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PROPOSED OTTO CYCLE / STIRLING CYCLE HYBRID ENGINE BASED POWER GENERATION SYSTEM

机译:提议奥托循环/斯特林周期混合动力发电机发电系统

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The generation of electrical and thermal power is a matter of critical importance to the modern world. Considerable quantities of both power types are required in all sectors of society; industrial, domestic and leisure, with the future prosperity of both developed and developing societies being dependant on generation of both a sufficient quantity and quality of power. Central to this discussion on the international front is the topic of fossil fuel usage. Despite considerable advances in renewable energy conversion technologies, the human race remains dependant on fossil fuels as a primary energy source. With increasing demand for these finite resources giving rise to strained international relations and economic uncertainty, emphasis has fallen on optimization of usage patterns. The area of power plant efficiency is essential to this optimization. This paper proposes a method for increasing the efficiency of an Otto cycle engine based plant as is typically used in CHP and other Distributed Generation scenarios. The method proposed is to utilise a Stirling cycle engine as a heat recovery device on the exhaust stream of the Otto engine. Thermal energy that may otherwise be lost would thereby be recovered and used to generate additional electrical power. In this manner energy is effectively diverted from the exhaust flow of the engine and converted to mechanical work by way of the Stirling cycle engine. It is postulated that this combined cycle will yield higher plant efficiency than the Otto engine alone. This paper introduces work completed to date and an experimental plan for the project. The project was initiated at undergraduate level as a feasibility study for application of the hybrid engine in automotive circumstances. The study suggested that the combination of the engines in the proposed manner was indeed feasible, with significant power gains possible. However, it proved unlikely that automotive application was the best use of the system unless certain constraints were addressed. Therefore, it was decided to pursue the concept in terms of a stationary generation system. The advantages of the stationary system over the automotive system are addressed briefly, with the constraints of the automotive scenario analysed and their relevance to the stationary generation situation examined. The central areas under investigation are detailed, including thermodynamic theory pertaining to the Otto cycle and Stirling cycle engines, and the combined cycles. Possible limiting factors to the design are discussed also.
机译:电气和热力的产生是对现代世界至关重要的问题。社会各界需要相当数量的两种电力类型;工业,国内和休闲,未来发达国家和发展社会的繁荣依赖于一代大量和质量的权力。在国际面前讨论的核心是化石燃料使用的主题。尽管可再生能源转换技术具有相当大的进展,但人类仍然依赖于化石燃料作为主要能源。随着对这些有限资源的需求越来越大,引起紧张的国际关系和经济不确定性,重点是对使用模式的优化。电厂效率面积对该优化至关重要。本文提出了一种提高基于奥托循环发动机的植物的效率的方法,通常用于CHP和其他分布式发电场景。所提出的方法是利用斯特林循环发动机作为奥托发动机排气流上的热回收装置。由此可以恢复可能丢失的热能并用于产生额外的电力。以这种方式,能量从发动机的排气流动有效地转向,并通过斯特林循环发动机转换成机械工作。假设该组合循环将使植物效率高于OTTO发动机。本文介绍了迄今为止完成的工作和项目的实验计划。该项目在本科水平上作为应用于汽车环境中的混合动力车发动机的可行性研究。该研究表明,发动机以拟议方式的组合确实是可行的,具有显着的电力增益。但是,除非解决了某些限制,否则汽车应用不太可能是系统的最佳使用。因此,决定在静止生成系统方面追求概念。静止系统通过汽车系统的优点是简要介绍的,具有分析的汽车场景的约束及其与静止产生情况的相关性。调查中的中央区域详细说明,包括与奥托循环和斯特林循环发动机有关的热力学理论,以及组合循环。还讨论了设计的可能限制因素。

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