05/07/2017

Wind Energy Has Officially Become Cheaper Than Fossil Fuels

Futurism - Tom Ward | Chelsea Gohd

Alexandros Maragos/Getty 
The Plummeting Price of Wind Energy
In Brief
Industry leaders have estimated that the cost of producing energy using wind farms has dropped to around $100 per megawatt hour, making the energy source as cost effective as coal and nuclear energy.
Bent Christensen, who is responsible for cost projection for Siemens's wind power division, has estimated that Europe's offshore wind industry has reached a milestone three to four years ahead of schedule: achieving wind energy at €100 ($113) per megawatt hour (MWh). This means that offshore wind farms could be built without government subsidy because they are economically viable without additional support.
In wind energy, there has been a fast reduction in price over the last three years, falling 27 percent since 2014. According to a Lazard survey in 2016, this means that the energy source has become either cheaper or equal to coal-fired generators, nuclear reactors, and rooftop solar arrays.
Some even predict a further reduction in price — estimating that in the future it will be possible to deliver wind energy at €75 ($84) and €62 ($70) MWh.  But this hopeful advancement depends on turbine, cable, and converter technology developing much further. Siemens Gamesa and MHI Vestas Offshore Wind plan to have such technology in place in time for the 2024-2025 North Sea project's completion.

A Renewable Revolution
Wind power's fall in price marks a major victory for renewable energy because it makes the power source attractive economically as well as environmentally, which is crucial for its widespread adoption. Other promising news that could advance the trend for adopting wind-power is Denmark providing all their power for a day using the source, and the development of record-breaking turbines capable of producing 216,000 kWh of energy in a 24 hour period.
The decreasing price of renewable energy, however, is not just reserved for wind-power: similar victories are also taking place in the solar energy sector. A recent report by Bloomberg has estimated that in four years solar will be cheaper than coal worldwide, having dropped in price by 58 percent within the last five years.
It is unlikely that our world will use less power as populations increase and industry has to keep up. Therefore, in order to save our planet from pollution and the progression of climate change, we must tinker with the other side of the formula — making the energy we use cleaner and greener. Advances in wind and solar power, in particular, are especially promising, as they lay the path for renewables creating both individual and collective gain.

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Solar And Wind Tipping Points: One Down And One To Go

RenewEconomy - Seb Henbest

In the last 10 days, I have been travelling around North America presenting to senior executives from energy companies, policy-makers and investors a long-term forecast for the world’s electricity system that would have been seen as wildly fanciful just a decade ago. And that’s putting it politely.
It’s a measure of just how rapidly things are changing in energy, particularly with the steep and remorseless reduction in the cost of cleaner options, that the reaction to BNEF’s New Energy Outlook 2017 forecast, published this month, has been totally different from that.
The questions that my colleague Elena Giannakopoulou, senior analyst on the project, and I have been hearing have mostly begun with “how much” or “how fast” – not with “whether”, “how on Earth” or “what the blazes?”
Events are moving rapidly, and that is evident in the way energy system forecasts from industry players such as BP, ExxonMobil and the International Energy Agency have shifted in the last few years. BNEF’s work differs from those – we like to think it is a few steps ahead – but it is mostly a matter of degree, not direction.
So what are we saying in New Energy Outlook, or NEO, 2017? Before I list this year’s 10 high-level messages, just a reminder what NEO is, and is not. It is not based on how we think policy on clean energy or climate change might evolve between now and 2040. Instead, drawing on the work of 65 analysts, NEO is based squarely on the changing economics of electricity generation.
Starting with a forecast for electricity demand, peaks and profiles, we first consider projects under development and our near-term industry forecasts, before modelling the supply mix using our in-house, least-cost optimization model. NEO explicitly removes renewable energy subsidies once they have run their course, and does not assume aspirational national climate targets are met, unless a mechanism to ensure compliance has been legislated.
OK, I promised 10 key messages for energy in 2017-2040. Here they are:
  • Solar and wind dominate the future of electricity
  • Solar’s challenge gets more serious
  • Onshore wind costs fall fast, and offshore falls faster
  • China and India are a $4 trillion opportunity for the energy sector
  • Batteries and new sources of flexibility bolster reach of renewables
  • Homeowners’ love of solar grows
  • Electric vehicles bolster electricity use and help balance the grid
  • Coal-fired power collapses in Europe and the U.S., peaks globally by 2026
  • Gas is a transition fuel, but not in the way most people think
  • Global power sector emissions peak in just over ten years, then decline
The following paragraphs will dig into each of these points in more detail.
Around $6 trillion of new investment in wind and solar power between now and 2040 will reshape the world’s electricity markets as we move from a system where coal, gas and oil-fired power plants make up over 60% of capacity, to one where solar and wind are the two largest categories, and where fossil fuels make-up less than a third.
Electricity demand worldwide grows 58% to 2040 and this is met by a doubling of installed capacity to 13,919GW in 2040 from 6,719GW today, with wind up 349% and solar expanding a whopping 14-fold, split between 69% grid-scale and 31% small-scale installations.
In addition, we expect growth in new sources of system flexibility, including batteries and demand response, such that by 2040 flexible assets make up around 7% of total installed capacity – similar to size of oil-fired power today. Just under 50% of global investment in new power capacity to 2040 will be in Asia-Pacific and the bulk of that – around $4 trillion – will flow to China and India.
What determines these high-level conclusions are the relative economics of coal, gas, wind and solar power, country by country, over the next 24 years. And the challenge thrown down by renewable energy is perhaps best exemplified by solar PV.
Based on data going back to the U.S. space program, we can extract an experience curve that describes the price decline for every doubling of capacity. Last year we said that rate of decline was 26.5%.
But after the BNEF solar team reanalyzed the data in January, we upped it to 28%. Solar PV is getting cheaper, faster than we thought. Modules are down 90% in price since 1990; and solar electricity has got 72% cheaper since 2009, with another 67% reduction forecast by 2040.
The same applies to wind energy. Looking at the decline in the price per MW of onshore wind turbines over time, we can extract a 9% experience rate. However, the wind turbine built today is fundamentally a very different machine to the one from 2008.
Over time, wind turbines have not just got cheaper, they have also got more efficient at extracting energy from the wind field, with average capacity factors rising from around 15% at the start of this century, to almost 30% for new projects today.
As solar and wind costs continue to decline sharply, it becomes a matter of when, not if, these technologies get cheaper than other forms of power generation.
We see two tipping points ahead. The first is when a new solar or wind project can compete directly with a new coal or gas plants in the absence of subsidies. The second is when that new solar or wind project is cheaper than continuing to run coal and gas power stations that are already built.
Tipping point one is either already, or almost, upon us in all major markets.
In Germany, new onshore wind and solar already appear to be cost-competitive with new coal and gas; in China today, coal is the lowest-cost, new-build electricity generation, but in 2019, onshore wind gets cheaper, then PV follows two years later; in the U.S., cheap natural gas makes it the lowest-cost source of new electricity right now, but by 2022-23 PV and wind both begin to beat it; and in India, new solar PV starts to look cheaper than new coal, across the country, from 2020.
Not only do solar and wind get cheaper than coal and gas on a new-build basis, they also start to undercut existing fossil fuel plants.
We define this as tipping point two, and our analysis suggests this is going to happen much faster than most people think.
In China, PV gets cheaper than running an existing coal plant by 2030; in the U.S. PV beats existing gas by 2027; and in Germany, new solar and onshore wind undercut existing coal and gas generation between 2027 and 2030.
These two tipping points paint a dramatic picture of the rapidly changing economic calculus that we think will shape the future of energy.
That said, these signals will be affected by policy and the inertial politics of vested interests. It is therefore very likely that these tipping points will not suddenly result in a wholesale shift in electricity generation but, as is often then case, politics will lag technology. But when they do catch up, it may all come in a rush.
One of the big surprises in the news on clean energy in the last year has been offshore wind. Cost declines have been remarkable.
A combination of near-shore sites, competitive tendering and a deliberate effort to de-risk project development has allowed prices to fall as low as $50 per megawatt-hour in Denmark, the Netherlands and Germany for projects coming on-line from 2020.
By 2040, we think that offshore wind will be 71% cheaper than today, at about $37 per MWh as a global average. And while we don’t think it will ever be as cheap as onshore wind or PV, the combination of scale, high capacity factors, easier politics and more stable output than other variable renewables increases its value.
As more variable wind and solar generation enter the system, new sources of flexibility are going to be increasingly important. Coal and gas plants that can be ramped up and down and dispatched when required currently provide the bulk of flexibility to electricity systems.
However, as these plants reach their end-of-life or are forced out by cheaper solar and wind, new sources of flexibility – such as batteries and demand response – will need to be added. A lot of the early successes with utility-scale batteries have been in relatively small markets such as ancillary services.
However, batteries can also help manage peak demand, and in NEO 2017 we have explicitly modelled the value of lithium-ion batteries compared with other technology options – in particular open-cycle, or “peaker”, gas plants.
Batteries are best at providing power very rapidly for relatively short durations, making them ideal for hitting narrow peaks. However, their application is somewhat self-limiting, as each additional battery unit lengthens the remaining peak requirement, ultimately requiring larger, higher-cost battery systems that can discharge for longer periods. So, even as batteries get cheaper, their application can get more expensive.
Overall, about 45% of our battery forecast is utility-scale, the remainder is small-scale. We anticipate that small-scale batteries will be deployed alongside rooftop PV system by households and businesses, particularly after 2025, when the cost of combined systems starts to be within reach of mainstream consumers.
Small-scale PV is already at “socket parity” in countries like Australia, Germany and Chile, where there are high electricity prices, good sunshine, or both.
Over time, the ongoing decline in the cost of PV means self-generation is likely to take off in all major markets – the biggest being China and Europe, and the fastest growing Latin America including Brazil. And by 2025, China, the U.S. and almost all of Europe will be at socket parity. Tariff reform, shifting more of the total cost to fixed rather than variable charges, could upend these conclusions.
Combining small-scale solar, small-scale batteries and distribution-grid-level demand response, provides a measure of the increasing decentralization in the future electricity system.
Australia sets the pace, with as much as 45% of total capacity located behind-the-meter by 2040.
We think that Brazil, Japan, Mexico and Germany are each likely to have a decentralization ratio of over 30%. This represents a shift in value downstream towards consumers at the expense of grid-scale assets.
The rise of electric vehicles offers to arrest the decline in net grid demand that we would otherwise expect to see as behind-the-meter solar booms. The competitiveness of EVs comes down to battery prices, and these too are falling fast. Since 2000, the market price for li-ion battery packs is down 73%, and we expect prices to fall a further 73%, to $73 per kWh by 2040.
The result is a very big EV story which adds around 14% new electricity demand in the U.K., 11% in Australia and 10% in France.
However, it’s not just the total amount of new electricity demand EVs add that matters, it also matters when these vehicles charge. In NEO 2017, we have assumed that half the EVs on the road in 2040 can do smart charging – that is, they can charge throughout the day, whenever prices are low.
Allowing smart charging tends to push EV demand to times when there is an excess of renewable generation and by 2040 that’s increasingly during daytime hours when PV is at maximum output. In this way EV demand can follow supply, which helps to smooth out load profiles and better integrate new renewables. It also supports PV plants, which might otherwise be struggling to find demand for their electricity.
An ageing fleet and the influx of renewables result in the collapse of coal-fired electricity generation, in Europe and the U.S., falling by 87% and 51% respectively by 2040. However, heralding the end of coal would be extremely premature as it will continue to be central for some time, particularly in Asia.
China currently runs the world’s largest coal fleet by some way and we expect a further 20% growth in coal-fired generation in that country, before a peak in 2026 and fall thereafter.
In India, coal generation continues to grow, but cheaper solar means we now anticipate a much slower increase, of just 50% from 2020 to 2040, compared to 130% in last year’s assessment. Overall by 2040, we think that global coal generation will be 5% down from where it is today.
Gas-fired electricity, on the other hand, does grow, up 10% by 2040. But we don’t see it playing a “transition fuel” role in the commonly understood sense, whereby carbon-intensive coal gives way to less-carbon-intensive gas, before this too yields to renewables.
Wind and solar are just getting too cheap, too fast. Gas does not win more than a third of the market lost by coal. One exception is perhaps the U.S. where cheap $2-3/MMBtu gas has already started to push coal out of the mix. However, even here the age of gas may be limited once the tipping points for solar and wind are reached.
Instead, gas appears likely to be an important ingredient in the “glue” that helps bind the electricity system together, offering supply-side flexibility to help meet extremes and when renewable generation is at a minimum. We anticipate over $800 billion of new investment and a 16% increase in gas capacity to 2040, with the bulk of this running only a fraction of the time.
The combination of large amounts of close-to-zero running-cost wind and solar, and low capacity-factor gas plants in a cost-optimized system, strongly supports new market reform to ensure both are adequately remunerated for the system services they can provide.
This subject was addressed at length in last month’s VIP Comment from my colleague Albert Cheung, and in a White Paper by Michael Liebreich, and will be an important research focus for BNEF over the coming year.
Finally, on emissions – we expect 10% growth in global power sector emissions over the next ten years as faster demand growth in China, and higher gas prices in the U.S. increase coal burn. China runs easily the biggest coal fleet in the world, so more than any other country, it will determine future emissions.
This year we have emissions peaking in 2026, the same year as coal generation in China, and falling thereafter at one percent per annum, to four percent below 2016 levels by 2040. This is higher in the near term in line with restated expectations for Chinese demand growth, but falls more rapidly beyond 2030 as cheaper renewables weigh heavily on coal in both China and India.
This emissions trajectory puts the world broadly on-track to meet the Nationally Determined Contribution targets defined under the Paris Agreement, and our analysis suggests there is definitely scope to ratchet up ambition without incurring additional costs.
However, there remains a large gap to anything resembling a 2-degree Celsius scenario. The task is slightly smaller than we projected last year, but would still require extra investment of around $5.3 trillion in zero-carbon generation between now and 2040 to bridge it. This creates significant additional climate policy risk and the possibility that the dramatic changes we are painting to 2040 in NEO 2017, may very well be accelerated.

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Climate Change Will Hit Trump Supporters Hardest

CleanTechnica -  

It’s a fine irony that the US states with the largest number of Trump supporters and climate change deniers, the people who stand up and cheer when the Philanderer in Chief announces the US will pull out of the Paris climate accords, will be the hardest hit by the effects of climate change. That’s according to a study published in the journal Science on June 30.

First County By County Analysis Of Climate Change
In a county by county statistical analysis conducted by UC Berkeley public policy professor Solomon Hsiang and his colleagues at the Climate Impact Lab, places that are already hot, like Arizona and Texas, are at more risk from rising temperatures than the Northeast and West Coast states.
“The reason for that is fairly well understood,” Hsiang writes. “A rise in temperatures is a lot more damaging if you’re living in a place that’s already hot. You see a similar pattern internationally, where countries in the tropics are more heavily impacted by climate change, but this is the first study to show that same pattern of inequality in the United States.”

More Deaths, Lower Economic Output
What does it all mean? According to the study, it means big financial losses and higher death rates in those states. Heat-related deaths could equal deaths from automobile accidents by the end of this century and economic losses could be as much as 20% of GDP for the states most affected, according to the report.
In the abstract of the report, Hsiang says, “The combined value of market and nonmarket damage across analyzed sectors — agriculture, crime, coastal storms, energy, human mortality, and labor — increases quadratically in global mean temperature, costing roughly 1.2% of gross domestic product per +1°C on average.
“Importantly, risk is distributed unequally across locations, generating a large transfer of value northward and westward that increases economic inequality. By the late 21st century, the poorest third of counties are projected to experience damages between 2 and 20% of county income (90% chance) under business-as-usual emissions.”

We’re All Going To Die Anyway
Approximately 40,000 people died in automobile accidents in the US in 2016. One factor the study does not take into account is that autonomous driving systems are expected to slash highway fatalities by up to 90% in the near future. 40,000 deaths may not seem like a big enough reason to worry about the effects of climate change for some people.
After all, Fox News talking head Lisa Kennedy Montgomery said last week that removing 22,000,000 Americans from eligibility for health care is no big deal because, “We’re all going to die anyway.” That statement is indicative of how far America has come as a society that values wealthy white males of Western European extraction and corporations more than it does the rest of its citizens.
But even Trumpies understand money. When local economies start getting decimated by the economic costs of climate change, then the scales will fall from the eyes of the climate deniers as they start screaming for government — the same institution they vilified for decades — to “do something.” But of course, by then, it will be too late. Karma, like gravity, is a harsh mistress.

Computer Models Are Not Infallible
Such computer models may turn out to be inaccurate but the statistical analysis that resulted in this report represents all the latest advances in information technology. “Past models had only looked at the United States as a single region,” said Robert E. Kopp, a climate scientist at Rutgers and a lead author of the study. “They missed this entire story of how climate change would create this large transfer of wealth between states.”
The latest research also cannot take into account how changes in migration patterns within the US may alter the outcome. Social realignments are happening already. An article in The Guardian today tracks how two people came to opposite conclusions about where they chose to live.

Cultural Changes Drive Migration
One man has abandoned California and its ultra-expensive lifestyle to live more frugally in Houston. He also finds Texas’ robust gun policies and determination to discriminate against various members of society based on ethnicity, language, or sexual orientation more to his liking.
Another man has grown weary of the right-wing influence sweeping across the Lone Star State and has relocated to California, where liberal politics and abundant opportunities in the tech world are just what he is looking for.
America may not actually split in two as Trumpism continues to roil US society, but if people are willing to relocate because of ideological differences, they will certainly opt to do so if they perceive climate-related threats are affecting their well being.

Coping Strategies
There are other imponderables that computer models find it hard to assess. Society may yet develop unforeseen strategies for coping with climate change. Farmers in Montana may start growing cotton. Texas could become an important source of bananas. The benefits to coastal areas in the Northeast and along the West Coast may be less than anticipated because they are limited by rising sea levels and the advent of more powerful storms.
As more people move away from disadvantaged areas, they may put pressure on cooler coastal areas that may not be equipped to cope with the influx of new citizens. Then there is the whole unanswered question of how climate change may drive a rise in international migration patterns.

Think Globally, Act Locally
The report suggest that local and regional strategies will be vital to coping with the impact of climate change. Cities such as San Francisco and Los Angeles are just two of many that are moving aggressively to slash their carbon emissions and boost the amount of renewable energy available to their residents.
“That’s the hope, that this research can help prevent many of these outcomes,” said Trevor Houser, a co-author of the paper who helps direct the Climate Impact Lab. “If cities take action to prevent heat wave deaths by building cooling centers, then costs would be lower than we project. But I wouldn’t see that as a failure of prediction — that’s a policy success.”

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04/07/2017

Climate Change Is Harming The Health Of Australians

Al Jazeera - *

And it will continue to harm tomorrow and well in to the future.
An Aurizon coal train travels through the countryside in Muswellbrook, north of Sydney [Jason Reed/Reuters]
During the paralysing heatwave of January 2014, Ambulance Victoria, the pre-hospital emergency care provider for Melbourne and rural Victoria state, could barely keep up with demand. Emergency dispatches in the region were up 25 percent above average, as heat-related disease in the metro area spiked five times above normal levels.
After temperatures finally dropped, following the hottest four-day span in Victoria's history, the state government estimated an additional 167 deaths as a result of the heatwave. It would be reasonable to assume these were conservative figures.
Welcome to a warmer Australia.
Over the past half-century, average temperatures across the continent have steadily increased, bringing more frequent heat waves that are longer and hotter than any in recorded history. Such prolonged heat waves are causing heightened rates of dehydration, heat exhaustion, and heatstroke, and worsening existing health conditions like heart disease, and potentially even acute kidney injury. Tragically, children and the elderly are most vulnerable. While human health is the hardest hit by climate change, its impacts are far-reaching, with small and large businesses alike under threat.
In the short term, dirty air makes it harder for a child's lungs to develop, and can contribute to stroke and heart attack later in life.
The effects of climate change aren't unique to Australia, but it does present a unique set of challenges there. Indeed, no country is immune, with climate change threatening to overwhelm the basic health and government services we depend on. The UK government's 2017 national Climate Change Risk Assessment identified a number of "high-risk" priorities, including the infrastructure damage and health impacts expected from flooding and coastal erosion; and again, the effect of rising temperatures on the public's health.
In response to this, many world leaders, have finally woken up to these threats. The Paris Agreement ushered in a new era of international climate cooperation, and even as the United States, the world's largest historical emitter, pulled out of the deal, other economic powerhouses have reaffirmed their commitments to accelerate climate change mitigation. Last year, the UK government pledged to phase out coal-fired power by 2025 and are on track to deliver on this.
Australia, unfortunately, has been slow to act on the reduction of climate warming pollutants and on better preparing the health community to deal with its impacts. Instead, the federal government has worked to strengthen its ties and investments in the coal industry, leaving the health and medical community scrambling to catch up to their international counterparts in addressing climate change and health.
However, a few days ago marked a turning point. Australia has taken an enormous step forward, as a coalition of the country's leading health experts and organisations joined federal parliamentarians in launching a new Framework for a National Strategy on Climate, Health and Well-being for the country.
The Framework provides a roadmap to help policymakers and health authorities address and prepare for the real and present dangers that climate change poses to public health.
It cannot come soon enough.
Across the world, the burning of fossil fuels is harming our health. In the short term, dirty air makes it harder for a child's lungs to develop, and can contribute to stroke and heart attack later in life. Through climate change, the most vulnerable and least prepared in society are most at risk.
Recognising the knowledge gap is one thing, but now the government must follow through and turn these strategic plans into tangible actions. If policymakers heed the advice and tap into the extensive expertise of the health community, Australians will be better prepared, and safer, when the next bushfire threatens a country town or the next heat wave hits.

*Dr Nick Watts is a fellow at University College London's Institute for Global Health. He is the executive director of the Lancet Countdown: Tracking Progress on Health and Climate Change, an independent and multi-disciplinary research collaboration between academic centres around the world at UCL. 

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Vulnerable ‘Chokepoints’ Threaten Global Food Supply, Warns Report

The Guardian

Fourteen critical bottlenecks, from roads to ports to shipping lanes, are increasingly at risk from climate change, say analysts
A map of global marine traffic on 26 June 2017 at 15.30 GMT. Photograph: Marine Traffic
Increasingly vulnerable “chokepoints” are threatening the security of the global food supply, according to a new report. It identifies 14 critical locations, including the Suez canal, Black Sea ports and Brazil’s road network, almost all of which are already hit by frequent disruptions.
With climate change bringing more incidents of extreme weather, analysts at the Chatham House thinktank warn that the risk of a major disruption is growing but that little is being done to tackle the problem. Food supply interruptions in the past have caused huge spikes in prices which can spark major conflicts.
The chokepoints identified are locations through which exceptional amounts of the global food trade pass. More than half of the globe’s staple crop exports – wheat, maize, rice and soybean – have to travel along inland routes to a small number of key ports in the US, Brazil and the Black Sea. On top of this, more than half of these crops – and more than half of fertilisers – transit through at least one of the maritime chokepoints identified.

The global food trade depends on 14 critical ‘chokepoints’, almost all of which are at risk of increasing disruption
Guardian graphic | Source: Chatham House
“We are talking about a huge share of global supply that could be delayed or stopped for a significant period of time,” said Laura Wellesley, one of the authors of the Chatham House report. “What is concerning is that, with climate change, we are very likely to see one or more of these chokepoint disruptions coincide with a harvest failure, and that’s when things start to get serious.”
The chokepoints are already suffering repeated disruptions, the report found. US inland waterways and railways, which carry 30% of the world’s maize and soy, were hit by flooding that halted traffic in 2016 and a 2012 heatwave that kinked rail lines and caused derailments.
The Panama canal has been hampered by drought, while the Suez canal has been closed by sandstorms and threatened by attempted terrorist bomb attacks. Brazil’s muddy roads are often closed by heavy rain, with 3,000 trucks stranded earlier in 2017, while its vital southern ports have been closed by storms and floods. The only chokepoint that has not recently been disrupted is the Straits of Gibraltar, which connects the Mediterranean with the Atlantic.
The Middle East and North Africa region is particularly vulnerable, the report found, because it has the highest dependency on food imports in the world and is encircled by maritime bottlenecks. It also depends heavily on wheat imports from the Black Sea.
Grain is loaded into a ship’s granary, in Mariupol, Ukraine. Photograph: Oleksandr Khmelevskiy/Alamy
In 2010, a severe heatwave in Russia badly hit the huge grain harvest, leading the government to impose an export ban. As a result, prices spiked in 2011 and this was a significant factor in the Arab Spring conflicts. Other factors were important too, said Wellesley, but she said: “At the start, it was about the price of bread.”
The risks posed by the chokepoints is rising as the international trade in food is growing but also because of global warming, according to the report. It says climate change is bringing more storms, droughts and heatwaves which can block chokepoints and also damage already ageing infrastructure. But it is also likely to fuel armed conflicts, which can also shut down the bottlenecks.
Other countries especially at risk from disruption are poorer nations reliant on imports such as Ethiopia, Kenya, Tanzania and Sudan, as well as richer nations like Japan and South Korea, according to the report.
China is also a major importer but it has done the most to mitigate its exposure to chokepoint risk, the report found. It has diversified its supply routes, for example building a railway across South America to lessen reliance on the Panama canal. Chinese companies also own and operate ports around the world.
The report recommends increased global cooperation to plan for food supply crises and more investment in crucial infrastructure. Wellesley said: “The straits of Hormuz [which Iran has threatened to close] is a really interesting example of where the energy sector is sitting up and taking notice – the food sector should be doing the same. Those same countries that rely on Hormuz to export their oil rely almost entirely on the same strait for their food supply.”

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Hawking Says Trump's Climate Stance Could Damage Earth

BBC - Pallab Ghosh


Stephen Hawking says that US President Donald Trump's decision to pull out of the Paris climate agreement could lead to irreversible climate change.
Prof Hawking said the action could put Earth onto a path that turns it into a hothouse planet like Venus.
He also feared aggression was "inbuilt" in humans and that our best hope of survival was to live on other planets.
The Cambridge professor spoke exclusively to BBC News to coincide with his 75th birthday celebrations.
Arguably the world's most famous scientist, Prof Hawking has had motor neurone disease for most of his adult life. It has impaired his movement and ability to speak.
Yet through it all, he emerged as one of the greatest minds of our time. His theories on black holes and the origin of the Universe have transformed our understanding of the cosmos.
Prof Hawking has also inspired generations to study science. But through his media appearances what has been most impressive of all has been his humanity.

'Great danger'
His main concern during his latest interview was the future of our species. A particular worry was President Trump's decision to withdraw from the Paris climate agreement to reduce CO2 levels.
"We are close to the tipping point where global warming becomes irreversible. Trump's action could push the Earth over the brink, to become like Venus, with a temperature of two hundred and fifty degrees, and raining sulphuric acid," he told BBC News.
"Climate change is one of the great dangers we face, and it's one we can prevent if we act now. By denying the evidence for climate change, and pulling out of the Paris Climate Agreement, Donald Trump will cause avoidable environmental damage to our beautiful planet, endangering the natural world, for us and our children."
The UN's Intergovernmental Panel on Climate Change (IPCC) also highlights the potential risk of hitting climate tipping points as temperatures increase - though there are gaps in our knowledge of this topic.
In its Fifth Assessment Report, the IPCC authors wrote: "The precise levels of climate change sufficient to trigger tipping points (thresholds for abrupt and irreversible change) remain uncertain, but the risk associated with crossing multiple tipping points in the Earth system or in interlinked human and natural systems increases with rising temperature."
When asked whether he felt we would ever solve our environmental problems and resolve human conflicts, Prof Hawking was pessimistic, saying that he thought our days on Earth were numbered.
"I fear evolution has inbuilt greed and aggression to the human genome. There is no sign of conflict lessening, and the development of militarised technology and weapons of mass destruction could make that disastrous. The best hope for the survival of the human race might be independent colonies in space."
And on Brexit, he feared UK research would be irreparably damaged.
"Science is a cooperative effort, so the impact will be wholly bad, and will leave British science isolated and inward looking".
I asked him what he would like his legacy to be.
"I never expected to reach 75, so I feel very fortunate to be able to reflect on my legacy. I think my greatest achievement, will be my discovery that black holes are not entirely black."
"Quantum effects cause them to glow like hot bodies with a temperature that is lower, the larger the black hole. This result was completely unexpected, and showed there is a deep relationship between gravity and thermodynamics. I think this will be key, to understanding how paradoxes between quantum mechanics and general relativity can be resolved."
When asked if money or practicality were no object, what his dream present would be, he said it would be a cure for motor neurone disease - or at least a treatment that halted its progression.
"When I was diagnosed at 21, I was told it would kill me in two or three years. Now, 54 years later, albeit weaker and in a wheelchair, I'm still working and producing scientific papers. But it's been a great struggle, which I have got through only with a lot of help from my family, colleagues, and friends."

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03/07/2017

Energy Wonks Have A Meltdown Over The US Going 100 Percent Renewable. Why?

The Conversation

You may agree the U.S. should move to renewables, but how quickly can we do it and how? Duke Energy/flickr, CC BY-NC-ND
Science is messy, but it doesn't have to be dirty.
On June 19, a group of respected energy researchers released a paper in the journal Proceedings of the National Academy of Sciences (PNAS) that critiqued a widely cited study on how to power the U.S. using only renewable energy sources. This new paper, authored by former NOAA researcher Christopher Clack and a small army of academics, said that the initial 2015 study had "errors, inappropriate methods and implausible assumptions," about using only the sun, wind and water to fuel the U.S.
What followed was a storm of debate as energy wonks of all stripes weighed in on the merits of the PNAS analysis. Mark Z. Jacobson, a Stanford University professor who was the lead author of the 2015 study, shot back with detailed rebuttals, in one calling his fellow researchers "fossil fuel and nuclear supporters."
Why the big kerfuffle? As an energy researcher who studies the technologies and policies for modernizing our energy system, I will try to explain.
In general, getting to a clean energy system – even if it's 80 percent renewable – is a well agreed-upon goal and one that can be achieved; it's that last 20 percent – and how to get there – that forms the main point of contention here.

'Energy Twitter' on fire
Jacobson's seminal paper, which was also published in PNAS, tied together a significant amount of work of his own and others showing that all energy used for all purposes in the U.S. could come from with wind, water and solar (WWS) by 2050.
What about when the sun doesn't shine, the wind doesn't blow or water is unavailable? His findings postulated that significant amounts of energy storage would be needed, mostly in the form of heat and hydrogen, to meet energy demand when there isn't enough renewable energy and to store it when there's too much. They also concluded this scenario would be cheaper than a world that relies on other technologies such as nuclear, carbon capture and other methods of reducing carbon emissions.
The Clack rebuttal was blunt and cut deep at the assumptions that underlie the work of Jacobson and colleagues. The same PNAS issue also included a counter-rebuttal to Clack from Jacobson.
Energy Twitter – that is, energy wonks like me on Twitter – exploded.
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So why all the fuss?
Much of the heat from this debate seems to stem from Jacobson making some pretty bold claims in and about his paper, going so far as to tell MIT Technology Review that "there is not a single error in our paper." That is a very, very bold claim and, depending on how it is interpreted, could be read to say that the study authors' model is perfect, which of course it is not, as none are.
This debate may seem arcane, but it has significant political and societal implications.
Some celebrities have signed on to Jacobson's vision and have pressed for policies formed around his analyses of the feasibility of an entire energy system that runs 100 percent off of wind, water and solar. If policymakers buy into the technical and economic assumptions in the paper, it has big implications for the direction of state, local and national policies.
Detractors, meanwhile, have raised a number of concerns. In particular, they argue that decisions made based on Jacobson's analyses alone could lead to serious overinvestment in only the technologies considered, which could possibly backfire if the costs turn out to be higher than expected.

The nitty-gritty
To make projections around how the future energy system will work, researchers create computer-based models, input assumptions and then run simulations.
The rebuttal from Clack and co-authors focused on four major issues they saw with the WWS paper: 1) modeling errors, 2) implausible assumptions, 3) insufficient power system modeling and 4) inadequate scrutiny of the input climate model, which informs how much solar and wind power are available for power generation. Here are some highlights with my own thoughts sprinkled in.
Up for debate: hydropower can provide steady power when solar and wind sources are not available, but can they be expanded without much economic and environmental cost? BriarCraft/flickr, CC BY-NC
Clack takes issue with the amount of hydroelectric power that Jacobson assumes is available. In their rebuttals, they spar over the exact numbers, but Jacobson assumes there is about the same amount of total energy produced from hydropower in 2050 as today, although when, and at what rate, that energy is produced is a crucial question.
In Jacobson's model, there is a significant increase in hydropower capacity – up to 1,300 gigawatts (or about 10 times current capacity), which appears to run for at least 12 hours straight in some days of the model output. Jacobson says this is possible by installing more turbines and generators at existing dams, just not using them very often.
But dams are built with specific maximum flow rates because if you let too much water flow through a dam, you can flood areas downriver. Jacobson has since admitted that providing this much extra power from existing dams would be hard.
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I recently took a tour of Hoover Dam. One of the first things they tell you is that the dam was built for irrigation and flood control, and that electricity production is a nice side product. So expecting that dams in the country could boost their output might be harder than the analysis implies.

Implausible assumptions
Clack questions a long list of input assumptions of Jacobson's model. A number are related to how quickly technologies can mature and be used at large scale, including underground thermal energy storage, phase change materials to store solar thermal energy, and hydrogen as a usable fuel. Other critiques focus on assumptions around how flexible the demand for energy can be – a key consideration when dealing with variable sun and wind power. Then there's the amount of electric transmission power infrastructure needed, the costs of all the capital required, the pace of investment needed and land use issues.
Some criticisms are probably fair. I tend to be bullish on the potential of technology to advance rapidly, but having worked in residential energy use, and energy retrofits in particular, I find the amount of geothermal energy storage retrofits for heating and air-conditioning in buildings Jacobson assumed hard to fathom.
I have some reservations on the ability of 67 percent of demand to be flexible. I also have some questions on the pace of investment required in Jacobson's scenario.

Insufficient power system modeling
Clack attacks LOADMATCH, the power system model in Jacobson's analysis, as being too simplistic. The main criticism of LOADMATCH is that it does not consider frequency regulation – the need to keep the frequency of the power grid steady at 60 Hz, which is a very important aspect of keeping the power supply reliable.
One piece of anecdotal information: Jacobson states in the paper Supplementary Information that it takes LOADMATCH about three to four minutes to simulate an entire year. Our simulations of just the Texas electricity market can take hours to run, and can take significantly longer for simulations of high levels of renewables.
After reading both papers, both supplementary information sections, the counter-rebuttal, a lot of news articles and tweetstorms (from other energy folks I trust), I find myself thinking that the burden of proof is still in Jacobson's court. There are many lessons to learn here.
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But, in the end, my view is that the body of scientific understanding will be stronger for it. The peer review process is slow, uses imperfect human volunteers and doesn't always get it exactly right the first time. The list of authors on the Clack rebuttal is impressive, and should be paid attention to. However, if Jacobson's work can survive this challenge, I figure it will stand the test of time.

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