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Simulation and design of hybrid geothermal heat pump systems.

机译:混合式地热热泵系统的仿真与设计。

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摘要

A practical method for designing stand-alone and hybrid geothermal heat pump (GHP) systems that use closed-loop, earth heat exchangers installed in vertical boreholes is presented. The design difficulty with hybrid GHP systems is inherently an optimization problem that is best solved with a computer-based system simulation method. Many parameters can be optimized and there is no unique expression of the objective function. In this work the optimization problem is defined as balancing the annual thermal loads on the ground by minimizing the borehole heat exchanger length and supplemental equipment size. The supplemental equipment examined in this research work has been limited to flat plate solar collectors in heating-dominated climates and direct-contact evaporative cooling towers in cooling-dominated climates.;The design method for GHP systems was developed from results of 153 detailed computer simulations. Three dimensionless groups containing key GHP design parameters were identified using the Buckingham Pi Theorem, and correlated with a fitted surface equation. The system simulations utilized an improved model of a vertical borehole earth heat exchanger developed for this work, which employs the finite element method to calculate the one-dimensional, transient heat transfer in the borehole grout material. The U-tube heat exchanger is modeled with an equivalent diameter approximation that was developed in this work, and the transient effects of the thermal mass of the heat exchange fluid are calculated using finite differencing. The improved model results were compared to two analytical solutions and to field-measured data.;With typical design parameters available to a designer, the design method developed here can be used to estimate the total ground loop length for stand-alone GHP systems, along with the quantity of annual energy required to balance the annual ground loads. With additional input parameters also readily available to designers, the area of a solar collector array or the capacity of a cooling tower can be calculated, along with the reduced borehole heat exchanger length. Solar collector array area is calculated using the utilizability method, and cooling tower capacity is calculated using an annual equivalent full load hour concept.
机译:提出了一种设计独立的混合式地热热泵(GHP)系统的实用方法,该系统使用安装在垂直井眼中的闭环地球热交换器。混合GHP系统的设计困难本质上是一个优化问题,可以通过基于计算机的系统仿真方法来最好地解决。许多参数可以优化,目标函数没有唯一的表达形式。在这项工作中,优化问题定义为通过最小化井壁热交换器的长度和辅助设备的尺寸来平衡地面上的年度热负荷。在这项研究工作中检查的辅助设备仅限于加热为主的气候条件下的平板太阳能收集器和冷却为主的气候条件下的直接接触式蒸发冷却塔。; GHP系统的设计方法是根据153个详细的计算机模拟结果开发的。使用Buckingham Pi定理确定了包含关键GHP设计参数的三个无因次组,并将它们与拟合曲面方程式相关联。系统仿真利用了为此工作而开发的垂直井眼土壤热交换器的改进模型,该模型采用有限元方法来计算井眼灌浆材料中的一维瞬态传热。用这项工作中开发的等效直径近似值对U型管热交换器进行建模,并使用有限差分计算热交换流体的热质量的瞬态效应。将改进后的模型结果与两种分析解决方案以及现场测量的数据进行了比较。通过设计人员可以使用的典型设计参数,此处开发的设计方法可用于估算独立GHP系统的总接地回路长度,以及以及平衡年度地面负荷所需的年度能源量。利用设计人员也可以轻松获得的其他输入参数,可以计算出太阳能集热器阵列的面积或冷却塔的容量,并减少钻孔热交换器的长度。太阳能收集器阵列的面积是使用可利用性方法计算的,而冷却塔的容量是使用年度等效满负荷小时的概念计算的。

著录项

  • 作者

    Chiasson, Andrew.;

  • 作者单位

    University of Wyoming.;

  • 授予单位 University of Wyoming.;
  • 学科 Engineering Civil.;Architecture.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 215 p.
  • 总页数 215
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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