Showing posts with label transboundary. Show all posts
Showing posts with label transboundary. Show all posts

Wednesday, January 8, 2014

Conflict over water in cross-border river basins – the need for peaceful cooperation by Peter Brabeck-Letmathe

In January 2005, I organised the first discussion on water at the World Economic Forum in Davos. Avishay Braverman, a leading Israeli politician, and then President of Ben Gurion University of the Negev, was one of the invited panelists. He spoke about the battle over water – some were even seeing the risks of war over water – in the Middle East and elsewhere.

But he made it very clear: “Water is not the reason for war; it is only an excuse for war." Another quote from Malidoma Somé, an initiated Elder into the Dagara Tribe of West Central Africa and holder of a Ph.D. in Political Science from the Sorbonne: “The Dagara tribe of West Central Africa successfully categorize their people into five different categories: fire, water, mineral, earth and nature. The "water" people are usually considered the peacemakers. They are the ones with the ability to reconcile differences, both differences within the self and differences with one another.”

Recently the rivalries between Egypt and Ethiopia have drawn worldwide attention. The two nations’ dispute over the construction of the Ethiopian giant dam is escalating.

Ethiopia announced its Ethiopian Grand Renaissance Dam project in 2011. The project is located in the Benishangul-Gumuz Region of Ethiopia, about 40km east of the border with Sudan. When completed, it will be one of the largest dams in Africa, with a capacity of 63 billion cubic meters, and since it was announced the project has caused a battle between Egypt and Ethiopia over water resources.

Ethiopian officials claim that the project is “win-win”, whereas Egyptians disagree, and some Egyptian politicians were even reported as saying that “it might be better to bomb the dam or to arm Ethiopian guerrillas to pressure the government in Addis Ababa” (Financial Times article, ‘Water: Battle of the Nile’).

The Nile, as one of the longest rivers in the world, passes through 11 countries: Democratic Republic of Congo, Burundi, Rwanda, Tanzania, Kenya, Uganda, Eritrea, Ethiopia, Sudan, South Sudan and Egypt. Two main tributaries, the White Nile and the Blue Nile, meet at Khartoum and flow northwards through the Sahara desert. Between 80-90%of the Nile’s flow comes from the Blue Nile and the other rivers (such as Atbara) which originate in the Ethiopian Highlands, while the White Nile contributes 10-20 % of the annual Nile discharge (State of the Nile Basin 2012).

In the northern part of the Nile basin, where Egypt, Sudan and South Sudan lie, there is virtually no rainfall in the summer. In contrast, the southern portion, which encompasses the Ethiopian Highlands, has heavy rains during the summer months. Evaporation is averagely high in the basin, but also varies from country to country. In the desert area, evaporation is low, as there is little available water despite higher temperatures. In contrast, the Ethiopian Highlands experience lower temperatures. Therefore, less rainfall is evaporated and more appears as run off. This link, to the Food and Agriculture Organization of the United Nations, highlights the natural water balance across each country around the Nile Basin. (See Table 1.)

Up to now, most of the water withdrawal from the Nile River has been used for irrigation in Egypt, Sudan and South Sudan, while upstream countries such as Ethiopia were barely using Nile waters. The latter are increasingly looking into the potential of Nile as a source of water and power supply, in order to develop their domestic economy including agricultural activities.

Fighting for water resources in the shared river basin is not something new. As a typical example, the uneven distribution of water resources in the Nile Basin, due to geological, historical, economic and political reasons, has caused tension between downstream countries (Egypt, Sudan and South Sudan) and those sitting upstream. In recent decades, rivalry between nations and threat for political security in the basin has escalated, with increasing water resource scarcity under the pressure of fast growing populations, economic development, and climate change.

A consensus among all involved stakeholders is key to settling the issue in the long term, and it should be based on a holistic understanding of the challenges and with a focus on sustainable development across the whole basin. This has technical, economic and political aspects. One is the loss of water from the river due to evaporation: for instance, less than half of the water entering the Sudd region, a vast swamp in South Sudan, flows out of it into the White Nile. The rest disappears through evaporation and evapotranspiration. More water is lost between Sudd and Assuan, and then, in particular, in Lake Assuan. Research therefore suggests that from a water economy view it would be better to withdraw water for irrigation upstream than downstream before large parts of it are lost through evaporation (Whittington et al., 2004). Goods with the water embedded in food grown further upstream could then be traded to supply downstream consumers (see my previous post on virtual water trade).

Another aspect to be considered is irrigation efficiencies. Let me illustrate this with FAO data on irrigation water requirement and agricultural water withdrawal between 1993 and 2007 in the countries in the basin. The country with the highest irrigation efficiency among these 11 countries is Egypt, at 76.5%, following by Uganda at 52.2%. The irrigation efficiency in the rest of the countries is only around 20%. Agricultural water withdrawal accounts for 93.6% of total water withdrawal. That makes 3.7 billion cubic meters of water loss from irrigation every year in the nation, accounting for 6% of the capacity of the reservoir under construction. Given the large percentage that agricultural water withdrawal represents of total water withdrawal - 73.4% on average in all of these countries - we know that a total of nearly 42 billion cubic meters of water withdrawn for irrigation every year from the river basin is lost.

Just by looking at this data, it is clear that establishing effective common cross-border water strategies and management schemes, and adopting tools such as the water cost curve strategy proposed by 2030 Water Resource Group to improve the efficiency in local water use (especially irrigation), are essential for relieving water shortage stress in the Basin and ultimately, avoid conflict.

A consensus, involving technical, economic, and political measures, will be the way out of the current situation that threatens peace and development in this region.

No doubt, the issue requires further discussion; I would welcome any thoughts and comments. More

Thursday, September 26, 2013

September 25, 2013, 2:54 p.m. ET Italy Calls for Food Security to Be U.N. Priority

ROME--Italy wants to shepherd efforts to make food security a priority for global policy makers, Prime Minister Enrico Letta said in his debut speech at the United Nations General Assembly Wednesday.

"We should address the root causes of the ills afflicting our world rather than limit ourselves to the side effects," Mr. Letta said. "The time has come to launch a new global consensus on food," he said.

In 2008, Italy, with limited financial firepower due to chronic fiscal problems, tried to make food security a signature theme at the Group of Eight summit in L'Aquila, Italy, prodding the largest economies to pledge as much as $15 billion for the cause. The global financial crisis then commanded vast public resources and attention, even though the serious spike in basic food prices that helped trigger the so-called Arab Spring sparked fear that easy monetary policies in developed economies would trigger runaway inflation in basic staples.

Commodity prices have since stabilized, according to a price-monitoring index set up by the UN's Food and Agricultural Organization in Rome.

Mr. Letta said that the 2015 Expo, or world's fair, in Milan should be a springboard for global initiatives, floating the idea that a multilateral pact might be reached there.

The Milan Expo, whose slogan is "Feeding the Planet, Energy for Life," aims to draw 20 million visitors interested in issues linked to sustainability. The event should be seized upon to create a Milan Protocol, modelled on the Kyoto Protocol of the late 1990s that covers environmental issues, with nutritional education, sustainable farming practices and food waste as its cardinal points, according to the Barilla Center for Food and Nutrition, a think tank backed by Barilla SpA, the pasta maker.

"Italy, with its rich food culture and heritage, is well-placed to show leadership in tackling the world's global food issues," said Danielle Nierenberg, an advisory board member at the Center.

Italy is also home to the U.N.'s main food-related agencies, the World Food Program, the International Fund for Agricultural Development, and the FAO, which after decades of advising farmers on how to boost yields is beginning to try to influence retail supply chains in an effort to reduce what it says is the waste of one-third of global food production. More

 

Wednesday, August 14, 2013

Peak Water: What Happens When the Wells Go Dry?

Peak oil has generated headlines in recent years, but the real threat to our future is peak water. There are substitutes for oil, but not for water. We can produce food without oil, but not without water.

We drink on average four liters of water per day, in one form or another, but the food we eat each day requires 2,000 liters of water to produce, or 500 times as much. Getting enough water to drink is relatively easy, but finding enough to produce the ever-growing quantities of grain the world consumes is another matter.

Grain consumed directly supplies nearly half of our calories. That consumed indirectly as meat, milk, and eggs supplies a large part of the remainder. Today roughly 40 percent of the world grain harvest comes from irrigated land. It thus comes as no surprise that irrigation expansion has played a central role in tripling the world grain harvest over the last six decades.

During the last half of the twentieth century, the world’s irrigated area expanded from close to 250 million acres (100 million hectares) in 1950 to roughly 700 million in 2000. This near tripling of world irrigation within 50 years was historically unique. But since then the growth in irrigation has come to a near standstill, expanding only 10 percent between 2000 and 2010.

In looking at water and our future, we face many questions and few answers. Could the world be facing peak water? Or has it already peaked?

Farmers get their irrigation water either from rivers or from underground aquifers. Historically, beginning with the Sumerians some 6,000 years ago, irrigation water came from building dams across rivers, creating reservoirs that then enabled them to divert the water onto the land through a network of gravity-fed canals. This method of irrigation prevailed until the second half of the twentieth century, where with few sites remaining for building dams, the prospects for expanding surface irrigation faded. Farmers then turned to drilling wells to tap underground water resources.

In doing so, they learned that there are two types of aquifers: those that are replenishable through rainfall, which are in the majority, and those that consist of water laid down eons ago, and thus do not recharge. The latter, known as fossil aquifers, include two strategically important ones, the deep aquifer under the North China Plain and the Ogallala aquifer under the U.S. Great Plains.

Tapping underground water resources helped expand world food production, but as the demand for grain continued climbing, so too did the amount of water pumped. Eventually the extraction of water began to exceed the recharge of aquifers from precipitation, and water tables began to fall. And then wells begin to go dry. In effect, overpumping creates a water-based food bubble, one that will burst when the aquifer is depleted and the rate of pumping is necessarily reduced to the rate of recharge.

Today some 18 countries, containing half the world’s people, are overpumping their aquifers. Among these are the big three grain producers—China, India, and the United States—and several other populous countries, including Iran, Pakistan and Mexico.

During the last couple of decades, several of these countries have overpumped to the point that aquifers are being depleted and wells are going dry. They have passed not only peak water, but also peak grain production. Among the countries whose use of water has peaked and begun to decline are Saudi Arabia, Syria, Iraq, and Yemen. In these countries peak grain has followed peak water.

Nowhere are falling water tables and the shrinkage of irrigated agriculture more dramatic than in Saudi Arabia, a country as water-poor as it is oil-rich. After the Arab oil export embargo in 1973, the Saudis realized they were vulnerable to a counter-embargo on grain. To become self-sufficient in wheat, they developed a heavily subsidized irrigated agriculture based heavily on pumping water from fossil aquifers.

After being self-sufficient in wheat for over 20 years, the Saudis announced in early 2008 that, with their aquifers largely depleted, they would reduce wheat planting by one eighth each year until 2016, when production would end. By then Saudi Arabia projects it will be importing some 15 million tons of wheat, rice, corn, and barley to feed its 30 million people. It is the first country to publicly project how aquifer depletion will shrink its grain harvest.

Syria, a country of 22 million people riddled by civil war, is also overpumping its underground water. Its grain production peaked in 2001 and during the years since has dropped 32 percent. It, too, is becoming heavily dependent on imported grain.

In neighboring Iraq, grain production has plateaued over the last decade. In 2012 it was dependent on the world market for two thirds of its consumption. In addition to aquifer depletion, both Syria and Iraq are also suffering from a reduced flow in the Tigris and Euphrates rivers as upstream Turkey claims more water for its own use.

In Yemen, a nation of 24 million people that shares a long border with Saudi Arabia, the water table is falling by roughly 6 feet a year as water use outstrips aquifer recharge. With one of the world’s fastest-growing populations and with water tables falling throughout the country, Yemen is fast becoming a hydrological basket case. Grain production has fallen by nearly half over the last 40 years. By 2015, irrigated fields will be a rarity and the country will be importing virtually all of its grain. Living on borrowed water and borrowed time, Yemen could disintegrate into a group of tribal fiefdoms warring over water.

Thus in the Arab Middle East the world is seeing the collision between population growth and water supply at the regional level. For the first time in history, grain production is dropping in a geographic region with nothing in sight to arrest the decline. Because of the failure of governments in the region to mesh population and water policies, each day now brings 9,000 more people to feed and less irrigation water with which to feed them.

Other countries with much larger populations are also near or beyond peak water. In Iran, a country with 77 million people, grain production dropped 10 percent between 2007 and 2012 as irrigation wells started to go dry. One quarter of its current grain harvest is based on overpumping. With its population growing by a million people per year, it, too, faces a day of reckoning.

Pakistan, with a population of 182 million that is growing by 3 million per year, is also mining its underground water. Most of its irrigation water comes from the Indus river system, but in the Pakistani part of the fertile Punjab plain, the drop in water tables appears to be similar to the better-known fall that is occurring in India.

Observation wells near the twin cities of Islamabad and Rawalpindi showed a fall in the water table between 1982 and 2000 that ranged from 3 to 6 feet a year. In the Pakistani province of Balochistan, which borders Afghanistan, water tables around the capital, Quetta, are falling by 3.5 meters (11.5 feet) per year—pointing to the day when the city will run out of water. Sardar Riaz A. Khan, former director of Pakistan’s Arid Zone Research Institute in Quetta, reports that six of Balochistan’s seven basins have exhausted their groundwater supplies, leaving their irrigated lands barren.

In a World Bank study, water expert John Briscoe says: “Pakistan is already one of the most water-stressed countries in the world, a situation which is going to degrade into outright water scarcity due to high population growth.” He then notes that “the survival of a modern and growing Pakistan is threatened by water.”

In Mexico—home to a population of 122 million that is projected to reach 156 million by 2050—the demand for water is outstripping supply. Mexico City’s water problems are well known. Rural areas are also suffering. In the agricultural state of Guanajuato, the water table is falling by 6 feet or more a year. In the northwestern wheat-growing state of Sonora, farmers once pumped water from the Hermosillo aquifer at a depth of 40 feet. Today they pump from over 400 feet. Mexico may be near peak water use. Peak grain may be imminent.

In addition to these small and midsize countries, aquifer depletion now also threatens harvests in the big three grain producers—China, India, and the United States—that together produce half of the world’s grain. The question is not whether water shortages will affect future harvests in these countries, but rather when they will do so.

Among the big three, dependence on irrigation varies widely. Some four fifths of China’s grain harvest comes from irrigated land, most of it drawing on surface water, principally the Yellow and Yangtze rivers. For India, three fifths of its grain is irrigated, mostly with groundwater. For the United States, only one fifth of the harvest is from irrigated land. The bulk of the grain crop is rain-fed, produced in the highly productive Midwestern Corn Belt where there is little or no irrigation.

Falling water tables are already adversely affecting harvest prospects in China, which rivals the United States as the world’s largest grain producer. A groundwater survey released in Beijing in 2001 indicated that the water table under the North China Plain, an area that produces half of the country’s wheat and a third of its corn, was falling fast. Overpumping has largely depleted the shallow aquifer, forcing well-drillers to turn to the region’s deep aquifer, which is not replenishable.

The survey reported that under Hebei Province in the heart of the North China Plain, the average level of the deep aquifer was dropping nearly 10 feet per year. Around some cities in the province, it was falling twice as fast. He Qingcheng, head of the groundwater monitoring team, notes that as the deep aquifer is depleted, the region is losing its last water reserve—its only safety cushion.

In 2010, He Qingcheng reported that Beijing was drilling down 1,000 feet to reach an aquifer, five times deeper than 20 years ago. His concerns are mirrored in the unusually strong language of a World Bank report on China’s water situation that foresees “catastrophic consequences for future generations” unless water use and supply can quickly be brought back into balance.

As serious as water shortages are in China, they are even more alarming in India, where the margin between food consumption and survival is so precarious. In India, whose population is growing by 15 million per year, irrigation depends heavily on underground water. And since there are no restrictions on well drilling, farmers have drilled more than 27 million irrigation wells and are pumping vast amounts of underground water.

In this global epicenter of well drilling, pumps powered by heavily subsidized electricity are dropping water tables at an alarming rate. Among the states most affected are Punjab, Haryana, Rajasthan, and Gujarat in the north and Tamil Nadu in the south. In North Gujarat the water table is falling by 20 feet per year. In Tamil Nadu, a state of 72 million people, water tables are falling everywhere. Kuppannan Palanisami of Tamil Nadu Agricultural University noted in 2004 that 95 percent of the wells owned by small farmers have dried up, reducing the irrigated area in the state by half over the preceding decade.

India’s grain harvest has been expanding rapidly in recent years, but in part for the wrong reason, namely massive overpumping. A World Bank study estimates that 15 percent of India’s food supply is produced by mining groundwater. Stated otherwise, 175 million Indians are now fed with grain produced with the unsustainable use of water. As early as 2004, Fred Pearce reported in New Scientist that “half of India’s traditional hand-dug wells and millions of shallower tube wells have already dried up, bringing a spate of suicides among those who rely on them. Electricity blackouts are reaching epidemic proportions in states where half of the electricity is used to pump water from depths of up to a kilometer.”

As India’s water tables fall, larger farmers are using modified oil-drilling technology to reach water, going as deep as 1,000 feet in some locations. In communities where underground water sources have dried up entirely, all agriculture is now rain-fed and drinking water must be trucked in. Tushaar Shah of the International Water Management Institute says of India’s water situation: “When the balloon bursts, untold anarchy will be the lot of rural India.”

In the United States, farmers are over-pumping in the Great Plains, including in several leading grain-producing states such as Texas, Oklahoma, Kansas, and Nebraska. In these states, irrigation has not only raised wheat yields but it has also enabled a shift from wheat to corn, a much higher-yielding crop. Kansas, for example, long known as the leading wheat state, now produces more corn than wheat.

Irrigated agriculture has thrived in these states, but the water is drawn from the Ogallala aquifer, a huge underground water body that stretches from Nebraska southwards to the Texas Panhandle. It is, unfortunately, a fossil aquifer, one that does not recharge. Once it is depleted, the wells go dry and farmers either go back to dryland farming or abandon farming altogether, depending on local conditions.

In Texas, a large grain and cattle state, whose northern part overlies the shallow end of the Ogallala, irrigated grain area peaked in 1975. Since then it has shrunk by two thirds, with the most precipitous drop in recent years. In Kansas the peak came in 1982 and irrigated grain area has since fallen 41 percent. Nebraska, now also a leading corn-producing state, saw its irrigated area peak most recently, in 2007. Even though aquifer depletion is reducing grain output in several key states, it is not yet sufficient to reduce the overall U.S. grain harvest, the bulk of which is produced in the rain-fed Midwestern Corn Belt.

At the international level, water conflicts, such as the one in the Nile river basin between Egypt and the upstream countries, make the news. But within countries it is the competition for water between cities and farms that preoccupies political leaders. Indeed, in many countries farmers now face not only a shrinking water supply as aquifers are pumped dry, but also a shrinking share of that shrinking supply.

In large areas of the United States, such as the southern Great Plains and the Southwest, virtually all water is now spoken for. The growing water needs of major cities and thousands of small towns often can be satisfied only by taking water from agriculture. As the value of water rises, more farmers are selling their irrigation rights to cities, letting their land dry up. Hardly a day goes by without the announcement of a new sale. Half or more of all sales are by individual farmers or their irrigation districts to cities and municipalities.

In the largest farm-to-city water transfer in U.S. history, farmers in California’s highly productive Imperial Valley agreed in 2003 to send San Diego County enough water to meet the household needs of close to one million people each year. The agreement spans 45 years. This could reduce food production in the Imperial Valley, a huge vegetable garden not only for California, but for countless other markets as well. Writing from the area in the New York Times, Felicity Barringer notes that many fear that “a century after Colorado River water allowed this land to be a cornucopia, unfettered urban water transfers could turn it back into a desert.”

Colorado, with a fast-growing population, has one of the world’s most active water markets. Cities and towns of all sizes are buying irrigation water rights from farmers and ranchers. In the Arkansas river basin, which occupies the southeastern quarter of the state, Colorado Springs and Aurora (a suburb of Denver) have already bought water rights to one third of the basin’s farmland. Aurora has purchased rights to water that was once used to irrigate 19,000 acres of cropland in the Arkansas valley. The U.S. Geological Survey estimates that 400,000 acres of farmland dried up statewide between 2000 and 2005.

Colorado is not alone in losing irrigation water. Farmers in rural India are also losing their irrigation water to cities. This is strikingly evident in Chennai (formerly Madras), a city of 9 million on the east coast. As a result of the city government’s inability to supply water to many of its people, a thriving tank-truck industry has emerged that buys water from nearby farmers and hauls it to the city’s thirsty residents.

For farmers near cities, the market price of water typically far exceeds the value of the crops they can produce with it. Unfortunately the 13,000 privately owned tank trucks hauling water to Chennai are mining the region’s underground water resources. As water tables fall, eventually even the deeper wells will go dry, depriving rural communities of both their food supply and their livelihood.

In the competition for water between farmers on the one hand and cities and industries on the other, farmers always lose. The economics do not favor agriculture. In countries such as China, where industrial development and the jobs associated with it are an overriding national economic goal, agriculture is becoming the residual claimant on the water supply.

Where virtually all water has been claimed, cities can typically get more water only by taking it from irrigation. Countries then import grain to offset the loss of irrigated grain production. Since it takes 1,000 tons of water to produce one ton of grain, importing grain is the most efficient way to import water. Thus trading in grain futures is, in a sense, trading in water futures. To the extent that there is a world water market, it is embodied in the world grain market.

We can now see how overpumping, whether in the Middle East or the U.S. Great Plains, can lead to aquifer depletion and shrinking grain harvests. In short, peak water can lead to peak grain. For some countries this is no longer merely a theoretical possibility. It is a reality.

Thus far, aquifer depletion has translated into shrinking harvests only in smaller countries in the Middle East. When we look at middle-sized countries such as Iran, Mexico, and Pakistan, with tightening water supplies, we see that Iran is already in deep trouble. It is feeling the effects of shrinking water supplies from overpumping. Pakistan may also have reached peak water. If so, peak grain may not be far behind. In Mexico, the water supply may have already peaked. With less water for irrigation, Mexico may be on the verge of a downturn in its grain harvest.

In summarizing prospects for the three big grain producers—the United States, China, and India—we see sharp contrasts. In the United States, the irrigated grainland is starting to shrink largely as a result of depletion of the Ogallala aquifer, making it more difficult to rapidly increase overall grain production.

China, with four fifths of its grain harvest coming from irrigated land, relies heavily on irrigation, but it is largely river water. A notable exception to this is the all-important North China Plain which relies heavily on underground water. With tight water supplies in northern China and with cities claiming more irrigation water, the shrinking water supply will likely reduce the harvest in some local situations. And before long it could more than offset production gains, leading to an absolute decline in China’s grain harvest.

Of the big three countries, the one most vulnerable to overpumping is India. Three fifths of its grain harvest comes from irrigated land. And since only a minor share of its irrigation water comes from rivers, India is overwhelmingly dependent on underground water. Its millions of wells, each powered with a diesel engine or electric motor, are dropping water tables at an alarming rate. Accurate data are hard to come by, but India may have already passed peak water. The question is, will peak water be followed by peak grain or is there enough unrealized technological potential remaining to raise yields enough to offset any imminent losses from wells going dry?

The world has quietly transitioned into a situation where water, not land, has emerged as the principal constraint on expanding food supplies. There is a large area of land that could produce food if water were available.

Water scarcity is not our only challenge. Just as harvests are shrinking in some countries because of aquifer depletion, they are shrinking in other countries because of soil erosion. Among the more dramatic examples are Mongolia and Lesotho, which have each seen their grain area shrink as a result of soil erosion. And as a result of overplowing and overgrazing, two huge new dust bowls are forming in the world today, one in northwest China and the other in the Sahelian region of Africa. These giant dust bowls dwarf the U.S. Dust Bowl of the 1930s.

The bottom line is that water constraints—augmented by soil erosion, the loss of cropland to nonfarm uses, a plateauing of yields in major producing areas, and climate change—are making it more difficult to expand world food production. The question raised is this: Is it conceivable that the negative influences on future food production could one day offset the positive ones, leading to a cessation in the world grain harvest? More

Adapted from ‘The real threat to our future is peak water’ by Lester R. Brown, published in the Observer on July 6, 2013.

Lester R. Brown is president of the Earth Policy Institute and author of Full Planet, Empty Plates: The New Geopolitics of Food Scarcity (W.W. Norton, 2012).

 

 

Saturday, June 1, 2013

Water Wars in Asia?

The battles of yesterday were fought over land. Those of today are over energy. And the battles of tomorrow may be over water.

Nowhere is the danger greater than in Asia. Drought, urbanization, pollution, and inadequate infrastructure have made Asia the world’s most water-scarce continent on a per-capita basis. Many of its water sources cross national boundaries, creating the potential for international conflict as supplies dwindle. Now global warming is raising the stakes further, causing rising sea levels, more severe floods and droughts, and the melting of the glaciers in the Tibetan plateau.

The water security challenges facing China and India in particular have consequences not just for the two rising powers, but for Asia as a whole. They threaten to reduce economic growth across the region, exacerbate ongoing territorial disputes, and impose further hardships on Asia’s poor. Asia Society Northern California is pleased to host national security expertBrahma Chellaney, water expert Peter Gleick, and futurist Peter Schwartz to discuss what is becoming Asia’s defining crisis of the 21st century.

Brahma Chellaney is Professor of Strategic Studies at the Center for Policy Research in New Dehli. He has written six books on international relations and geopolitics, including Water: Asia’s New Battleground, which won the Asia Society’s Bernard Schwartz Book Award in 2012. His newest book, Water, Peace, and War: Confronting the Global Crisis, has just been released.

Peter Gleick is Co-founder and President of the Pacific Institute. Dr. Gleick is the author of many scientific papers and nine books on water, including The World’s Water and Bottled and Sold: The Story Behind Our Obsession with Bottled Water. He is the recipient of the MacArthur “genius” Fellowship, among other awards.

Peter Schwartz (moderator), a renowned futurist, is Senior Vice President for Global Government Relations and Strategic Planning at Salesforce.com. He was Co-founder and Chairman of Global Business Network (GBN).

Copies of Water: Asia's New Battleground and Water, Peace, and War: Confronting the Global Water Crisis will be available for purchase and signing!

Promotional co-sponsors: The Asia Foundation, East Meets West, Institute of East Asian Studies, UC Berkeley, Japan Policy Research Institute, Pacific Institute, Sierra Club, US China Green Energy Council, World Affairs Council


Program Agenda:

5:30-6:00 pm: Registration
6:00-7:30 pm: Discussion and Audience Q&A
7:30-8:00 pm: Reception and Book Signing


EVENT DETAILS

5 June 2013

6:00pm - 7:30pm

Asia Society
Bechtel Conference Room
500 Washington St.
San Francisco

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$10 Asia Society/Co-sponsor members/students; $15 non-members

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Sunday, April 28, 2013

Entering a resource-shock world

Brace yourself. You may not be able to tell yet, but according to global experts and the US intelligence community, the earth is already shifting under you. Whether you know it or not, you are on a new planet, a resource-shock world of a sort humanity has never before experienced.

Two nightmare scenarios - a global scarcity of vital resources and the onset of extreme climate change - are already beginning to converge and in the coming decades are likely to produce a tidal wave of unrest, rebellion, competition and conflict. Just what this tsunami of disaster will look like may, as yet, be hard to discern, but experts warn of “water wars” over contested river systems, global food riots sparked by soaring prices for life’s basics, mass migrations of climate refugees (with resulting anti-migrant violence) and the breakdown of social order or the collapse of states. At first, such mayhem is likely to arise largely in Africa, Central Asia and other areas of the underdeveloped South, but in time all regions of the planet will be affected.

To appreciate the power of this encroaching catastrophe, it’s necessary to examine each of the forces that are combining to produce this future cataclysm.

Resource shortages

Start with one simple given: the prospect of future scarcities of vital natural resources, including energy, water, land, food and critical minerals. This in itself would guarantee social unrest, geopolitical friction and war.

It is important to note that absolute scarcity does not have to be on the horizon in any given resource category for this scenario to kick in. A lack of adequate supplies to meet the needs of a growing, ever more urbanised and industrialised global population is enough. Given the wave of extinctions that scientists are recording, some resources - particular species of fish, animals and trees, for example - will become less abundant in the decades to come, and may even disappear altogether. But key materials for modern civilisation like oil, uranium and copper will simply prove harder and more costly to acquire, leading to supply bottlenecks and periodic shortages.

Oil - the single most important commodity in the international economy - provides an apt example. Although global oil supplies may actually grow in the coming decades, many experts doubt that they can be expanded sufficiently to meet the needs of a rising global middle class that is, for instance, expected to buy millions of new cars in the near future. In its 2011 World Energy Outlook, the International Energy Agency claimed that an anticipated global oil demand of 104 million barrels per day in 2035 will be satisfied. This, the report suggested, would be thanks in large part to additional supplies of “unconventional oil” (Canadian tar sands, shale oil and so on), as well as 55 million barrels of new oil from fields “yet to be found” and “yet to be developed”.

However, many analysts scoff at this optimistic assessment, arguing that rising production costs (for energy that will be ever more difficult and costly to extract), environmental opposition, warfare, corruption and other impediments will make it extremely difficult to achieve increases of this magnitude. In other words, even if production manages for a time to top the 2010 level of 87 million barrels per day, the goal of 104 million barrels will never be reached and the world’s major consumers will face virtual, if not absolute, scarcity.

Water provides another potent example. On an annual basis, the supply of drinking water provided by natural precipitation remains more or less constant: about 40,000 cubic kilometres. But much of this precipitation lands on Greenland, Antarctica, Siberia and inner Amazonia where there are very few people, so the supply available to major concentrations of humanity is often surprisingly limited. In many regions with high population levels, water supplies are already relatively sparse. This is especially true of North Africa, Central Asia and the Middle East, where the demand for water continues to grow as a result of rising populations, urbanisation and the emergence of new water-intensive industries. The result, even when the supply remains constant, is an environment of increasing scarcity.

Wherever you look, the picture is roughly the same: supplies of critical resources may be rising or falling, but rarely do they appear to be outpacing demand, producing a sense of widespread and systemic scarcity. However generated, a perception of scarcity - or imminent scarcity - regularly leads to anxiety, resentment, hostility and contentiousness. This pattern is very well understood and has been evident throughout human history.

In his book Constant Battles, for example, Steven LeBlanc, director of collections for Harvard’s Peabody Museum of Archaeology and Ethnology, notes that many ancient civilisations experienced higher levels of warfare when faced with resource shortages brought about by population growth, crop failures, or persistent drought. Jared Diamond, author of the bestseller Collapse, has detected a similar pattern in Mayan civilisation and the Anasazi culture of New Mexico’s Chaco Canyon. More recently, concern over adequate food for the home population was a significant factor in Japan’s invasion of Manchuria in 1931 and Germany’s invasions of Poland in 1939 and the Soviet Union in 1941, according to Lizzie Collingham, author of The Taste of War.

Resource-related conflict

Although the global supply of most basic commodities has grown enormously since the end of World War II, analysts see the persistence of resource-related conflict in areas where materials remain scarce or there is anxiety about the future reliability of supplies. Many experts believe, for example, that the fighting in Darfur and other war-ravaged areas of North Africa has been driven, at least in part, by competition among desert tribes for access to scarce water supplies, exacerbated in some cases by rising population levels.

“In Darfur,” says a 2009 report from the UN Environment Programme on the role of natural resources in the conflict, “recurrent drought, increasing demographic pressures, and political marginalisation are among the forces that have pushed the region into a spiral of lawlessness and violence that has led to 300,000 deaths and the displacement of more than two million people since 2003.”

Anxiety over future supplies is often also a factor in conflicts that break out over access to oil or control of contested undersea reserves of oil and natural gas. In 1979, for instance, when the Islamic revolution in Iran overthrew the Shah and the Soviets invaded Afghanistan, Washington began to fear that someday it might be denied access to Persian Gulf oil. At that point, President Jimmy Carter promptly announced what came to be called the Carter Doctrine. In his 1980 State of the Union Address, Carter affirmed that any move to impede the flow of oil from the Gulf would be viewed as a threat to America’s “vital interests” and would be repelled by “any means necessary, including military force”.

In 1990, this principle was invoked by President George HW Bush to justify intervention in the first Persian Gulf War, just as his son would use it, in part, to justify the 2003 invasion of Iraq. Today, it remains the basis for US plans to employ force to stop the Iranians from closing the Strait of Hormuz, the strategic waterway connecting the Persian Gulf to the Indian Ocean through which about 35 percent of the world’s seaborne oil commerce passes.

Recently, a set of resource conflicts have been rising toward the boiling point between China and its neighbours in Southeast Asia when it comes to control of offshore oil and gas reserves in the South China Sea. Although the resulting naval clashes have yet to result in a loss of life, a strong possibility of military escalation exists. A similar situation has also arisen in the East China Sea, where China and Japan are jousting for control over similarly valuable undersea reserves. Meanwhile, in the South Atlantic Ocean, Argentina and Britain are once again squabbling over the Falkland Islands (called Las Malvinas by the Argentinians) because oil has been discovered in surrounding waters. More

 

Friday, March 15, 2013

Stimson Environmental Security program Releasing New South Asia Water Report

For people in the Washington, DC area, next week Stimson hopes you can join their Environmental Security Program on Wednesday March 20th from 10 am-12 pm as we release a new report on transboundary water management and climate change impacts in South Asia, entitled Connecting the Drops: An Indus Basin Roadmap for Cross-Border Water Research, Data Sharing, and Policy Coordination.


The event will feature David Michel (Director of the Stimson Environmental Security Program), Winston Yu (Senior Water Resources Specialist for South Asia at the World Bank), and Satu Limaye (Director of the East-West Center). Please join us for a discussion of the current state of India-Pakistan water relations and new potential pathways for water collaboration between the two countries. You can RSVP by clicking the link in the formal invitation below, or by following this link:

https://docs.google.com/forms/d/1tPeXvZLpLnfcudKQLtikWNBQnrh3mdnw7nTxWJe2u5Y/viewform

Please feel free to forward this invitation to interested colleagues. Thank you, and we look forward to welcoming you to Stimson.

Best,

Russell Sticklor

Stimson Environmental Security Program


Stimson's Environmental Security Program invites you to the publication launch of:

Connecting the Drops: An Indus Basin Roadmap for Cross-Border Water Research, Data Sharing, and Policy Coordination

featuring


David Michel
Director, Environmental Security Program, Stimson

Winston Yu
Senior Water Resources Specialist for South Asia, World Bank

Satu Limaye
Director, East-West Center


Wednesday, March 20, 2013 10 AM – 12 PM

Stimson Center
1111 19th Street NW, 12th Floor

Washington, DC 20036

RSVP HERE


Decision makers in India and Pakistan will have to overcome a host of overlapping socio-economic, environmental, and political pressures as they endeavor to fulfill their countries’ future water needs and peacefully manage the Indus River Basin that both countries share. Increasingly subject to soaring demand, unsustainable consumption patterns, and mounting environmental stresses, almost all of the basin’s renewable water resources are already allocated for various uses — with little to no spare capacity. Scientific and policy collaboration across national and disciplinary boundaries will be essential to providing decision makers with better understanding of the multiple risks weighing on the Indus Basin and the consequent water resource challenges and choices facing the riparian nations.

The Stimson Center, in coordination with the Sustainable Development Policy Institute (Pakistan) and the Observer Research Foundation (India), is pleased to announce the release of a new report, Connecting the Drops: An Indus Basin Roadmap for Cross-Border Water Research, Data Sharing, and Policy Coordination. The report results from a Track II diplomatic initiative that brought together leading Indian and Pakistani scientists, diplomats, water policy analysts and practitioners to analyze emerging stresses on the countries’ shared water resources and identify best practices for cooperative knowledge building and sustainable water management in the Indus Basin.

Please join us for a briefing on the report’s recommendations and a panel discussion of cross-border water management challenges and opportunities in South Asia.

Copies of the report will be available, and the event will be open to the media.