Tag Archives: renewable energy

resilience.org roundup

This “resilience roundup” links to so many interesting articles I just couldn’t pick one or two to link to. Among them:

  • an argument that the “clean energy miracle” is here, and the press and the public just haven’t picked up on it yet
  • a map of the global coal trade – an awesome map/Sankey diagram combo almost as cool as that famous one of Napolean’s death march into Russia
  • the predicted return of oil shortages and high prices
  • an argument that the big multinational oil companies need to “adapt or die”
  • a cool animated gif of global warming

 

Standard Alternative Energy

In a slight irony, The Rockefeller Brothers Fund has joined the fossil fuel divestment movement.

Given the RBF’s deep commitment to combating climate change, the Fund is now committing to a two-step process to address its desire to divest from investments in fossil fuels. Our immediate focus will be on coal and tar sands, two of the most intensive sources of carbon emissions. We are working to eliminate the Fund’s exposure to these energy sources as quickly as possible. Given the structure of some commingled investment funds and investments in highly diversified energy companies, we recognize there may continue to be minimal investments in our portfolio in those energy sectors, but we are committed to reducing our exposure to coal and tar sands to less than one percent of the total portfolio by the end of 2014. As we take the steps to divest from coal and tar sands investments, we are also undertaking a comprehensive analysis of our exposure to any remaining fossil fuel investments and will work with the RBF Investment Committee and board of trustees to determine an appropriate strategy for further divestment over the next few years.

In working to align our endowment investments with our mission and programs, we will adhere to the longstanding mandate of our board of trustees that our assets be invested with the goal of achieving financial returns that will enable the foundation to meet its annual philanthropic obligations, while maintaining the purchasing power of the endowment, so that future generations will also benefit from the foundation’s charitable giving. In uncertain and volatile markets, these financial goals are not easy to achieve. Therefore, our divestment from fossil fuels, which is now underway, will be accomplished through a careful process of evaluating our exposure and a phased approach that proceeds as quickly as is prudent.

Low-cost solution to the grid reliability problem

I have heard from know-it-alls that the problem with renewable energy is that it is intermittent and hard to store. I have always thought there are many ways to deal with that – charge a battery, pump water uphill, heat something, wind a spring, compress air, electrolyze water into hydrogen and charge a fuel cell. Those are my thoughts with absolutely no expertise at all, but luckily the experts are thinking about this too:

Mark Z. Jacobson, Mark A. Delucchi, Mary A. Cameron, and Bethany A. Frew. A low-cost solution to the grid reliability problem with 100% penetration of intermittent wind, water, and solar for all purposes. PNAS 2015; DOI: 10.1073/pnas.1510028112, 2015

This study addresses the greatest concern facing the large-scale integration of wind, water, and solar (WWS) into a power grid: the high cost of avoiding load loss caused by WWS variability and uncertainty. It uses a new grid integration model and finds low-cost, no-load-loss, nonunique solutions to this problem on electrification of all US energy sectors (electricity, transportation, heating/cooling, and industry) while accounting for wind and solar time series data from a 3D global weather model that simulates extreme events and competition among wind turbines for available kinetic energy. Solutions are obtained by prioritizing storage for heat (in soil and water); cold (in ice and water); and electricity (in phase-change materials, pumped hydro, hydropower, and hydrogen), and using demand response. No natural gas, biofuels, nuclear power, or stationary batteries are needed. The resulting 2050–2055 US electricity social cost for a full system is much less than for fossil fuels. These results hold for many conditions, suggesting that low-cost, reliable 100% WWS systems should work many places worldwide.

wind and solar

Here are some fun facts on the wind and solar revolution.

Rooftop solar is growing worldwide by 50% per year. In 1985 solar cost $12 per watt, but today’s prices are closer to 36 cents per watt. Every five hours the world adds 23 MW of solar—which was the global installed capacity in 1985.

In January of 2014 Denmark got 62% of its electricity from wind. In 2013 Ireland got 17% of its electricity from wind, and Spain and Portugal both exceeded 20% from wind. Today China gets more electricity from wind (91,000 MW) than it does from nuclear reactors. The United States is second in the world in installed wind turbines, with South Dakota and Iowa obtaining over 26% of their electricity from wind…

The renewable energy revolution will enable civilization to stop the growth of highly polluting fossil fuels. It will enable society to leave the majority of the remaining reserves of fossil fuels alone and unburned. Acceleration of this revolution helps in solving many problems and is a key to restoring and maintaining the life support systems of the earth.

alternative energy

This article (in the descriptively name journal Energy) describes how California could move to an all-renewable energy future, then tries to put an economic value on that. It is always the link between air pollution and health that surprises me. Why don’t people get more upset that power plants and vehicle exhaust are literally taking years off all our lives when there are other alternatives out there?

This study presents a roadmap for converting California’s all-purpose (electricity, transportation, heating/cooling, and industry) energy infrastructure to one derived entirely from wind, water, and sunlight (WWS) generating electricity and electrolytic hydrogen. California’s available WWS resources are first evaluated. A mix of WWS generators is then proposed to match projected 2050 electric power demand after all sectors have been electrified. The plan contemplates all new energy from WWS by 2020, 80–85% of existing energy converted by 2030, and 100% by 2050. Electrification plus modest efficiency measures may reduce California’s end-use power demand ∼44% and stabilize energy prices since WWS fuel costs are zero. Several methods discussed should help generation to match demand. A complete conversion in California by 2050 is estimated to create ∼220,000 more 40-year jobs than lost, eliminate ∼12,500 (3800–23,200) state air-pollution premature mortalities/yr, avoid $103 (31–232) billion/yr in health costs, representing 4.9 (1.5–11.2)% of California’s 2012 gross domestic product, and reduce California’s 2050 global climate cost contribution by $48 billion/yr. The California air-pollution health plus global climate cost benefits from eliminating California emissions could equal the $1.1 trillion installation cost of 603 GW of new power needed for a 100% all-purpose WWS system within ∼7 (4–14) years.