Evaluation of Thermoacoustic Applications Using Waste Heat to Reduce Carbon Footprint

P. Spoor, D. Prabhudharwadkar, S. Somu, S. Saxena, D. Lacoste, W. Roberts
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Abstract

Thermoacoustics (TA) engines and refrigerators typically run on the Stirling cycle with acoustic networks and resonators replacing the physical pistons. Without moving parts, these TA machines achieve a reasonable fraction of Carnot’s efficiency. They are also scalable, from fractions of a Watt up to kW of cooling. Despite their apparent promise, TA devices are not in widespread use, because outside of a few niche applications, their advantages are not quite compelling enough to dislodge established technology. In the present study, the authors have evaluated a selected group of applications that appear suitable for utilization of industrial waste heat using TA devices and have arrived at a ranked order. The principal thought is to appraise whether thermoacoustics can be a viable path, from both an economic and energy standpoint, for carbon mitigation in those applications. The applications considered include cryogenic carbon capture for power plant exhaust gases, waste-heat powered air conditioning/water chilling for factories and office buildings, hydrogen liquefaction, and zero-boiloff liquid hydrogen (LH2) storage. Although the criteria used for evaluating the applications are somewhat subjective, the overall approach has been consistent, with the same set of criteria applied to each of them. Thermoeconomic analysis is performed to evaluate the system viability, together with overall consideration of a thermoacoustic device’s general nature, advantages, and limitations. Our study convincingly demonstrates that the most promising application is zero-boiloff liquid hydrogen storage, which is physically well-suited to thermoacoustic refrigeration and requires cooling at a temperature and magnitude not ideal for standard refrigeration methods. Waste-heat powered air conditioning ranks next in its potential to be a viable commercial application. The rest of the applications have been found to have relatively lower potentials to enter the existing commercial space.
利用余热减少碳足迹的热声应用评估
热声学(TA)发动机和冰箱通常在斯特林循环上运行,声学网络和谐振器取代了物理活塞。没有活动部件,这些TA机器达到了卡诺效率的合理部分。它们也是可扩展的,从一瓦特的几分之一到千瓦的冷却。尽管它们看起来很有前途,但TA设备并没有得到广泛使用,因为除了少数利基应用之外,它们的优势还不足以取代现有的技术。在目前的研究中,作者已经评估了一组选择的应用程序,这些应用程序似乎适合使用TA设备利用工业废热,并且已经达到了一个排名顺序。主要的想法是从经济和能源的角度来评估热声学在这些应用中是否可以成为减少碳排放的可行途径。考虑的应用包括发电厂废气的低温碳捕获,工厂和办公楼的废热驱动空调/水冷却,氢液化和零蒸发液氢(LH2)储存。尽管用于评估应用程序的标准有些主观,但总体方法是一致的,对每个应用程序应用了相同的一组标准。进行热经济分析以评估系统的可行性,并综合考虑热声装置的一般性质、优点和局限性。我们的研究令人信服地表明,最有希望的应用是零蒸发液氢储存,它在物理上非常适合热声制冷,并且需要在标准制冷方法不理想的温度和幅度下进行冷却。废热驱动的空调在其潜在的可行的商业应用中排名第二。其余的应用程序进入现有商业领域的潜力相对较低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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