Opportunities for thermoelectric generators in supporting a low carbon economy

IF 0.3 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY Nanomaterials and Energy Pub Date : 2022-06-01 DOI:10.1680/jnaen.22.00033
M. R. A. Bhuiyan, Hayati Mamur, Ömer Faruk Dilmaç, Mehmet Ali Üstüner
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Abstract

Environmental pollution, global warming and increasing energy demands are urgent challenges facing society. Governments all over the world have set a national policy target for the transition to a zero or low carbon dioxide economy. As a result, scientists and engineers in industry and academia are working to develop cleaner, alternative and sustainable energy production technologies. One technology that has potential in this green technology transition is thermoelectric generators (TEGs), traditionally used off-grid and isolated from things such as stand-alone solar–thermal cells for military and aerospace applications such as missile-testing systems and space telescope cameras. However, future applications based on home entertainment, security systems and smart metering applications are imminent. Key limitations to this are low efficiency, high costs and self-heating with low thermal conductivity. Hence, this study aims to examine the current state of the art of TEGs and identify future research directions to achieve support for the green technology transition. The key findings of this study show that present successes will fulfill the future advancement of thermoelectric technology by supporting a low carbon dioxide economy.
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热电发电机支持低碳经济的机会
环境污染、全球变暖和不断增长的能源需求是社会面临的紧迫挑战。世界各国政府都制定了向零或低二氧化碳经济过渡的国家政策目标。因此,工业界和学术界的科学家和工程师正在努力开发更清洁、可替代和可持续的能源生产技术。在这种绿色技术转型中有潜力的一种技术是热电发电机(teg),这种技术传统上是离网使用的,与独立的太阳能热电池等设备隔离开来,用于军事和航空航天领域,如导弹测试系统和太空望远镜相机。然而,基于家庭娱乐、安全系统和智能计量应用的未来应用迫在眉睫。主要的限制是效率低、成本高、导热性低的自热。因此,本研究旨在检视TEGs的现状,并确定未来的研究方向,以实现对绿色技术转型的支持。这项研究的主要发现表明,目前的成功将通过支持低二氧化碳经济来实现热电技术的未来进步。
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来源期刊
Nanomaterials and Energy
Nanomaterials and Energy MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
2.10
自引率
0.00%
发文量
2
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