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Advanced automotive thermal management -- Operation of an electric radiator fan array for reduced electric power consumption.

机译:先进的汽车热管理-电散热器风扇阵列的运行,可降低功耗。

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摘要

The depletion of fossil fuel reserves and the limited renewable energy resources have raised public awareness about the need to improve fuel efficiency in ground transportation vehicles. The internal combustion engine remains one of the primary industrial machines using gasoline or diesel fuel to produce mechanical work. In these engines, the cooling system performs the vital role of removing waste heat to ensure normal combustion processes in the cylinders. To accomplish this task, the radiator, the radiator fan(s), the thermostat valve, and the water pump operated by circulating cooling fluid through the engine block and rejecting heat to the atmosphere. Studies have shown that the cooling system removes approximately 30% of the engine's indicated power as waste heat. Since the cooling system consumes a portion of the engine power, it is important that its operation use minimum input energy. In this study, multiple radiator fans were controlled to minimize energy usage for subsequent efficiency gains. Simply put, this research found that improvements in the thermal management system can improve overall engine efficiency.;A reconfigurable smart cooling system test experimental bench was fabricated at Clemson University to test and analyze the cooling effect multiple electric radiator fans. This cooling system emulated a 6.8L International Truck and Engine Corporation V8 diesel engine application with an array of 3 rows by 2 columns (6 total) radiator fans. The speed of each fan was controlled from 0% to 100% maximum capacity. A dedicated controller area network (CAN) bus controller was interfaced to the fan driver hardware and electric power source to control the system operation. The air speed, coolant flow rate, fluid (air, coolant) temperature, and power consumption sensors were connected to a dSPACE data acquisition board, on which data were recorded. The dSPACE and Plus+1 hardware were controlled in real-time using a MATLAB/Simulink algorithm operating at a 10 Hz frequency.;A series of laboratory tests were conducted with different fan combinations and rotational speeds, the objective being to cool a constant thermal loaded engine. A simplified mathematical model for the combustion process and the forced convection radiator system was developed to establish a basis to formulate a smart cooling control problem. The collected data was analyzed to determine the fan power consumption and radiator system cooling effectiveness. The experimental results demonstrated that the selection of specific fan combinations and fan motor speeds can achieve up to a 20% reduction in fan matrix power consumption for the specified cooling load. Further, air velocity surface plots offered a visual representation of the air flow profile across the radiator for different fan matrix configurations.
机译:化石燃料储备的枯竭和有限的可再生能源资源提高了公众对提高地面运输车辆燃料效率的需求的认识。内燃机仍然是使用汽油或柴油燃料产生机械功的主要工业机械之一。在这些发动机中,冷却系统起着消除废热的重要作用,以确保气缸中的正常燃烧过程。为了完成此任务,散热器,散热器风扇,恒温器阀和水泵通过使冷却液循环通过发动机缸体并将热量排至大气来运行。研究表明,冷却系统可将大约30%的发动机指示功率作为废热去除。由于冷却系统消耗一部分发动机功率,因此重要的是冷却系统的运行使用最少的输入能量。在本研究中,控制了多个散热器风扇,以最大程度地减少能耗,以提高效率。简而言之,这项研究发现对热管理系统的改进可以提高整体发动机效率。克莱姆森大学制造了可重构智能冷却系统测试实验台,以测试和分析多个电散热器风扇的冷却效果。该冷却系统模拟了6.8升国际卡车和引擎公司V8柴油发动机应用,该应用具有3行2列(共6列)散热器风扇的阵列。将每个风扇的速度控制在最大容量的0%到100%之间。专用的控制器局域网(CAN)总线控制器与风扇驱动器硬件和电源接口,以控制系统运行。空气速度,冷却液流速,流体(空气,冷却液)温度和功耗传感器连接到dSPACE数据采集板,并在其上记录数据。 dSPACE和Plus + 1硬件通过使用以10 Hz频率运行的MATLAB / Simulink算法进行实时控制;以不同的风扇组合和转速进行了一系列实验室测试,目的是冷却恒定的热量加载的引擎。建立了燃烧过程和强制对流散热器系统的简化数学模型,为建立智能冷却控制问题奠定了基础。对收集到的数据进行分析,以确定风扇的功耗和散热器系统的冷却效率。实验结果表明,对于特定的冷却负载,选择特定的风扇组合和风扇电动机速度可以使风扇矩阵的功耗降低多达20%。此外,对于不同的风扇矩阵配置,风速表面图提供了散热器上气流曲线的直观表示。

著录项

  • 作者

    Jagarwal, Amit Harendra.;

  • 作者单位

    Clemson University.;

  • 授予单位 Clemson University.;
  • 学科 Engineering Automotive.;Engineering Mechanical.
  • 学位 M.S.
  • 年度 2010
  • 页码 256 p.
  • 总页数 256
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:37:18

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