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Generalized convection and power-law models to represent the residence time distribution for non-ideal laminar flow in a double-pipe heat exchanger

机译:表示非理想层流在双管换热器中停留时间分布的广义对流和幂律模型

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The residence time distribution (RTD) is essential for the design and analysis of continuous thermalprocessing equipment. For the processing of liquid foods, flow is usually laminar and the classic RTD modelsoften can not characterize non-ideal laminar flow. Such deviations are associated with coils, curves or tuberoughness/corrugation. Generalized forms of the theoretical convective and power-law models were proposedin order to characterize non-ideal laminar flow in tubes. Introduced parameters were the breakthrough timeand the flow index, respectively. The combined PFR+CSTR model was also considered. To test the models,experimental data was obtained from a sanitary double-pipe heat exchanger using an ionic tracer and aconductivity flow cell. Tube diameter was 4.5 mm with a total length of 19.5 m and internal volume of 311mL. Tested flow rates were between 12 and 20 L/h of distilled water (960 < Reynolds number < 1620). Themodel E-curve was fitted to experimental data after numerical convolution with the E-curve of detection unitto correct the signal distortion. Adjusted parameters were correlated with flow-rate. The best fit was obtainedwith the combined model, followed by the generalized convection and generalized power-law models. Theadjusted flow index was under 1.0, suggesting that the velocity profile was flatter than the theoreticalparabola. This can be explained by the high roughness to diameter ratio of the tube. The higher breakthroughtime obtained from the convection model also indicates a flatter velocity profile. The combined model wasuseful to determine the contribution of dead space and stagnation zones in the equipment, which are due tothe curves and thermocouple connections. The proposed models proved to be useful to represent RTD ofnon-ideal laminar flow in a tubular system.
机译:停留时间分布(RTD)对于连续热设计和分析至关重要 加工设备。对于液体食品的加工,流量通常是层流的,经典的RTD模型 通常无法表征非理想的层流。这种偏差与线圈,曲线或管有关 粗糙度/波纹。提出了理论对流模型和幂律模型的广义形式 为了表征管道中的非理想层流。引入参数是突破时间 和流量指数。还考虑了组合的PFR + CSTR模型。为了测试模型, 实验数据是从使用离子示踪剂和离子色谱仪的卫生型双管换热器获得的。 电导率流动池。管直径为4.5毫米,总长度为19.5 m,内部容积为311 毫升测试的流速为12至20 L / h的蒸馏水(960 <雷诺数<1620)。这 用检测单元的E曲线进行数值卷积后,将模型E曲线拟合到实验数据 纠正信号失真。调整后的参数与流速相关。获得最佳拟合 结合模型,然后是广义对流模型和广义幂律模型。这 调整后的流量指数低于1.0,表明速度曲线比理论值平坦 抛物线。这可以通过管的高粗糙度与直径之比来解释。更高的突破 从对流模型获得的时间也表明速度曲线较为平坦。组合模型是 有助于确定死区和停滞区在设备中的作用,这是由于 曲线和热电偶连接。所提出的模型被证明对表示RTD有用。 管状系统中的非理想层流。

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