report 6.1 on the Continuity of Electricity and Gas Supply. Data update 2015/2016. Ref: C18-EQS-86-03. 26-July-2018. Council of European Energy Regulators. https://www.ceer.eu/documents/104400/-/-/963153e6-2f42-78eb-22a4-06f1552dd34c

[9] Average frequency and duration of electric distribution outages vary by states. U.S. Energy Information Administration (EIA). April 5, 2018. https://www.eia.gov/todayinenergy/detail.php?id=35652


[10] Röpke, Luise. "The development of renewable energies and supply security: a trade-off analysis." Energy policy 61 (2013): 1011-1021. https://www.econstor.eu/bitstream/10419/73854/1/IfoWorkingPaper-151.pdf

[11] "Evolutions in energy conservation policies in the time of renewables", Nicola Lablanca, Isabella Maschio, Paolo Bertoldi, ECEEE 2015 Summer Study -- First Fuel Now. https://www.eceee.org/library/conference_proceedings/eceee_Summer_Studies/2015/9-dynamics-of-consumption/evolutions-in-energy-conservation-policies-in-the-time-of-renewables/

[12] “How not to run a modern society on solar and wind power alone”, Kris De Decker, Low-tech Magazine, September 2017.

[13] Nedic, Dusko, et al. Security assessment of future UK electricity scenarios. Tyndall Centre for Climate Change Research, 2005. http://citeseerx.ist.psu.edu/viewdoc/download?doi=10.1.1.461.4834&rep=rep1&type=pdf

[14] Zhou, P., R. Y. Jin, and L. W. Fan. "Reliability and economic evaluation of power system with renewables: A review." Renewable and Sustainable Energy Reviews 58 (2016): 537-547. https://www.sciencedirect.com/science/article/pii/S136403211501727X

[15] Smil, Vaclav. Power density: a key to understanding energy sources and uses. MIT Press, 2015. https://mitpress.mit.edu/books/power-density

[16] Landeira, Cristina Cabo, Ángeles López-Agüera, and Fernando Núñez Sánchez. "Loss of Load Probability method applicability limits as function of consumption types and climate conditions in stand-alone PV systems." (2018). https://www.researchgate.net/profile/Cristina_Cabo2/publication/324080184_Loss_of_Load_Probability_method_applicability_limits_as_function_of_consumption_types_and_climate_conditions_in_stand-alone_PV_systems/links/5abca9fa45851584fa6e1efd/Loss-of-Load-Probability-method-applicability-limits-as-function-of-consumption-types-and-climate-conditions-in-stand-alone-PV-systems.pdf

[17] Singh, S. Sanajaoba, and Eugene Fernandez. "Method for evaluating battery size based on loss of load probability concept for a remote PV system." Power India International Conference (PIICON), 2014 6th IEEE. IEEE, 2014. https://ieeexplore.ieee.org/abstract/document/7117729

[18] How sustainanle is stored sunlight? Kris De Decker, Low-tech Magazine.

[19] Chapman, R. N. "Sizing Handbook for Stand-Alone Photovoltaic." Storage Systems, Sandia Report, SAND87-1087, Albuquerque (1987). https://prod.sandia.gov/techlib-noauth/access-control.cgi/1987/871087.pdf

[20] Posadillo, R., and R. López Luque. "A sizing method for stand-alone PV installations with variable demand." Renewable Energy33.5 (2008): 1049-1055. https://www.sciencedirect.com/science/article/pii/S096014810700184X

[21] Khatib, Tamer, Ibrahim A. Ibrahim, and Azah Mohamed. "A review on sizing methodologies of photovoltaic array and storage battery in a standalone photovoltaic system." Energy Conversion and Management 120 (2016): 430-448. https://staff.najah.edu/media/published_research/2017/01/19/A_review_on_sizing_methodologies_of_photovoltaic_array_and_storage_battery_in_a_standalone_photovoltaic_system.pdf

[22] Vannini, Phillip, and Jonathan Taggart. Off the grid: re-assembling domestic life. Routledge, 2014. http://lifeoffgrid.ca/off-grid-living-the-book/

[23] "Materialising energy and water resources in everyday practices: insights for securing supply systems", Yolande Strengers, Cecily Maller, in "Global Environmental Change 22 (2012), pp. 754-763. http://researchbank.rmit.edu.au/view/rmit%3A17990/n2006038376.pdf

[24] Pillai, N. "Loss of Load Probability of a Power System." (2008). https://mpra.ub.uni-muenchen.de/6953/1/MPRA_paper_6953.pdf

[25] Al-Rubaye, Mohannad Jabbar Mnati, and Alex Van den Bossche. "Decades without a real grid: a living experience in Iraq." International Conference on Sustainable Energy and Environment Sensing (SEES 2018). 2018. https://biblio.ugent.be/publication/8566224

[26] Telson, Michael L. "The economics of alternative levels of reliability for electric power generation systems." The Bell Journal of Economics (1975): 679-694. https://www.jstor.org/stable/3003250

[27] Schröder, Thomas, and Wilhelm Kuckshinrichs. "Value of lost load: an efficient economic indicator for power supply security? A literature review." Frontiers in energy research 3 (2015): 55. https://www.frontiersin.org/articles/10.3389/fenrg.2015.00055/full

[28] Ratha, Anubhav, Emil Iggland, and Goran Andersson. "Value of Lost Load: How much is supply security worth?." Power and Energy Society General Meeting (PES), 2013 IEEE. IEEE, 2013. https://www.ethz.ch/content/dam/ethz/special-interest/itet/institute-eeh/power-systems-dam/documents/SAMA/2012/Ratha-SA-2012.pdf

[29] De Nooij, Michiel, Carl Koopmans, and Carlijn Bijvoet. "The value of supply security: The costs of power interruptions: Economic input for damage reduction and investment in networks." Energy Economics 29.2 (2007): 277-295.

[30] Coutard, Olivier, and Elizabeth Shove. "Infrastructures, practices and the dynamics of demand." Infrastructures in Practice. Routledge, 2018. 10-22. https://www.routledge.com/Infrastructures-in-Practice-The-Dynamics-of-Demand-in-Networked-Societies/Shove-Trentmann/p/book/9781138476165

[31] Demand Dictionary of Phrase and Fable, seventeenth edition. Jenny Rinkinen, Elizabeth Shove, Greg Marsden, The Demand Centre, 2018. http://www.demand.ac.uk/wp-content/uploads/2018/07/Demand-Dictionary.pdf


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The Off-Grid Poster Child

SUBHEAD: After the disaster of hurricane Maria, Puerto Rico is ripe to be the place to find stand-alone off-grid living.

By Juan Wilson on 20 September 2018 for Island Breath -
(http://islandbreath.blogspot.com/2018/09/off-grid-poster-child.html)


Image above: Electricity poles and lines lie toppled on the road after Hurricane Maria hit the eastern region of Puerto Rico. Photo: Carlos Giusti. From (https://www.wsj.com/articles/the-truth-about-hurricane-maria-1537129890).

Well before hurricane Maria devastated the island of Puerto Rico on 20 September 2017 the infrastructure of the power grid had deteriorated to the point of fragility not seen elsewhere in America.

That grid was the responsibility of The Puerto Rico Electric Power Authority (PREPA). PREPA is a government-owned corporation of Puerto Rico responsible for electricity generation, power distribution, and power transmission on the island. Hurricane Maria demonstrated that PREPA was a failure and that it would not have the vision or resources needed to serve Puerto Rico.

Without the resources to repair what had been a frail and failing system, Maria provided a death blow to PREPA. The Puerto Rican people tuned to gas operated electrical generators that had been purchased by people who could afford them for the frequent PREPA blackouts. After Maria things got nasty. Neighborhoods strung extension cords between homes in suburban neighborhoods. They got by with less.

There were some isolated small scaled solar photo-voltaic electric systems in place - and they became important. The Wall Street Journal reported (https://www.wired.com/story/puerto-rico-hurricane-maria-recovery/):
In the town rural town of Adjuntas, nestled in the mountains about an hour and a half southwest of San Juan, an NGO dedicated in part to solar power, called Casa Pueblo, became a pillar of the local recovery. 
When the town’s 18,000 residents were cut off from the rest of the island after Maria, the NGO’s solar-­powered radio helped authorities find out which roads were clear and which families were in danger, and attend to emergencies when the central government and federal authorities were not yet responding. 
Casa Pueblo subsequently gave out some 14,000 solar-powered lamps and also offered a solar-charged satellite phone at its offices for locals to use. At any given time, five to 10 people waited to make a call.

Arturo Massol, the associate director of Casa Pueblo and an ardent evangelist for decentralized, renewable energy, described what was happening on the island as “an energy insurrection.” Ordinary Puerto Ricans, he said, had woken up to the fact that when it came to electricity, they would have to look for alternatives.
This is part of a real solution. But that is not the direction that Puerto Rico is going. Instead the US government is planning on financing the privatization of PREPA through the creation of the “Puerto Rico Energy Transformation Administration (PRETA) that would provide guarantees (with US tax payer's money) for private energy corporations to rebuild the Puerto Rican grid. According to Debt Wire (https://www.debtwire.com/info/prepa-federalization-draft-bill-floating-congress)
Still in rough draft form, a bill tentatively titled the “Puerto Rico Energy Stabilization and Hurricane Resiliency Act of 2018” delineates specific steps to have the federal government—via the DOE—take over PREPA, impose a temporary administrator to supersede Puerto Rico’s Energy Commission ratemaking power, establish a corporation to issue restructuring bonds, and create special investment assurance accounts as part of the utility’s ongoing privatization process.
Here on Kauai the failure of privately owned Kauai Electric took a different but similar turn.

Those with long memories know what happened when the privately owned Kauai Electric called it quits. We paid off the "stake holders" a couple hundred million dollars of borrowed money to create a the debt ridden Kauai Island Utility Cooperative (KIUC). We now pay about the highest rates in the country.

Like Puerto Rico, Kauai is a stand alone grid on an isolated island. What energy it produces is all the energy it will have available. To its credit, KIUC has aggressively been adding solar voltaic power generation capacity. But it has not encouraged Solar PV stand alone systems.

Instead it encourages "co-generation"... the placement of PV systems on individual homes to supplement KIUC power generation. Co-gen certainly can reduce KIUC's high price for grid power, but it is, by my observation,  no real incentive to reduce power consumption.

Co-gen also means some resilience capability if the grid goes down because of a natural disaster, electro-magnetic pulse (EMP) or other disaster.

But KIUC suffers from the same vulnerability that Puerto Rico faced when Maria struck. All the power distribution is provided by poles and large hurricane can knock those poles down like a house of cards. That happened on Kauai with hurricane Iniki in 1992. But instead of burying the power distribution lines (as is done in most modern community planning) Kauai Electric simply re-erected the old creosote soaked wooden power poles.

Stand alone solar power systems have several advantages if they are not backed up by a electric grid or fossil fuel powered generator.
  • They absolutely limit the consumption of power to the amount of energy collected from the sun.
  • They require customer awareness of usage and some maintenance encouraging greater self reliance.
  • They reduce overall power consumption by high energy appliances like microwave ovens or air compressors.
  • They are resilient in that only the minority of systems that are hit directly by a disaster are damaged.
  • They wean us from living outside the limitations of energy not supplied by nature where you live.  
What we found was that having multiple independent stand alone PV systems is a real advantage. We stumbled into that situation by slowing adding systems over time. We started with a single panel and added increasingly bigger systems over almost a decade as we gained experience and knowledge.

All our systems use an array of one of two battery types. One type are high capacity 12volt 110amp-hour lead acid deep cycle batteries available on Kauai. The other type are 6v 405 amp-hour AGM (absorbant glass mat) batteries.

There are two AGM systems.

One is attached to our circuit breaker panel-box. This is where KIUC used to hook up. We had KIUC come and take off the meter and wiring to our house. This systems powers all the switches and outlets built into the house.

The second AGM system is attached to a power inverter providing energy for our new refrigerator and freezer. See (http://islandbreath.blogspot.com/2018/09/freezers-up-and-running.html).

The five other systems are smaller for specific tasks using smaller power inverters.
  • One provides counter lighting and strip outlets for our kitchen as well as our guest bathroom.
  • A second one provides lighting and a power strip to our master bedroom and its bathroom.
  • A third one provides lighting and a power strip  (for tool battery charging) in shop/utility room.
  • A fourth provides power for and office computer, wifi system and small appliance batteries.
  • A fifth provides power to a stand-alone shack that serves as a guest house. 
This overlapping redundancy has proved to be valuable. Any one system can go down and we can work around the problem by switching plugs in outlets and/or swapping around compatible batteries.

Redundancy is good. We had a neighbor who went with KIUC co-gen. After about a year the single co-gen system inverter failed and her solar panels were providing nothing to reduce her energy bill. The installer claimed it was out of warranty and not their problem. It took over year to get the system up and working agian.

Looking to the future my advice, as usual, is learn to and act to:
  • Grow your own food
  • Collect your own water
  • Produce your own energy
  • Make and repair what you can.
The alternative is sitting around a fire with pointy sticks.

Distributed nuclear mini-reactors

SUBHEAD: Energy Department teams up with Bill Gates to move mini-nuclear plants into your neighborhood.

By John Siciliano on 23 August 2018 for Washington Examiner -
(https://www.washingtonexaminer.com/policy/energy/energy-department-teams-up-with-bill-gates-to-move-mini-nuclear-plants-to-market)


Image above: Bullshit Alert! Is this what TerraPower showed the Energy Department to get their 2016 $40 million go ahead money. On the TerraPower website this image is labeled "first phase of system-level simulator". To me it looks like somebody closed the windowblinds,  added a soft-warm spotlight on the wall, and found an unemployed busdriver to sit in as a "nuclear engineer" working a touch screen that was ganged with two LCD flat displays for promo purposes.  From (http://terrapower.com/technologies/progress).

The Energy Department is participating in major push with electric utility Southern and a company founded by Microsoft founder Bill Gates to develop small nuclear power reactors that are less expensive and more efficient than their much larger cousins.

“Molten salt reactors are getting a reboot,” the Energy Department tweeted late Wednesday, offering a schematic of a battery-like power plant module that “could power America’s energy.”

On Thursday, the nuclear industry showed its support for the effort. The new nuclear reactors “could be the energy systems of the future” as companies like TerraPower, backed by Gates, are working to build design and build them, the Nuclear Energy Institute tweeted.

The Department of Energy linked to a detailed description of how its Oak Ridge National Laboratory and other federal labs are teaming up with Southern Company, a big coal utility with several nuclear plants, and Gates’ TerraPower to test and develop a type of reactor that uses liquefied sodium “as both coolant and fuel.”


Image above: Old wrinkled billionaire monopolist, Bill Gates, trying to use a nuclear magic wand to save capitalism from energy and resource depletion. From original article.

These liquid-metal reactors are sometimes referred to as nuclear batteries because they are small, self-contained units, which theoretically can be deployed anywhere, although the version being tested at Oak Ridge appears to be one requiring a permanent structure and housing.

TerraPower was awarded a $40 million award by the Energy Department in 2016 to pursue the project.

Almost 60 years after the first designs for this type of reactor were unveiled, several companies are now starting to develop them as “energy systems of the future,” the agency explained.

The Department of Energy has so far invested over $28 million in cost-shared funds for the project to identify and test materials used in the reactor.

Southern Company and TerraPower are currently in the early design phase of testing, supported by Oak Ridge, Idaho National Laboratory, Vanderbilt University and the Electric Power Research Institute, a utility industry-funded research group, to assess the viability of liquid-sodium reactor’s for commercial use.

The companies expect to begin testing at a $20 million test facility in 2019, which will help validate the reactor’s safety systems for license certification by the Nuclear Regulatory Commission.

After testing, Southern Company and TerraPower plan to develop and license a test reactor before developing a 1,100-megawatt prototype by 2030.

See also more news of the collapse of the nuclear energy industry:
Ea O Ka Aina: Tepco Fukushima ice Wall Failing 3/8/18
Ea O Ka Aina: Fukushima Coverup 11/14/17
Ea O Ka Aina: Fukushima Hot particle update 7/27/17
Ea O Ka Aina: E-Fukushima bosses on trial 6/25/17
Ea O Ka Aina: Tepco plan to dump tainted water 7/14/17
Ea O Ka Aina: Stop Fukushima as Olympic venue 5/10/17
Ea O Ka Aina: Continuing Fukushima danger 4/14/17
Ea O Ka Aina: Continuing Fukushima danger 4/14/17
Ea O Ka Aina: Stop Fukushima as Olympic venue 4/8/17 
Ea O Ka Aina: Fukushima worse than ever 2/5/17
Ea O Ka Aina: Fukushima radiation on West Coast 1/13/17
Ea O Ka Aina: Fukushima cleanup cost to double 12/9/16
Ea O Ka Aina: Tokyo damaged by nuclear pellet rain 9/24/16
Ea O Ka Aina: Nuclear Power and Climate Failure 8/24/16
Ea O Ka Aina: High radioactivity in Tokyo 8/22/16
Ea O Ka Aina: Nuclear Blinders 8/18/16
Ea O Ka Aina: Fukushima and Chernobyl 5/29/16
Ea O Ka Aina: Fukushima radiation damages Japan 4/14/16
Ea O Ka Aina: Fukushima's Nuclear Nightmare 3/13/16
Ea O Ka Aina: Fifth Fukushima Anniversary 3/11/16
Green Road Jounral: Balls filled with Uranium, Plutonium 2/19/16
Ea O Ka Aina: Fukushima impacts are ongoing 11/8/15
Ea O Ka Aina: Petroleum and Nuclear Coverups 10/21/15
Ea O Ka Aina: Fukushima Radiation Contamination 10/13/15
Ea O Ka Aina: Radioactive floods damage Japan 9/22/15
Ea O Ka Aina: Fir trees damaged by Fukushima 8/30/15
Ea O Ka Aina: Japan restarts a nuclear plant 8/11/15
Ea O Ka Aina: Fukushima disaster will continue 7/21/15
Ea O Ka Aina: Too many fish in the sea? 6/22/15
Ea O Ka Aina: Fukushima prefecture uninhabitable 6/6/15
Ea O Ka Aina: In case you've forgotten Fukushima 5/27/15
Ea O Ka Aina: Radiation damages top predator bird 4/24/15
Ea O Ka Aina: Fukshima die-offs occurring 4/17/15
Ea O Ka Aina: Fukushima Impact Update 4/13/15
Ea O Ka Aina: Fukushima - the end of atomic power 3/13/15
Ea O Ka Aina: Where is the Fukushima Data? 2/21/15
Ea O Ka Aina: Fuku-Undo 2/4/15
Ea O Ka Aina: Fukushima MOX fuel crossed Pacific 2/4/15
Ea O Ka Aina: Fukushima worst human disaster 1/26/15
Ea O Ka Aina: Japan to kill Pacific Ocean 1/23/15
Ea O Ka Aina: Japan's Environmental Catastrophe 8/25/14
ENE News: Nuclear fuel found 15 miles from Tokyo 8/10/14
Ea O Ka Aina: Earthday TPP Fukushima RIMPAC 4/22/14
Ea O Ka Aina: Fukushima Daiichi hot particles 5/30/14
Ea O Ka Aina: Japanese radiation denial 5/12/14
Ea O Ka Aina: Entomb Fukushima Daiichi now 4/6/14
Ea O Ka Aina: Fukushima Disaster 3 Years Old 4/3/14
Ea O Ka Aina: Tsunami, Fukushima and Kauai 3/9/14
Ea O Ka Aina: Japanese contamination 2/16/14
Ea O Ka Aina: Bill for Fukushima monitoring 2/9/14
Ea O Ka Aina: Tepco under reporting of radiation 2/9/14
Ea O Ka Aina: Fukushima Fallout in Alaska 1/25/14
Ea O Ka Aina: Fukushima engineer against nukes 1/17/14
Ea O Ka Aina: California to monitor ocean radiation 1/14/14
Ea O Ka Aina: Demystifying Fukushima Reactor #3 1/1/14
Ea O Ka Aina: US & Japan know criticality brewing 12/29/13
Ea O Ka Aina: Fukushima Forever 12/17/13
Ea O Ka Aina: Brief radiation spike on Kauai 12/27/13
Ea O Ka Aina: USS Ronald Reagan & Fukushima 12/15/13
Ea O Ka Aina: Fukushima Pacific Impact 12/11/13
Ea O Ka Aina: Berkeley and Fukushima health risks 12/10/13
Ea O Ka Aina: Madness engulfs Japan 12/4/13
Ea O Ka Aina: Edo Japan and Fukushima Recovery 11/30/13
Ea O Ka Aina: Reaction to Fukushima is Fascism 11/30/13
Ea O Ka Aina: Radioisotopes in the Northern Pacific 11/22/13
Ea O Ka Aina: Fukushima cleanup in critical phase 11/18/13
Ea O Ka Aina: Fukushima fuel removal to start 11/14/13
Ea O Ka Aina: Fukushima, What me worry? 11/13/13
Ea O Ka Aina: Remove other Fukushina fuel 10/29/13
Ea O Ka Aina: End to Japanese Nuclear Power? 10/3/13
Ea O Ka Aina: Fukushima & Poisoned Fish 10/3/13
Ea O Ka Aina: Fuel Danger at Fukushima 9/27/13
Ea O Ka Aina: Reactor #4 Spent Fuel Pool 9/16/13
Ea O Ka Aina: Fukushima is Not Going Away 9/9/13
Ea O Ka Aina: X-Men like Ice Wall for Fukushima 9/3/13
Ea O Ka Aina: Fukushima House of Horrors 8/21/13
Ea O Ka Aina: Fukushima Apocalypse 8/21/13
Ea O Ka Aina: Fukushima Radioactive Dust 8/20/13
Ea O Ka Aina: Cocooning Fukushima Daiichi 8/16/13
Ea O Ka Aina: Fukushima radiation coverup 8/12/13
Ea O Ka Aina: Leakage at Fukushima an emergency 8/5/13
Ea O Ka Aina: Fukushima burns on and on 7/26/13
Ea O Ka Aina: What the Fukashima? 7/24/13
Ea O Ka Aina: Fukushima Spiking 7/15/13
Ea O Ka Aina: G20 Agenda Item #1 - Fix Fukushima 7/7/13
Ea O Ka Aina: Fukushima and hypothyroid in Hawaii 4/9/13
Ea O Ka Aina: Japan to release radioactive water 2/8/13
Ea O Ka Aina: Fukushima as Roshoman 1/14/13
Ea O Ka Aina: Fukushia Radiation Report 10/24/12
Ea O Ka Aina: Fukushima Fallout 9/14/12
Ea O Ka Aina: Fukushima Unit 4 Danger 7/22/12
Ea O Ka Aina: Fukushima denial & extinction ethics 5/14/12
Ea O Ka Aina: Fukushima worse than Chernobyl 4/24/12
Ea O Ka Aina: Fukushima dangers continue 4/22/12
Ea O Ka Aina: Fukushima children condemned 3/8/12
Ea O Ka Aina: Fukushima fights chain reaction 2/7/12
Ea O Ka Aina: Tepco faking Fukushima fix 12/24/11
Ea O Ka Aina: The Non Battle for Fukushima 11/10/11
Ea O Ka Aina: Fukushima Debris nears Midway 10/14/11
Ea O Ka Aina: Fukushima Radiation Danger 7/10/11
Ea O Ka Aina: Fukushima Abandoned 9/28/11
Ea O Ka Aina: Deadly Radiation at Fukushima 8/3/11
Ea O Ka Aina: Fukushima poisons Japanese food 7/25/11
Ea O Ka Aina: Black Rain in Japan 7/22/11
Ea O Ka Aina: UK PR downplays Fukushima 7/1/11
Ea O Ka Aina: Fukushima #2 & #3 meltdown 5/17/11
Ea O Ka Aina: Fukushima sustained chain reaction 5/3/11
Ea O Ka Aina: Ocean Radioactivity in Fukushima 4/16/11
Ea O Ka Aina: Japan raises nuclear disaster level 4/12/11
Ea O Ka Aina: Fukushima No Go Zone Expanding 4/11/11
Ea O Ka Aina: Fukushima to be Decommissioned 4/8/11
Ea O Ka Aina: Fukushima Poisons Fish 4/6/11
Ea O Ka Aina: Learning from Fukushima 4/4/11
Ea O Ka Aina: Fukushima Leak goes Unplugged 4/3/11
Ea O Ka Aina: Stick a fork in it - It's done! 4/2/11
Ea O Ka Aina: Fukushima reactors reach criticality 3/31/11
Ea O Ka Aina: Fukushima Non-Containment 3/30/11
Ea O Ka Aina: Fukushima Meltdown 3/29/11
Ea O Ka Aina: Fukushima Water Blessing & Curse 3/28/11 
 
.

Get off the Grid now!

SUBHEAD: Advice for survivors - Find a place with soil and a source of water. 

By Juan Wilson on 19 August 2018 for Island Breath -
(http://islandbreath.blogspot.com/2018/08/get-of-grid-now.html)


Image above: Living off grid in Hawaii is likely our future. From (https://www.hawaiibusiness.com/off-the-grid-2/).

We got an email from Ed Wagner, on Oahu, this morning. It read:
Aloha Kakou,

Isn't it time for the Hawaii Public Utility Commission to shut down the only coal plant in the state of Hawaii (on Oahu) owned and operated by AES Corporation and move toward geothermal energy and a hydrogen economy ASAP?

Original Business Insider 1912 story about coal predicting future climate change. See (https://www.businessinsider.com/newspaper-in-1912-linked-coal-to-climate-change-2018-8).

The video is at bottom of above story in case you missed it from my last email. The video shows bubbles of methane gas leaking from Alaska lakes and a demonstration of its flammability.
Northern Alaskan lakes are leaking a greenhouse gas that's 84 times more potent than carbon dioxide.
Mahalo,
Ed Wagner
I agree with Ed on closing down the AES coal plant, but strongly object to moving further into producing "grid" energy with geothermal. See Fracking Hawaii by Henry Curtis (http://islandbreath.blogspot.com/2013/01/fracking-hawaii.html) from 1/30/2013.

It is quite possible that fracking at the Kilauea geothermal site may have triggered or exacerbated volcanic activity currently reeking havoc on the Big Island. See Kilauea Volcanic Update (http://islandbreath.blogspot.com/2018/06/kilauea-volcano-update.html) 6/5/18. It is certain that fracking on the mainland has caused earthquakes and other underground disturbances in places where those events are rare or unheard of.

My response to Ed was:
Aloha Ed,

I'd say geothermal is a fracking disaster. 

Yes coal is to be stopped, but so is diesel and biomass grid based "solutions". It's time to get off the grid and out of the cars.
That's where we are going anyway. Might as well have a headstart on our real future.

Juan Wilson
Hawaiians lived on these islands without a power grid or industrialization for over 500 years (see "When did Polynesians settle in Hawaii"). More than that, they thrived without metal or a even written language.

Our modern dependence on industrialization has been an environmental disaster. And more recently our dependence on "high tech" telecommunication, computerization, and electronic record keeping has made us vulnerable to a devastating collapse with even a short discontinuity of the grid.

The long term "solution" for Hawaii is getting off the grid and growing our own food. However, unfortunately, we have overpopulated the islands. Since 1950 the population has tripled from 500k to 1.5 million.

Oahu alone has almost a million people. The outer islands may only be able to absorb a fraction of that number to achieve a sustainable population distribution across the archipelago.

As our resource consuming civilization winds down we will have to make uncomfortable adjustments or suffer worse - catastrophic collapse.

As of now, with our heads buried in the 18 cubic foot fridge looking for a frozen snack while the AC chills the room and the flatscreen cable channel fills the room with false adventure we seem on track to go down with the grid once the fuel tanks are empty.

Advice for survivors: Find a place with soil and a source of water. Know your neighbors; Plant fruit trees; Grow food; Raise hens; Catch fish; Produce some energy; Gather tools; Make things; Trade things. Be happy!

See also:
Ea O Ka Aina: Kilauea Volcano Update 6/5/18
Ea O Ka Aina: Mistakes to avoid going off-grid 1/9/16
Ea O Ka Aina: Failing to live Off-Grid 1/3/16
Ea O Ka Aina: Living off-grid becoming illegal 11/7/15
Ea O Ka Aina: Off Grid living is illegal 1/26/15
Ea O Ka Aina: Kicking the KIUC habit 5/1/14
Ea O Ka Aina: Hawaii utilities fighting customers 1/6/14
Ea O Ka Aina: Off-grid handcrafted life 12/5/13
Ea O Ka Aina: KIUC afraid of residential PV 10/8/13
Ea O Ka Aina: Fracking Hawaii 1/31/13
Ea O Ka Aina: Island Breath is off the Grid 7/6/12
Ea O Ka Aina: Off-Grid Night Lighting 8/14/09
Ea O Ka Aina: Rural, not Suburban, Kauai 4/2/09
Island Breath: Solar Energy - A case study 5/12/04


.

An Ending

SUBHEAD: Our farm, like many of our US farms and towns, is in the grip of an extended cold spell.

By Brian Miller on 31 December 2017 for Winged Elm Farm -
(http://www.wingedelmfarm.com/blog/2017/12/31/an-ending/)


Image above: Canton Minnesota Amish farm in winter snow. From (http://www.desertphotorestoration.com/gallery/v/farm/CantonMinn.jpg.html).

The initial thrill that comes with an ice storm and a loss of power faded a bit the morning the temperature bottomed out at 3 degrees.

Delores the sow had dragged the heater out of her water trough for the fifth time, the pond ice for the cattle and horse had to be broken every few hours, and a young ewe and her newborn had to be rescued after lambing in a far corner of the wind-blown sheep pasture and relocated to the shelter of a barn stall.

Still, the domestic pleasure of coming into a cozy house heated by a woodstove to sip a hot cup of tea is not to be dismissed.

Traditionally we built our houses to meet the demands of our climates, a grass hut if you lived on a tropical isle or a house with connected barn if you lived in New England. Older houses in Louisiana, when I was growing up, were typically built a couple of feet off the ground. It was a good model for a warm climate.

The open space underneath kept the house cooler in the warmer months (most of the year), and the elevation protected against the occasional flooding. Freezes, like the big one in 1940 my dad recalled, were rare.

And given that most plumbing was limited to the kitchen, freeze damage to the house was minimal.

Infrastructure was on my mind this past week here in East Tennessee. After a week of temperatures barely budging above freezing, we had an ice storm.

The storm caused our farm to lose power. Then the temperatures plummeted to low single digits. Thankfully, we had a generator to run the refrigerator, well pump and a few essential electrical circuits.

A Jotul woodstove helped keep the house a comfortable 60 degrees. Another generator at the barn kept a variety of water tanks heated for the sheep, chickens, goose, cattle and horse.

Today, our houses are designed to accommodate the additional “essentials” that just a generation ago were not needed nor even available.

The electricity to keep the modern house functioning is a relatively new concept in human culture. The boundary line of what is essential has shifted. Shelter, heat, food and water now share demand with internet, smartphone, cable TV and microwave.

Older forms of infrastructure had built-in resilience: barns carefully constructed to hold heat, with hay mows above to ease the feeding of livestock in poor weather; deep in-ground cisterns to provide fresh water for the farm; houses designed to facilitate warmth in the winter or coolness in the summer—smart, low-tech designs that we have pushed aside with the assumption that the power grid will now take care of us.

Over the years Cindy and I have discussed converting our farm to an off-the-grid power system. Each time, though, we found the costs to be prohibitive.

But this week, after a few days without power, as we scrambled to keep up with our needs, it occurred to me: off-the-grid is easy; it is our modern needs that are complicated, the prohibitive factor, the stumbling block, the real expense.

Those old houses in south Louisiana worked year in, year out because they had very little modern infrastructure to protect. Working under the house insulating each individual pipe before the ice storm, I was overwhelmed by how much plumbing is needed in our small house just to furnish us water on demand.

Hot and cold pipes to the kitchen and the two bathrooms, the hot water heater and the washer/dryer—a complexity of plumbing requiring protection from the elements, so that it might protect us from the elements.

Driving into town late in the week, I saw dozens of downed trees, limbs still balancing on utility lines, brush pushed to the edges of the road.

As I looked at the miles of power lines and telephone lines, our true vulnerability was evident. It was not the loss of electrical power that we feared but the loss of a certain status that comes with our modern life, a status of predictability.

Off-the-grid literature is typically geared towards finding ways around the commercial power source, yet retaining the modern conveniences. As we watered and fed our sheep, as lambs were born this week without regard to the temperature or the state of our utilities, I thought about the Amish.

While many of us were without power, were they concerned with an inability to update their Facebook pages, charge their cell phones, keep their freezers going, stay warm with their electric furnaces?

 Did they feel powerless? Somehow I doubt it.

The complexity of this modern life, the infrastructure that maintains it, is hardwired for disruption.

Our system and our expectations for what it must provide are such that losing power is a form of powerlessness. That in itself seems a form of slavery. Which is why there is, for me, always that bit of anarchic joy in an emergency, an unshackling from the system.

Though that uncertain joy is accompanied by relief when the master comes home and power is restored.
.

Tesla's test in Puerto Rica

SUBHEAD: Tesla’s solar vision gets its first big test at replacing centralized fossil fuel power.

By Amilia Urry on 24 October 2017 for Grist Magazine -
(http://grist.org/article/tesla-and-solar-groups-put-puerto-rico-back-on-the-grid/)


Image above: Solar panels being installed in Puerto Rico to replace hospital grid connection. From original article.

It was a transaction concocted on Twitter — and in a few short weeks, declared official: Tesla is helping to bring power back to Puerto Rico.

Early this month, Elon Musk touted his company’s work building solar-plus-battery systems for small islands like Kauai in Hawaii and Ta’u in American Samoa. He suggested a similar setup could work for Puerto Rico. The U.S. territory’s governor, Ricardo Rosselló, tweeted that he was game. Musk replied quickly: “Hopefully, Tesla can be helpful.”

After earlier reports of the company’s batteries arriving at San Juan’s port, Tesla announced today that it has started constructing its first microgrid installation, laying out a solar field and setting up its refrigerator-sized Powerpack batteries to supply electricity to a children’s hospital in the Puerto Rican capital.

More than a month after Hurricane Maria destroyed swaths of the island’s electrical grid, 85 percent of Puerto Rico is still without power. Total grid repair costs are estimated at $5 billion — an especially steep price for a public utility already $9 billion in debt.

The lack of power is especially dire for hospitals, where unreliable electricity may spoil medicines that require refrigeration and complicate crucial medical procedures. The results could be deadlier than the storm itself, but solar power could help head off further disaster.

The idea that solar could serve as a viable source of emergency relief is new. Sure, renewable technologies have proliferated and become more affordable, but there’s a tried-and-true response to natural disasters: Fall back on diesel generators and fuel until utilities have a chance to restore grid power.

This has largely been the pattern in post-Maria Puerto Rico. One hardware store told the New York Times it was selling up to 300 generators a day. FEMA claims it has installed more generators in Puerto Rico than in hurricane-ravaged parts of Texas and Florida combined. But generators are expensive, inefficient, and prone to failure. And burning diesel or gasoline in homes comes with health risks like carbon monoxide poisoning.

By contrast, a microgrid setup — that is, a combination of solar panels, battery storage, and electrical inverters that doesn’t require input from the main power grid — can potentially take immediate effect, providing reliable electricity with no pollution. And, once installed, these self-contained systems could help eliminate the rolling blackouts that were a problem for Puerto Rico’s major utility even before Maria.

Tesla is only the most prominent company to bypass the conventional avenues of rebuilding to install renewable power and batteries. Other companies and nonprofits have been marshalling resources to fill the void left by federal relief efforts.

German renewable energy outfit Sonnen has pledged to build microgrids in priority areas, working with local partner Pura Energia to install donated batteries to power first aid and community centers.

Another group, Resilient Power Puerto Rico, is distributing solar generators to remote communities, where they can serve as hubs for immediate necessities like charging phones and filtering water.

Marco Krapels, founder of the nonprofit Empowered by Light, traveled with a solar installation team to Puerto Rico in early October to deploy solar-plus-battery microgrid systems on fire stations. The nonprofit partnered with local firefighters to quickly cut through red tape paralyzing much of the disaster response.

“It takes only 48 hours to deploy once it arrives in the San Juan airport,” Krapels says of the standalone systems. “The firefighters, who have 18 flat-bed trucks, pulled up to our cargo plane; three hours later we were installing the system; and 48 hours later we’re done.”

The microgrid systems provide electricity and communications to the fire stations, as well as water purification technology that can provide up to 250 gallons of drinkable water a day — crucial on an island where 1 in 3 residents currently lack access to clean water.

There are 95 fire stations in Puerto Rico, Krapels says, and he estimates it will take just under $5 million for Empowered by Light to outfit them all.

So far, the nonprofit has transformed two stations, one in the low-income Obrero neighborhood of San Juan and one in the town of Utuado, in the remote center of the island.

After both installations, Krapels says, the local fire station was the only building with the lights on after dark — outlying and underserved communities are always among the last to receive emergency relief.

“There are parts of the island that are so destroyed that there is no grid,” Krapels says. “There is nothing to fix: The transformers are all burnt, the poles are gone, the wires are laying on the street.”

As much as 80 percent of the island’s high-power transmission lines were destroyed, Bloomberg reported, and even optimistic estimates of repair work have a majority of the island off the grid until late this year.

In the coming months, as communities and companies work to rebuild that infrastructure, there will be an opportunity to make the island more resilient. Companies like Tesla offer one path to less vulnerable electricity infrastructure.

Meanwhile, organizations like Resilient Power Puerto Rico emphasize the importance of economic resilience, too.

The New York-based founders want to put power in the hands of the island’s residents, modeled after similar efforts in the Rockaways post-Sandy. The nonprofit has ambitions to establish 100 solar towns, a robust green economy, and more electrical independence for all.

“If we’re going to rethink energy in Puerto Rico, let’s really empower people to deploy their own distributed renewable generation and storage,” Krapels says. “The sun is there every day, and it’s going to shine for the next 5 billion years.”

See also:
Ea O Ka Aina: Kauai and Tesla are Newlyweds 8/10/17

.

Electric cars don't reduce CO2

SUBHEAD: An inconvenient fact is they mostly use oil, gas and coal to get recharged and also have exotic batteries to be replaced.

By Tyler Durden on 18 August 2017 for Zero Hedge -
(http://www.zerohedge.com/news/2017-08-18/inconvenient-fact-morgan-stanley-says-electric-cars-create-more-co2-they-save)


Image above: A Tesla two-seat sports roadster is displayed while it charges at an auto show. From (http://unitedcarsnow.com/2017-tesla-roadster/2017-tesla-roadster-interior/).

For all the funds out there looking to fill their portfolio with "environmentally conscious" companies working diligently to avert an inevitable global warming catastrophe that will result in the extinction of the human race, we guess in lieu of their actual fiduciary duties to simply make money for their investors, Morgan Stanley has compiled a list of how you can get the most 'environmental healing' per dollar invested.

As MarketWatch points out, it's not terribly surprising that of the 39 publicly-traded stocks analyzed, the solar and wind generation companies landed at the very top of Morgan Stanley's environmentally friendly the list.

Morgan Stanley identified 39 stocks that generate at least half their revenue “from the provision of solutions to climate change,” something it said was a central component of investing to make a difference, as opposed to just a making a buck.

“In our view, impact investing needs to begin with companies whose products and services have a notable positive environmental or social impact,” wrote Jessica Alsford, an equity strategist at the investment bank.

Not surprisingly, alternative-energy companies ranked the highest in terms of their positive impact, and the “top five climate-change impact stocks” were all manufacturers of solar and wind energy: Canadian Solar, China High Speed Transmission, GCL-Poly, Daqo New Energy, and Jinko Solar.
What is surprising, however, is that publicly traded electric car manufacturers, darlings of the environmentally-conscious Left, were actually found to generate more CO2 than they save.

As a stark reminder to our left-leaning political elites who created these companies with massive taxpayer funded subsidies, Morgan Stanley points out that while Teslas don't burn gasoline they do have to be charged using electricity generated by coal and other fossil fuels.

This is where Tesla, along with China’s Guoxuan High-Tech fall short.

“Whilst the electric vehicles and lithium batteries manufactured by these two companies do indeed help to reduce direct CO2 emissions from vehicles, electricity is needed to power them,” Morgan Stanley wrote.
“And with their primary markets still largely weighted towards fossil-fuel power (72% in the U.S. and 75% in China) the CO2 emissions from this electricity generation are still material.”
In other words, “the carbon emissions generated by the electricity required for electric vehicles are greater than those saved by cutting out direct vehicle emissions.”

Morgan Stanley calculated that an investment of $1 million in Canadian Solar results in nearly 15,300 metric tons of carbon dioxide being saved every year. For Tesla, such an investment adds nearly one-third of a metric ton of CO2.

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Post-modern America dilemna

SUBHEAD: There are a number of key areas where we aren’t ready to live in a 19th century world.

By Rch M on 6 July 2017 for Off Grid News -
(http://www.offthegridnews.com/how-to-2/why-post-disaster-america-wont-be-like-the-1800s-it-will-be-worse/)


Image above: Apocalyptic illustration of post collapse urban America. Source Pixabay.com. In original article.

There has always been a lot of speculation about what a post-disaster world would look like. I remember reading books 40 years ago, where the author tried to grapple with the idea of a world after a nuclear war.

Through the ensuing years, each potential disaster has brought its own flock of such books, as author after author tried to peer into the future and see what it might reveal to them.

 This goes on today, too. One of the biggest potential risks that we face now is similar to the one we faced in the Cold War: that of thermonuclear weapons. But there’s a huge difference now.

Rather than taking the hearts out of American cities with their nuclear-tipped missiles, our enemies would be better served to use them to create an EMP, destroying the electrical grid and all our electronic devices.

Looking at this potential disaster, many a writer has equated the post-EMP world to the 1800s, the time before Edison, Tesla and Westinghouse electrified our world. The analogy is simple. Remove electricity and the world should be like it was before electricity changed the world. But the analogy is wrong.

There are a number of key areas where we aren’t ready to live in an 1800s world, and that’s what causes the analogy to break down. Without the proper preparation, you and I aren’t really ready to do things the way our great-great-grandparents did them. The world has changed in many fundamental ways, and removing electricity from the world won’t just turn the clock back.

Knowledge
There are countless areas in which we have lost the knowledge that our ancestors possessed. How many blacksmiths do you know? But the blacksmith was a central figure in any 1800s community. How about icemen who cut ice in the winter and delivered in the summertime? Seen any of them lately?

We can even find our knowledge lacking in areas where we think that our knowledge has surpassed that of the 1800s. Take medicine, for example.

Today’s doctor depends heavily on a multitude of tests and the complex equipment that makes them possible. They spend little time with their patients, examining and talking to them.

But when that fancy equipment and the tests they can accomplish are removed, will doctors still be able to diagnose their patients’ problems? Perhaps not.

Physical Conditioning
People in the 1800s were hardier than we are today, with the average person being in much better physical shape than we are. That’s not because they spent a lot of time in the gym, either. Working out in the gym produces artificial strength that’s focused on specific movements. Rather, their strength and vitality came from back-breaking physical work.

Some of the strongest weightlifters likely would get injured doing the physical work they did back then, simply because they haven’t trained for it. Their great strength is stylized — for lifting, not for working. Swinging an axe or building a hay pile is different than lifting.

Another way that their physical activity helped them is in fighting obesity and the diseases it causes. While there were people who were overweight, they were an aberration, not the norm. So high blood pressure, diabetes and other diet- and weight-related diseases were rare.

Animal Power
The main motive power in the 1800s was animal power. Everyone owned horses. Farms were cultivated with horses or oxen; people rode horses and used wagons for transportation. Horses even were used to provide power for industry — harnessed to a horizontal wheel, which drove overhead axles to power machine shops and other industrial facilities.

There just aren’t enough horses available today for us to go back to the 1800s; most people would end up using manpower to do their work. Travel would be limited and would mostly be on foot. It would take decades for enough horses to be bred to provide for the need.

Water Power
The other motive power used extensively in the 1800s was water power. Much of the localized industry was powered by waterwheels, especially grain mills and sawmills. While these could be built once again, it would take time to figure out how to build them and then a considerable amount of hard work to accomplish the task.

Local Commerce
Today’s commerce is purely interstate and international. Little of what any of us use is locally produced. Once transportation comes grinding to a standstill, that commerce would stop. We would be limited to being able to buy or trade for only things which are locally produced.

Yet the average community has little local production of any products. Cottage industry has been replaced by mega-industry — major manufacturing corporations producing huge quantities of those items.

Once again, reestablishing those cottage industries is possible, but it will take time and effort to learn how to build the necessary equipment. The difficulty of that will be compounded by the fact that it has to be done with manual tools.

Manual Tools
Power tools essentially didn’t exist back in the 1800s. Drill presses existed, but they were either powered manually or by animal power. The electric drill, which has become so common in our world of tools today, was actually invented for use in Henry Ford’s factory, which wasn’t until the early 1900s.

While manual tools still exist today, few people have them. We are highly dependent on our power tools, both at home and at work. But worse than that, we don’t have the skill to use them properly. Whereas a cabinetmaker in the 1800s could miter a board with a back saw and miter box and get a tight fit, few of us can do so today. We’ve not only lost the manual tools, but the finesse to use them to their maximum.

Agricultural Society
Society in general was much more decentralized in the 1800s because it was an agricultural society. Although the industrial revolution started in the 1700s, it took time for it to catch on. Massive commercialized farms were an invention of the later 1900s; before then, a much larger portion of the population was employed on family farms.

What this means is that there was much more local food production than there is today. Family farms also grew a greater variety of food, combining fields of grain with garden plots to raise vegetables for their own consumption and to sell in town. Vegetables didn’t come from Southern California or Florida; they were locally grown.

Today, those who live in the city may go their whole life without seeing a farm, and if they do see one, it will probably be one of those commercialized mega-farms, with miles and miles of the same crops. Those will not be very useful in a post-disaster world, where the factories that turned that grain into usable food products will lay silent.

Communications
We are an information-based society, with everyone connected all the time. That would be one of the first things we would notice missing. Even if our cell phones survived the EMP (which is quite possible), the network they depend on wouldn’t. Communications would revert to verbal only, with those who live nearby.

Even shipping and postage, things that they had in the 1800s, would be curtailed. Without airplanes and over-the-road trucks, there is no real way for the Post Office, FedEx, UPS or any other shipping company to get letters and packages from point A to point B.

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