DEVELOPMENT OF AN AIR-CYCLE ENVIRONMENTAL CONTROL SYSTEM FOR AUTOMOTIVE APPLICATIONS

被引:0
作者
Forster, Christopher J. [1 ]
Lemieux, Patrick [1 ]
机构
[1] Georgia Inst Technol, Atlanta, GA 30332 USA
来源
PROCEEDINGS OF THE ASME TURBO EXPO 2011, VOL 3 | 2012年
关键词
REFRIGERATION SYSTEM; ROAD TRANSPORT;
D O I
暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The Reverse-Brayton cycle has been used for aircraft cabin cooling for many decades. However, air-cycle cooling hasn't been popular in the automotive field yet. This study demonstrates that air-cycle technology can provide sufficient cooling for certain applications. The primary focus is a novel forced induction engine control system, where compressor bleed is used both to provide engine boost control and air-conditioning. The bleed-air drives an air-cycle machine (ACM) consisting of typical automotive components: a turbocharger, heat exchanger, and ducting. The components of an ACM system are lightweight and compact compared to those of a typical vapor compression system; both qualities are critical in high performance applications, where such a system seems to make most sense. The ACM was tested first on a test stand and then directly on an engine, in a bootstrap-cycle configuration. The turbocharged test engine's intake manifold pressure was controlled by bleeding air from the outlet of the engine's intercooler and feeding the ACM compressor inlet. Once the compressed air was supplied to the ACM it was further compressed by the ACM, cooled by the secondary intercooler, and expanded through the ACM turbine. The engine's turbocharger was resized to compensate for the increased air flow during ACM operation. The results show that a dry-air-rated (DAR) coefficient of performance (COP) of 0.73 and a DAR cooling capacity of 1.5 tons are possible on a test stand, and a DAR COP of 0.56 and a DAR cooling capacity of 0.72 tons are possible on-engine. The data available from the on-engine testing was limited to lower ACM pressure ratios due to a bearing failure before full testing was complete; performance would likely increase with higher inlet pressures, as shown by the compressed air test stand results. The test results strongly suggest that continued development and in-vehicle testing will provide adequate air-conditioning and engine performance, using only the most benign and environmentally friendly working fluid: air.
引用
收藏
页码:833 / 842
页数:10
相关论文
共 35 条
  • [31] Smart Control System to Optimize Time of Use in a Solar-Assisted Air-Conditioning by Ejector for Residential Sector
    Avedian-Gonzalez, Giovanna
    Gonzalez-Potes, Apolinar
    Ibarra-Junquera, Vrani
    Mata-Lopez, Walter A.
    Escobar-del Pozo, Carlos
    [J]. APPLIED SCIENCES-BASEL, 2018, 8 (03):
  • [32] A cascade lithium bromide absorption refrigeration/dehumidification system for efficient energy recovery: Development, 3E optimization and life cycle assessment
    Xu, Aixiang
    Yang, Lanxiang
    Song, Tingting
    Xu, Mengjin
    Chen, Hong
    Xiang, Li
    Liu, Zhiqiang
    Yang, Sheng
    [J]. JOURNAL OF CLEANER PRODUCTION, 2023, 383
  • [33] Simulation and optimum control of a two-stage compression air source heat pump system: A comparison of two kinds of variable volume approaches
    Jiang, Shuang
    Yu, Yao
    Li, Shuangshuang
    Wang, Shugang
    Ma, Zhenjun
    Wang, Jihong
    [J]. APPLIED THERMAL ENGINEERING, 2023, 226
  • [34] An innovative hybrid structure of solar PV-driven air separation unit, molten carbonate fuel cell, and absorption-compression refrigeration system (Process development and exergy analysis)
    Ghorbani, Bahram
    Rahnavard, Zahra
    Ahmadi, Mohammad Hossein
    Jouybari, Alireza Khatami
    [J]. ENERGY REPORTS, 2021, 7 : 8960 - 8972
  • [35] Development, experimental validation through infrared thermography and applications of a mathematical model of a direct-expansion solar-assisted heat pump with R290 based on energy, exergy, economic and environmental (4E) analyses
    Diniz, Helio Augusto Goulart
    Resende, Sara Isabel de Melo
    Maia, Antonio Augusto Torres
    Machado, Luiz
    de Oliveira, Raphael Nunes
    [J]. SOLAR ENERGY, 2023, 260 : 94 - 110