Water Security is National Security

Water resources and how they are managed impact almost all aspects of society and the economy, in particular health, food production and security, domestic water supply and sanitation, energy, industry, and the functioning of ecosystems. Under present climate variability, water stress is already high, particularly in many developing countries, and climate change adds even more urgency for action. Without improved water resources management, the progress towards poverty reduction targets, the Millennium Development Goals, and sustainable development in all its economic, social and environ- mental dimensions, will be jeopardized. UN Water.Org

Showing posts with label dams. Show all posts
Showing posts with label dams. Show all posts

Friday, July 7, 2017

Sustainable development of water security a must

The Nile at Cairo


CAIRO - July 07, 2017: Suhail Bin Mohammed Faraj Faris Al Mazrouei, Minister of Energy, highlighted the UAE’s support for Arab cooperation on the sustainable development of water security.

He made this statement while chairing the 9th session of the Arab Ministerial Council for Water, at the headquarters of the General Secretariat of the League of Arab States in Cairo.

He stated that the Ministry of Energy has produced a draft water strategy for 2036, in cooperation with relevant UAE authorities, to guarantee the provision of sufficient quantities of water, according to international standards, during both regular periods and emergency shortages that affect the country.

He stressed that this strategy will cover the country’s entire water supply chain, with an emphasis on the strategic production of water resources, storage, transport networks and the supply network linking the nation’s various emirates.

The council discussed a range of important issues and reviewed the implementation of a strategic executive plan for water security in the Arab region, as well as ways of cooperating to address the challenges and future requirements of sustainable development.

It also discussed the implementation of its sustainable development plan for 2030, regarding water, and addressed ways of cooperating on a regional initiative to link the energy, water and food sectors. More

Thursday, September 4, 2014

Peak Water

There is a lot of water on planet Earth – 326,000,000,000,000,000,000 gallons (329 trillion gallons), or 1,260,000,000,000,000,000,000 litres. About 70 percent of the planet is made of oceans and 98 percent of all the water on earth is in the oceans. That’s a lot of water.

Only 2 percent of all this water is fresh drinking water but most of that is locked up in the polar icecaps and glaciers – approximately 80 percent (or 1.6 percent of the planet’s water). Another 36 percent is in underground aquifers and wells and roughly 0.036 percent of our fresh water supply is found in lakes and rivers. That still leaves thousands of trillions of gallons for drinking. (Source: Environmental Science, howstuffworks)

But is that enough fresh drinking water for a population which is growing exponentially? Every second, four babies are born and two people die. In the time it will take to write this article, 20,000 people will have joined the human race.

‘Peak Oil’ has been extensively written about for many years “but the real threat to our future is peak water,” wrote Lester R. Brown, president of the Earth Policy Institute, in the summer of 2013 in theguardian. “There are substitutes for oil, but not for water. We can produce food without oil, but not without water.”

“The concept of “peak water” and its implications for the U.S. economy are less well explored and understood.” says Dr. Peter Gleick, President of the Pacific Institute. His April 2010 paper (Peak water limits to freshwater withdrawal and use) sparked such interest that the term “peak water” was chosen by The New York Times as one of their 33 “Words of the Year” for 2010. Gleick outlines three different definitions of “peak water”:

Peak Renewable Water. Most water resources are renewable, in the form of flows of rainfall, rivers, streams, and groundwater basins that are recharged over relatively short time frames. Renewable, however, does not mean unlimited. When human demands for water from a watershed reach 100% of renewable supply, we can’t take any more, and we reach “peak renewable” limits.

For a number of major river basins, we have reached the point of peak renewable water limits, including the Colorado River in the United States. All of the water of the Colorado (indeed, more than 100% of the average flow) is already spoken for through legal agreements with the seven US states and Mexico and in a typical year river flows now often fall to zero before they reach their ends. This is true for a growing number of rivers around the world.

Peak Nonrenewable Water. In some places, water comes from stocks of water that are effectively nonrenewable, such as groundwater aquifers with very slow recharge rates or groundwater systems damaged by compaction or other physical changes in the basin. When the use of water from a groundwater aquifer far exceeds natural recharge rates, this stock of groundwater will be depleted or fall to a level where the cost of extraction exceeds the value of the water when used, very much like oil fields. Continued production of water beyond natural recharge rates will become increasingly difficult and expensive as groundwater levels drop, leading to a peak of production, followed by diminishing withdrawals and use.

This kind of unsustainable groundwater use is already occurring in the Ogallala Aquifer in the Great Plains of the United States, the North China plains, parts of California’s Central Valley, and numerous regions in India. In these basins, extraction may not fall to zero, but current rates of pumping cannot be maintained. Worldwide, a significant fraction of current agricultural production depends on non-renewable groundwater. This is extremely dangerous for the reliability of long-term food supplies.

Peak Ecological Water. Water supports commercial and industrial activity and human health, but it is also fundamental for animals, plants, habitats, and environmentally dependent livelihoods. By some estimates, humans already appropriate almost 50% of all renewable and accessible freshwater flows, leading to significant ecological disruptions…the term “peak ecological water” refers to the point where taking more water for human use leads to ecological disruptions greater than the value that this increased water provides to humans.

Running Out of Water

The story of “Peak Water” is increasingly coming to the forefront in 2014 as large portions of the American mid-west are suffering through the worst drought in the last hundred years. Drinking water supplies from the tap have dried up in many communities forcing authorities to provide bottled-water rations and water for bathing and home use.

Tom Philpott writes in Mother Jones that the water crisis is much worse than previously known. Homeowners and farmers are having to drill deeper wells to harvest dwindling groundwater reserves. California has declared a drought emergency and imposed mandatory restrictions on water use with the levy of heavy fines for wasting water on non-essential activities – watering lawns and driveway, washing cars. National Geographic reports that:

Groundwater supplies in our major western aquifers — the Central Valley, the southern Ogallala and now those that underlie the Colorado River Basin – are disappearing. We simply pump out more water than is being naturally replenished, and as a result, groundwater levels are falling rapidly…..The American West is running out of water. More

 

Saturday, August 23, 2014

How extensive is California's drought?

A snake-like trickle of water flows underneath Lake Oroville's Enterprise Bridge — just one striking example of how much California's chronic drought is affecting the state's lakes and reservoirs.

Situated at the foot of the Sierra Nevadas in Butte County, Lake Oroville is one of the largest reservoirs in California, second only to Shasta Lake. After enduring three straight years of drought, the lake is currently only filled to 32 percent of its capacity.

In any case, the drought in California is getting serious. Phase 2 of Los Angeles' mandatory water conservation ordinance is now in effect, which means a team of water-use inspectors are tasked with enforcing water restrictions and fining water wasters. If the drought continues through fall and winter, the ordinance will move to Phase 3, which entails even stricter rules and some prohibitions.

To get a better idea of the dire situation in the Golden State, continue below for a photo comparison of water levels taken in 2011 and 2014, looking at Lake Oroville and Folsom Lake, another major California reservoir located in Sacramento County that is now filled at 40 percent of its capacity.

Bidwell Marina, Lake Oroville

Folsam Dam, Folsom Lake

Enterprise Bridge, Lake Oroville

 

Thursday, May 22, 2014

Challenge in Sao Paulo: Overcoming Water Scarcity in South America’s Largest City

Last March, one of Brazil’s most important newspapers, O Estado de S. Paulo, published a version of the article below, which summarizes the Conservancy’s efforts to help secure Sao Paulo’s water supply. It is translated and reprinted here with permission.

By João Campari and Samuel Barrêto, The Nature Conservancy

The inhabitants of Sao Paulo have been dealing with discouraging images of cracked riverbeds where they used to see flowing water, making this temperate part of Brazil look more like the country’s semi-arid region. Unfortunately, these stark images show the worsening struggles of the Cantareira system, one of the greatest water supply systems in the world.

Right now, the Cantareira’s reservoirs — responsible for providing water for more than 12 million inhabitants of the Sao Paulo Metropolitan Region (RMSP) and Campinas — are operating at less than 15% capacity*, the lowest level recorded since the Cantareira’s creation in the early 1970s.

The images, the symbol of the current crisis, show that water doesn’t really come from the taps in our houses. It comes from nature, and in Sao Paulo much of that nature is the Atlantic Forest. While water rationing gets peoples’ attention and is one of the necessary responses to water scarcity, rationing alone is not enough to solve the long-term problem of securing lasting access to fresh water.

We must look beyond the tap and work to take care of our water supplies at their sources. We need a systemic response for the management of watersheds to restore the sources of our water that have been degraded, polluted and deforested. Forests are very important for healthy fresh water supplies. Unfortunately, the Cantareira system alone has lost 70% of its original forest cover, aggravating the sedimentation of rivers and dams, and decreasing their ability to supply water.The degradation of native vegetation also worsens the effects of erosion and drought.

The interaction of all these factors — deforestation, sedimentation, erosion and drought — leads to a situation of extreme risk and represents an environmental, social and economic threat not just to Sao Paulo, but to the entire country of Brazil. The Sao Paulo Metropolitan Region and Campinas together are responsible for more then 22% of the country’s GDP. Therefore, it is a priority to create a strong and strategic response to the increasing and urgent problems of water quantity, quality, access and supply for urban centers.

Protecting Water Supplies at their Sources

We must go beyond conventional interventions, such as engineering works — more dams or aqueducts are not the answer. Wider, systemic responses are necessary, and the responsibility to act is not limited to the government. We all need water and it is the shared responsibility of businesses, communities and civil society as a whole to search for solutions together. The government’s role is to foster and implement multiple solutions that reach multiple stakeholders at once.

The Conservancy’s work shows that one of the highest priorities for securing Sao Paulo’s water supplies is strengthening the Cantareira system’s “green infrastructure” by restoring the degraded forests of the Atlantic Forest, as well as conserving existing forest remnants. Such initiatives ensure the health of a watershed. This type of solution, when well managed, minimizes the risk of extreme events and reduces the vulnerability of populations to floods and prolonged droughts. Healthy forests also store water and reduce erosion and provide environmental services of water regulation and security to the population.

New York City illustrates this equation quite clearly. Decades ago, the city’s administration compared the costs of both natural and built infrastructure for protecting and providing water. Preserving the forests that were source of the city’s drinking water cost US $1 to 1.5 billion over 10 years. That amount was seven times lessthan the estimated US $6 to 8 billion needed to build a traditional, engineered water treatment and distribution network. (That amount doesn’t include the additional and ongoing operational and maintenance costs of $300 to $500 million a year that would have been necessary.) Obviously, nature was the better buy for the people of New York.

It is something for Sao Paulo to consider. A recent study by the Conservancy showed that restoring about 35,000 acres of deforested areas and preventing erosion on 5000 acres within the basins of the Piracicaba, Capivari, Jundiaí and Alto Tietê rivers would decrease the level of sediments that clog the rivers by 50%. Reducing erosion would increase the capacity of water reservoirs and simultaneously decrease the cost of treatment for the removal of sediments.

What the Conservancy is doing in Sao Paulo

To help accomplish restoration goals in the lands around Sao Paulo’s Cantareira system, the Conservancy-led Water Producers Project provides payments to farmers and ranchers who conserve forests on properties that are part of the watershed that feeds the Cantareira reservoirs. This payment-for-environmental-services program recognizes and compensates landowners for the water-producing value their lands provide.

The Conservancy also leads the Water for Sao Paulo Movement. This initiative fosters conversation and working relationships between different stakeholders and focuses on the importance of both water conservation and nature-based solutions for securing the water supply of the region. Because healthy forests are so important for healthy rivers and water supplies, Water for Sao Paulo seeks to restore degraded forests near the urban area.

Finally, Sao Paulo must strengthen the existing Watersheds Committees. Created by the Brazilian Legislature, Watersheds Committees discuss and make decisions about the use of water from specific river basins and are some of the most important collaborations for achieving a balance between water supply and demand.Committees include representatives of local governments, water supply companies and civil society, who are responsible for tasks such as approving water management plans, defining actions for conservation of biodiversity and mediating conflicts about the use of water resources. There are more than 200 of these groups in Brazil.

The current crisis in the Cantareira system is both a challenge and an opportunity to learn from the past and make better decisions for the future. If we have the discernment to act in a systemic way and the political and institutional capacity for change, we will be able to reduce the risks of a permanent cycle of water shortage. In addition to this, we have the opportunity to show how healthy watersheds contribute to water security, which is indispensable for Sao Paulo’s social and economic stability into the future.

To learn more about how the Conservancy is helping to secure Brazil’s water supplies, please visit Where Does Your Water Come From?

*Since this article was published in March, the need for concerted action in Sao Paulo has become even more urgent. The level of water in the Cantareira system has now dropped – to about 8% of its overall capacity. As an emergency stopgap to provide water to the city, the government of Sao Paulo spent US$36 million on emergency constructions to allow access to water stored below the level of the pumps. Known to water managers as “dead volume,” this water was never intended to be part of the water supply, and the reservoirs are now, essentially, operating at a deficit. More

 

Monday, April 14, 2014

Quenching Kenya: Can New Water Discoveries Save East Africa?

Water scarcity is becoming the defining international crisis of the twenty-first century. Water conflicts rage across the world as communities struggle to secure a clean, reliable supply.

One of the world’s most water-stressed regions is East Africa. Overexploitation of water resources there has been compounded by declining snowpacks on Mount Kilimanjaro and Mount Kenya, which have shrunk since the late 1980s due to global warming. Meanwhile, Lake Turkana -- the world’s largest perennial desert lake -- has largely disappeared from Ethiopian territory, retreating south into Kenya.

In this light, the discovery of two significant aquifers in mostly arid Kenya by a Japanese-financed UNESCO project has been hailed as a potential game changer. The first, the Lotikipi Basin Aquifer, is situated just west of Lake Turkana. The second, the smaller Lodwar Basin Aquifer, is near Lodwar, the capital of Turkana county. The aquifers were discovered by a French firm, Radar Technologies International (RTI), using a space-based exploration technology called WATEX that was originally designed to reveal mineral deposits. The company blended satellite and radar imagery with geographical surveys and seismic data to detect moisture. Subsequent drilling by UNESCO confirmed the presence of aquifers. Three other suspected aquifers in the region have yet to be verified through drilling.

For parched and economically backward Turkana, more than one-third of whose residents are malnourished, the discovery of major groundwater reserves is a godsend. Not only will the reserves provide lifesaving water, they will also spur the development of agricultural and hydrocarbon sectors and improve the lives of the impoverished residents in this conflict-ridden region, which extends from Kenya into the borderlands of Ethiopia and South Sudan. More [Subscription]

 

Wednesday, March 5, 2014

World’s largest hydropower project planned for Tibetan Plateau

This is part of a special report produced by on the future of the Brahmaputra river – one of the world’s great transboundary rivers – which starts on the Tibetan Plateau before passing through India and Bangladesh.

Also read:
- It’s time for a new era of cooperation on the Brahmaputra
- Why India and China should leave the Brahmaputra alone
- Brahmaputra river is a living ecosytem, not just a source of hydropower

The Tibetan Plateau, the world’s third pole, gives birth to many of Asia’s major rivers. As the key for maintaining the continent’s ecology, and one of the world’s most important ecosystems in its own right, it is of huge strategic significance.

The Yarlung Tsangpo (known as the Brahamputra in India), which runs alongside the majesty of the Himalayas, is the world’s highest river. It runs west to east along the rift created by the impact of the Eurasian Plate, cutting through the Tibetan Plateau until it meets the point where the Himalayas, the Nyenchen Tanglha and Hengduan mountains join. Here it forces its way between the Gyala Peri and Namcha Barwa peaks to form the world’s deepest gorge, then makes its way to South Asia where it joins the Ganga and flows to the Indian Ocean.

The Yarlung Tsangpo rises at a high altitude, in a geologically complex area. The river’s powerful flow, long course and large drop in altitude give it great potential for hydropower development. But the scale of dam building planned by China and India could have disastrous ecological consequences.

China’s plans date back to the early 1990s, when it carried out a series of hydropower development surveys of the river, with the Yarlung Tsangpo Gorge the focus of interest.

In the late 20th century, this gorge was recognised as the world’s deepest. In the 400 kilometres from the top of the gorge, the river twists around the mountain of Namcha Barwa (known as the Great Bend) and loses more than 2,000 metres in altitude, forming several waterfalls and giving up huge energy potential as it goes. Hydropower experts say a tunnel that cuts the river’s natural loop could carry 2,000 cubic metres of water a second, with a drop in altitude of 2,800 metres – enough to power a 50-gigawatt hydropower station that could provide 300 billion kilowatt hours of electricity a year. It would be the largest hydropower project in human history – about three times the size of the Three Gorges Dam.

The world’s largest dam

Eleven hydropower stations are planned on the river, three along the middle reaches from Sangri to Gyaca, and nine on the gorge up to the Great Bend, with total generating capacity of 60 gigawatts.

Work started on the Zangmu Dam – one of the three planned on the Sangri-Gyaca section – in 2010 and this is expected to be generating electricity this year. There are also plans for about 65 gigawatts of hydropower development on the major tributaries of the Yarlung Tsangpo.

India has also been planning hydropower development along the Yarlung Tsangpo and its tributaries on a huge scale; public and private companies have proposed 168 massive dams, to produce 57 gigawatts of hydropower in the country’s north-east.

Floods, landslides and extinction


The Yarlung Tsangpo Gorge is a young and still active geological formation, any interference could have disastrous knock-on effects, from which the ecosystem may not be able to recover.

There are powerful geological stresses here, and seismic activity and landslides are common. The gorge is still taking shape, and I have found more than 100 active landslips or mudslides which any future earthquakes could worsen.

In the early 1950s, an earthquake of magnitude 8 on the Richter scale caused many secondary landslides, which resulted in sustained flooding downstream. In April 2000, I personally witnessed a huge landslide at Yi’ong, which created a four billion cubic metre barrier lake. Sixty days later the barrier failed. The resulting floods affected millions of people and paralysed transportation. Natural disasters of this type are common here.

We still don’t know what the long-term impact of climate change will be on the Tibetan Plateau, but the glaciers and snowlines of the Himalayas are retreating, depriving the rivers of a source of water. If this continues, the plateau’s waterways will be cut off, or even dry up and the land will become a desert.

Today, the ecosystem of the gorge region is already in decline. The primary forests made up of tall trees are now over-mature and swathes of forest over 2,500 metres in altitude are dying. Secondary growth is mono-cultural – the forests are failing to regenerate. Meanwhile, the Monpa and Luopa people who live deep in the gorge continue slash-and-burn methods of farming – the forests on many steep slopes have been torched to provide farmland, resulting in the rapid spread of soil erosion and landslides.

Much of the area’s wildlife – it is one of the most biodiverse regions of the world – is also facing extinction. The ecosystem of the gorge and surrounding areas have become fragmented, meaning animals have smaller areas in which to roam. This leads to imbalances in the food chain, while the mono-cultural secondary forests prevent populations growing and surviving.

The importance of the Tibetan Plateau’s environment to the health of the Yarlung Tsangpo and other rivers should not be ignored. Its worsening environment is a major factor in the degradation of the ecologies of the Yarlung Tsangpo and other rivers; interference from human development and hydropower projects will only add insult to injury. More

Tuesday, March 4, 2014

After 54 years of thirst, the U.S. and Mexico partner to save the Colorado River Delta

Since 1960, the Colorado River has not flowed regularly to the sea. While pockets of green remain, the Colorado in its delta is a parched river begging for relief. The dry, sandy channel glares in the bright sun, abandoned by the river that has been overtapped and overworked for too long.

Colorado River

It’s hard not to think of the lost potential of an ecosystem that once thrived. After an adventure there in 1922, American author, scientist and environmentalist Aldo Leopold wrote:

“On the map, the delta was bisected by the river, but in fact the river was nowhere and everywhere, for he could not decide which of a hundred green lagoons offered the most pleasant and least speedy path to the Gulf [of California].”

The Colorado’s delta was once a landscape of plenty, the basis of rural economic activity and local employment. Tourism, recreational hunting, sport and commercial fishing – all have been lost to overuse and over exhaustion of a limited resource.

For decades, it seemed nothing could be done. I spent much of the past 15 yearsshining a spotlight on the sorry state of the Colorado River Delta for audiences across the country. And while it is true that these conversations would quickly turn to the byzantine complexities of water law and the difficulties of caring for shared cross-border resources, it is also true that most people are truly unsettled by the reality that the Colorado stops short of its natural destination.

Now we are taking a major step to right the wrong that has been done to the Colorado River Delta. For the first time in history, the U.S. and Mexico will send a modest volume of water into the Colorado River Delta in the form of a temporary “pulse flow,” which will mimic the natural spring floods that once nourished the delta. Never before have we deliberately sent water below Morelos Dam, the last dam on the river just south of the U.S.-Mexico border, to benefit the environment. This month, water from the Colorado River will literally pulse through the border as a sign to the rest of the world of what we can accomplish through cooperation between nations. It feels like a triumph of human optimism over acquiescence.

Some may grumble that this is not the time to send water to the environment, but that objection ignores the broader context of the recent binational agreement and the many benefits it brings to both countries. In addition to breathing life back into the delta, this new framework more broadly allows the U.S. and Mexico to share surpluses in times of plenty and reductions in times of drought, provides incentives for leaving water in storage, and conserves water through joint investments in projects from water users in both countries. These benefits extend to water users throughout the Colorado River Basin – in all seven U.S. and two Mexican states.

By abandoning the old framework of “who gets what” and establishing cooperative management of our shared resource, the U.S. and Mexico are achieving benefits for communities and nature alike. With this kind of cooperation, I have renewed hope that in the not-so-distant future we will see delta ecosystems and economies thrive once again. More

On a potentially dying planet shared resources are a no-brainer. Editor

 

Saturday, January 18, 2014

Water security in the Kingdom of Saudi Arabia … a far-fetched dream?

DAMMAM – Environmental and water experts have warned that water security might be a far-reaching dream for the Kingdom.
Limited water resources such as groundwater are being depleted by greedy farmers who care about nothing but profits, they said. The claimed nuclear energy can help desalinate seawater and save the country from a looming disaster that future generations will experience. Al-Riyadh daily asked the experts about the challenges the state faces in ensuring water security.

Precious resource

Dr. Asad Abu Ruzaizah, president of the Saudi Society for Environment Sciences, said the country is running out of groundwater at an alarming rate. He stressed the important role citizens can play to mitigate the enormity of the problem and conserve this valuable resource. “Some people are not really aware that we have a water security problem,” Ruzaizah said. “The government spends a huge amount of money on the desalination process but this causes a tremendous negative effect on the environment.
“Moreover, strategic water reserves are poor in the Kingdom and other GCC countries and this fact makes the water problem a huge challenge for these countries.
“We have a poor water authority and low awareness levels regarding the importance of saving water. “More funding should go into developing and managing water resources and searching constantly for new sources.
“The water authority and other water agencies should be developed to deal better with this issue and achieve sustainable development for the next generation.”

New regulations to manage current reserve

Dr. Muhammad Al-Ghamdi, professor of King Faisal University’s School of Agricultural Sciences, disagrees with Ruzaizah. “Everyone is saying let’s find new water resources instead of searching for regulations that can lead to the wise management of current resources,” Al-Ghamdi said. “Unfortunately, there are no clear plans, programs, or strategies to help us achieve water security.” He said he wondered how this problem would be solved while farmers, led by greed, continue to waste groundwater and mismanage limited water resources. “The sad thing is facts and statistics indicate that our groundwater problem is getting worse every year. “I’m worried the next generations will encounter insurmountable problems solving this issue.”
Dr. Ali Ishqi, ecology professor at King Abdulaziz University, said the Arabian Peninsula has a severe water shortage. Ninety percent of its area is barren desert land while green areas account for 2 percent of the total area. Ishqi believed that mismanagement of water resources has largely exacerbated groundwater shortages.
He said the only strategy that can end this looming crisis is to make use of nuclear energy.
“The use of nuclear reactors is the best choice for seawater desalination.
“Solar energy is not. “To meet the water needs of a small city population, you will need to have so many solar cells on a very large area.”

Rainwater harvesting is the solution

Abdullah Al-Rasheed, economist, said the only option available to solve this crisis is to set up a national authority for rainwater harvesting, where rainwater is collected and used for irrigation, drinking, and other purposes. The next upcoming war will be for water, Al-Rasheed claimed.
He quoted a feature that National Geographic carried a while ago on the water issue.
The Kingdom’s groundwater resources used to stand at 500 cubic kilometers 40 years ago, according to the feature. So far the country has used 400 cubic kilometers, which means that one generation has consumed 80 percent of the country’s resources. The feature said the Kingdom now has no choice but to use seawater because the remaining groundwater will probably be consumed in a few years. Al-Rasheed said he hoped that the statistics mentioned in the feature were not true. “One thing remains true: we have squandered our groundwater and used it for farming purposes. “There is no point now of crying over spilled milk. “It’s high time we utilized rainwater.”
Al-Rasheed said every year there is 150 billion to 250 billion cubic meters of rainfall in the Kingdom, while the amount of desalinated water the public consumes annually is 3 billion. “This is a small amount compared to the huge quantity of rainwater available for us.” More