Basic design optimization of power and desalinated water for hybrid cycle ocean thermal energy conversion system integrated with desalination plant

IF 2.7 4区 工程技术 Q2 ENGINEERING, CIVIL Journal of Marine Science and Technology Pub Date : 2024-02-08 DOI:10.1007/s00773-024-00988-3
Ahmad Aiman Azmi, Takeshi Yasunaga, Kevin Fontaine, Takafumi Morisaki, Tsutomu Nakaoka, Sathiabama T. Thirugnana, Abu Bakar Jaafar, Yasuyuki Ikegami
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Abstract

Ocean thermal energy conversion (OTEC) is a heat engine application that utilizes the Rankine cycle to extract energy from the thermal gradient between surface seawater and deep seawater. Hybrid cycle OTEC (H-OTEC) is a combination of an open cycle desalination system and a closed-cycle power generation system that leverages the features of both cycles. Unlike other desalination technologies that require extensive energy to operate, H-OTEC relies entirely on renewable energy. In addition, a desalination plant can be coupled with the H-OTEC system (H-OTEC + D) to improve its performance. Conventionally, the total heat transfer area of heat exchangers per net power is used as an objective function to achieve optimal performance with the lowest capital expenditure cost. The proposed objective function, unlike the conventional one, considers both power and water. In this study, the optimization of H-OTEC + D and H-OTEC is carried out by minimizing the proposed objective function, considering several independent variables. The performance of both systems is evaluated in terms of the objective function, power consumption, seawater flow rates, and desalination ratio. The findings also indicate the effectiveness of the proposed objective function over the conventional one as an effective tool for maximizing power and desalinated water generation.

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优化与海水淡化厂集成的混合循环海洋热能转换系统的动力和海水淡化基本设计
海洋热能转换(OTEC)是一种热机应用,利用朗肯循环从表层海水和深层海水之间的热梯度中提取能量。混合循环 OTEC(H-OTEC)是开放式循环海水淡化系统和封闭式循环发电系统的结合,充分利用了两种循环的特点。与其他需要大量能源才能运行的海水淡化技术不同,H-OTEC 完全依靠可再生能源。此外,海水淡化厂可与 H-OTEC 系统(H-OTEC + D)结合使用,以提高其性能。传统的目标函数是单位净功率热交换器的总换热面积,目的是以最低的资本支出成本获得最佳性能。与传统的目标函数不同,拟议的目标函数同时考虑了功率和水量。在本研究中,考虑到几个独立变量,通过最小化所提出的目标函数,对 H-OTEC + D 和 H-OTEC 进行了优化。从目标函数、耗电量、海水流速和脱盐率等方面对两个系统的性能进行了评估。研究结果还表明,建议的目标函数比传统的目标函数更有效,是最大化发电量和海水淡化率的有效工具。
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来源期刊
Journal of Marine Science and Technology
Journal of Marine Science and Technology 工程技术-工程:海洋
CiteScore
5.60
自引率
3.80%
发文量
47
审稿时长
7.5 months
期刊介绍: The Journal of Marine Science and Technology (JMST), presently indexed in EI and SCI Expanded, publishes original, high-quality, peer-reviewed research papers on marine studies including engineering, pure and applied science, and technology. The full text of the published papers is also made accessible at the JMST website to allow a rapid circulation.
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