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Secondary factors in electrical heat tracing design

机译:电伴热设计中的次要因素

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Electrical heat tracing has become the preferred method of heat tracing in many applications. The standard IEEE 515 heat transfer equation defines the heat losses for an infinite pipe with homogeneous insulation. In practical applications pipes freeze at valves, pipe supports, open ended vents and other anomalies. Heat tracing design must provide design rules for these anomalies and estimate the heat losses. This paper extends the design criteria for what we call secondary factors. These secondary factors become critical when temperature at these items is not maintained. In the past, vendors have provided a singular heat loss value for valves, pipe supports and open ended vents that were linearly dependent on pipe diameter. Analysis shows these features of a piping system have heat losses that are not linear with pipe diameter. Valve heat loss is a function of the area of the valve and not its pipe diameter. Extensive finite element analysis has been performed on these features, and the results are reported in this paper with estimates of the factors that may be used for estimating heat loss. These factors are explained for manual calculations and for computer aided design. It has been estimated that up to 30% of total heat loss is due to valves and supports. Proper engineering, including better thermal insulation, can significantly reduce both installed and operational costs.
机译:在许多应用中,电伴热已经成为优选的伴热方法。标准的IEEE 515传热方程式定义了具有均质隔热层的无限管的热损失。在实际应用中,管道会在阀门,管道支架,开口式排气口和其他异常情况下冻结。伴热设计必须为这些异常提供设计规则,并估算热量损失。本文扩展了我们称为次要因素的设计标准。当不保持这些项目的温度时,这些次要因素就变得至关重要。过去,供应商为阀门,管道支撑件和开放式通风口提供了唯一的热损失值,这些值线性地取决于管道直径。分析表明,管道系统的这些特征的热量损失与管道直径不是线性的。阀门热损失是阀门面积的函数,而不是其管道直径的函数。对这些特征进行了广泛的有限元分析,并在本文中报告了结果,并对可能用于估计热量损失的因素进行了估计。为手动计算和计算机辅助设计说明了这些因素。据估计,多达30%的总热量损失是由阀门和支撑件引起的。适当的工程设计,包括更好的隔热性能,可以显着降低安装和运营成本。

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