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Field Tests of Large Diameter Shallow Bore Helical Ground Heat Exchanger with Simulated Heating Loads

机译:具有模拟加热负荷的大直径浅孔螺旋地热交换器的现场试验

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摘要

In this paper, detailed experimental evaluation of the performance of a large diameter, shallow bore Ground Heat Exchangers (GHE) is presented. Four GHEs mere installed at the test site located in Davis, CA USA. The core of the GHEs were back filled with fine sand. Since soil thermal properties vary with moisture, soil temperatures and moisture at various locations in the ground were recorded along with heat carrier fluid inlet and outlet temperatures and mass flow rates for individual GHE. The central GHE was installed with temperature and moisture sensors in the core (midway between helical and straight pipe), at the borewall, and at 1.11 m (43.7 in., r/r_(bore)= 3.64) and 1.94 m (76.3 in., r/r_(bore)= 6.36) radially from the center of the GHE. Temperature was measured at five depths while moisture was measured at three depths at these locations. An external gas water heater was used to simulate the load from a heat pump by providing hot water at the required temperature. In addition to the single GHE, tests were also carried out involving three GHEs in a straight-line configuration. For cases presented, test durations were varied from continous tests (for 21 hours), to intermittent (4 hours ON and 4 hours OFF). Soil properties (thermal conductivity and specific heat capacity) were measured from soil samples extracted from the site. The experiments were used to validate a Capacitance-resistance numerical model of helical GHEs.
机译:本文介绍了大直径,浅孔地热交换器(GHE)的性能的详细实验评价。安装在位于加州戴维斯,加州戴维斯的测试网站上安装了四个嘴。嘴的核心返回充满细沙。由于土壤热特性随着水分的变化而变化,因此地面各个位置处的土壤温度和水分随热载体流体入口和出口温度和单个GHE的质量流量。中央GHE安装在钻孔中,在核心和螺旋和直管之间的中途之间的水分传感器,在钻孔,1.11米(43.7英寸,R / R_(孔)= 3.64)和1.94米(76.3英寸。,r / r_(孔)= 6.36)从GHE的中心径向。温度在五个深度测量,同时在这些位置处的三个深度测量水分。外部气体热水器用于通过在所需温度下提供热水来模拟来自热泵的负载。除了单个GHE之外,还在直线配置中涉及三个泡沫的测试。对于所提出的病例,测试持续时间从连续测试(21小时)变化,间歇性(4小时和4小时)。从现场提取的土壤样品中测量土壤性质(导热率和比热容)。实验用于验证螺旋灌木的电容电阻数值模型。

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  • 来源
    《ASHRAE Transactions》 |2020年第2期|206-213|共8页
  • 作者单位

    Department of Mechanical and Aerospace Engineering University of California Davis CA and Western Cooling Efficiency Center Davis CA;

    Western Cooling Efficiency Center Davis CA;

    Frontier Energy Davis CA;

    Department of Industrial Engineering University of Padova Padova Italy;

    Department of Mechanical and Aerospace Engineering at University of California Davis CA and Western Cooling Efficiency Center Davis CA;

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