首页> 外文会议>ASME international conference on energy sustainability;ES2009 >DESALINATION AND LONG-HAUL WATER TRANSFER A CASE STUDY OF THE ENERGY-WATER NEXUS IN TEXAS
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DESALINATION AND LONG-HAUL WATER TRANSFER A CASE STUDY OF THE ENERGY-WATER NEXUS IN TEXAS

机译:淡化和长距离输水-以德克萨斯州的能源-水域为例

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Energy and water are interrelated. We use water for energy, for example to cool thermoelectric power generation and produce liquid fuels. Conversely, we use energy for the collection, treatment, disinfection, and distribution of water and wastewater. In the water sector, strain on existing water supplies, population growth, and the push toward stricter water and wastewater treatment standards potentially leads to more energy-intensive water.Treating water to more stringent potable standards requires additional energy beyond conventional treatment. Additionally, as existing water supplies become increasingly strained in some locations, water planners turn to alternative options to quench cities' thirst. Among these options for inland cities is desalination of seawater followed by long-haul water transfer.Though many desalination technologies exist to treat seawater to potable standards, reverse osmosis membranes are the most common technology in use because of their cost-effectiveness and productivity as compared with more traditional techniques such as multi-effect distillation. [1] However, the high pressures required for reverse osmosis make desalination a very energy-intensive water supply option. The subsequent conveyance of desalinated water through long-haul pipelines also requires large amounts of energy. Even for local water production, 85% of the energy required for standard surface water treatment goes toward water distribution, and so adding in long-haul will only increase this requirement. [2]To examine desalination and long-haul transfer as a drinking water supply option, Texas was chosen as a test-bedwith desalination near Houston and long-haul transfer to the rapidly-growing Dallas-Fort Worth metroplex. Various pipeline routes were modeled to simulate options for long-haul desalinated water transfer.Elevation change over the route of the long-haul transfer pipeline was determined using a digital elevation model of the state of Texas. These elevation data were then used to calculate energy requirements for water pumping with standard assumptions for pump performance, efficiency, and rating. Combining these energy requirements with the energy demands for desalination provides an estimate of this option as a water supply for Dallas-Fort Worth. Results suggest that desalination and long-haul transfer as a drinking water supply is 9 to 23 times more energy-intensive per unit of water than conventional treatment of local surface water sources, an increase of 230 to 630 megawatt-hours per day for 20 million gallons.Ensuring adequate water supplies for the future is important, as is developing these water supplies in a sustainable manner. The energy-intensity of desalination and long-haul transfer as a drinking water supply suggests this option is not a sustainable water or energy policy decision if other less energy-intensive options exist.
机译:能源和水是相互关联的。我们使用水作为能源,例如,冷却热电发电并生产液体燃料。相反,我们将能源用于水和废水的收集,处理,消毒和分配。在水务部门,现有水源紧张,人口增长以及对更严格的水和废水处理标准的追求有可能导致能源密集型用水增加。 将水处理到更严格的饮用水标准需要比常规处理更多的能量。此外,由于某些地区现有的供水日益紧张,水务规划人员转向了其他选择来缓解城市的渴求。在内陆城市的这些选择中,首先是海水淡化,然后进行长途输水。 尽管存在许多将海水处理至饮用水标准的淡化技术,但与多效蒸馏等传统技术相比,反渗透膜具有成本效益和生产率高的特点,因此是最常用的技术。 [1]然而,反渗透所需的高压使海水淡化成为能源密集型的供水选择。随后通过长输管道输送淡化水也需要大量能量。即使是当地的水生产,标准地表水处理所需的能源中有85%都用于配水,因此增加长途运输只会增加这一需求。 [2] 为了研究淡化和长途运输作为饮用水供应的选择,选择了德克萨斯州作为试验台 在休斯顿附近进行海水淡化,并将长途运输转移到快速发展的达拉斯-沃思堡大都会。对各种管道路线进行了建模,以模拟长距离淡化水输送的选项。 使用德克萨斯州的数字高程模型确定了长途运输管道路线上的高程变化。然后,将这些海拔数据用于计算水泵的能量需求,并根据水泵性能,效率和额定值的标准假设进行计算。将这些能量需求与海水淡化的能量需求结合起来,可以估算出该选项作为达拉斯-沃思堡的供水。结果表明,淡化和长途输送作为饮用水的单位能耗比传统的局部地表水处理高9到23倍,每天增加230到630兆瓦时加仑。 确保未来充足的供水非常重要,以可持续的方式发展这些供水也很重要。海水淡化和长途运输的能量强度作为饮用水的供应量表明,如果存在其他耗能较小的方案,则该方案不是可持续的水或能源政策决策。

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