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Development and assessment of a solar driven trigeneration system with storage for electricity, ammonia and fresh water production

机译:用于电力,氨和淡水生产储存的太阳能驱动三通系统的开发与评估

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This research paper designs and analyzes a novel integrated solar-driven system for ammonia synthesis, freshwater production and power generation. The trigeneration system contains a solar thermal subsystem, a thermal energy storage system where the molten salt is used as a heat transfer fluid and storage medium, a solar energydriven Rankine cycle, a multistage flash distillation, a proton exchange membrane electrolyser array, and an ammonia synthesis unit. The proposed integrated system uses solar energy to charge the molten salt, which flows through a heat exchanger and generates steam for the topping cycle. The exhaust stream of the steam turbine provides heat for the multistage flash distillation (MFD) process. A 20 stage MFD unit is proposed where the seawater is utilized as the feedwater in this study. A portion of the produced freshwater is sent to the PEM electroylzer array for hydrogen production, which is used for ammonia production via the Haber-Bosch process. The thermodynamic analysis of the solar driven multigeneration system is analyzed through the Engineering Equation Solver (EES) and Aspen Plus software packages. The novelty of this study relies on the development of a new solar energy-based integrated system and its application for a selected community with over 10,000 residents to meet all of their needs to be self-sufficient and sustainable. Ammonia (for multiple purposes, such as fuel, energy carrier and feedstock), freshwater and electricity are the useful outputs as targeted in this paper. The study incorporates the phase change materials into the system for thermal energy storage purposes. The performance assessments based on energy and exergy efficiencies are carried out for the overall system and its components. Furthermore, the power, freshwater and ammonia production capacities are studied for better demand coverage. The overall exergy efficiency of the system is determined as 12.1 %, where the ammonia synthesis, power generation, and freshwater production capacities are 0.85 kg/s, 17.6 MW, and 143.97 kg/h respectively. Moreover, the study investigates the energy and exergy efficiencies with and without the presence of an air separation unit. The study results show that the air separation unit has less than 0.3% effect on the overall energy and exergy efficiencies.
机译:本研究论文设计并分析了一种新型集成太阳能驱动系统,用于氨合成,淡水生产和发电。 TrigeLeration系统包含太阳能热子系统,熔融盐用作传热流体和储存介质的热能存储系统,太阳能驱动兰氏菌,多级闪蒸,质子交换膜电容阵列和氨合成单位。所提出的综合系统使用太阳能对熔盐充电,该熔盐流过热交换器并为顶部循环产生蒸汽。蒸汽轮机的排气流为多级闪蒸蒸馏(MFD)工艺提供了热量。提出了20阶段MFD单元,其中海水被用作本研究的给水。将生产的淡水的一部分送到Pem Electroylzer阵列,用于氢气产生,用于通过Haber-Bosch工艺用于氨生产。通过工程方程求解器(EES)和Aspen Plus软件包分析了太阳驱动多粒系统的热力学分析。这项研究的新颖性依赖于开发新的太阳能综合系统及其对有超过10,000名居民的选定社区的应用,以满足他们所有的需要是自给自足和可持续的。氨(用于多种目的,例如燃料,能量载体和原料),淡水和电力是本文靶向的有用输出。该研究将相变材料掺入系统中以进行热能储存目的。基于能量和漏洞效率的性能评估是为整体系统及其组成部分进行的。此外,研究了功率,淡水和氨的生产能力,以获得更好的需求覆盖。该系统的整体漏洞效率确定为12.1%,其中氨合成,发电和淡水产能分别为0.85千克/秒,17.6兆瓦和143.97千克/小时。此外,该研究调查了在没有空气分离单元的情况下进行的能量和漏洞效率。研究结果表明,空气分离单元对整体能源和漏洞效率的影响小于0.3%。

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