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The Quest for More Efficient Industrial Engines: A Review of Current Industrial Engine Development and Applications

机译:寻求更高效的工业发动机:当前工业发动机开发和应用的回顾

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This paper addresses the need for efficiency gains in the modern industrial engine as utilized in combined heat and power (CHP) generation and other distributed generation situations. Power generation is discussed in terms of reciprocating-engine-based plant operating on Otto type thermodynamic cycles. The current state of the technology and the research being conducted is examined. Internal combustion engine performance improvement in the industrial engine sector focuses on improvements in the combustion characteristics of the plant, with emphasis on areas such as piston design, valve timing, and supercharging. Maximum brake-thermal efficiencies, in percentage terms, are currently in the 40s. In CHP generation, most of the energy not utilized for mechanical power is recovered as heat from various engine systems, such as jacket water and exhaust, and utilized for space or process heating. In other distributed generation situations, this energy is not utilized in this manner and is lost to the surroundings. While second law analysis would provide a more meaningful interpretation of the efficiency defect, this approach is still not the norm. Distributed generation benefits directly from efficiency improvements; the more efficient use of primary energy leads to reduced fuel costs. Combined heat and power generation is, however, more sensitive to the matching between the plant and its energy sinks, as its successful implementation is dictated by the ability of a site to fully utilize the heat and electrical power produced by the plant. At present, the energy balance of such engines typically dictates that heat is produced in greater quantity than electrical power, the ratio being of the order of 1.1-1.5:1. Due to this production imbalance, it is accepted that in order to be economically feasible, thermal and electrical demand should be coincident and also all heat and power should be utilized. This has traditionally led to certain sectors being deemed unsuitable for CHP use. Some current research is aimed at tipping the production balance of these engines in favor of electrical power production; however, performance gains in this regard are slow. This paper concludes with some brief commentary on current industrial engine developments and applications.
机译:本文解决了在热电联产(CHP)发电和其他分布式发电情况下使用现代工业发动机提高效率的需求。关于发电的讨论是以往复式发动机为基础的,以Otto型热力循环运行。检查技术的当前状态和正在进行的研究。工业发动机领域的内燃发动机性能改进着重于工厂燃烧特性的改进,重点是诸如活塞设计,气门正时和增压等领域。以百分比表示,目前最大的制动热效率在40年代。在热电联产中,未用于机械动力的大部分能量都作为热量从各种发动机系统中回收,例如夹套水和废气,并用于空间或过程加热。在其他分布式发电情况下,这种能量没有以这种方式被利用,并且损失到周围环境中。虽然第二定律分析将提供对效率缺陷的更有意义的解释,但是这种方法仍然不是标准。分布式发电直接受益于效率的提高;一次能源的更有效利用可降低燃料成本。然而,热电联产对电厂及其能源汇之间的匹配更为敏感,因为其成功实施取决于现场充分利用电厂产生的热量和电力的能力。目前,这种发动机的能量平衡通常表明产生的热量大于电能,其比例约为1.1-1.5∶1。由于这种生产不平衡,已经接受的是,为了在经济上可行,热和电需求应当是一致的,并且所有热和功率都应该被利用。传统上,这导致某些部门被认为不适合使用CHP。当前的一些研究旨在使这些发动机的生产平衡达到有利于电力生产的目的。但是,这方面的性能提升很慢。本文最后对当前工业发动机的发展和应用进行了简短的评论。

著录项

  • 来源
    《Journal of Energy Resources Technology》 |2009年第2期|1-9|共9页
  • 作者

    Barry Cullen; Jim McGovern;

  • 作者单位

    Department of Mechanical Engineering, Dublin Institute of Technology, Bolton Street, Dublin 1, Ireland;

    Department of Mechanical Engineering, Dublin Institute of Technology, Bolton Street, Dublin 1, Ireland;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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