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Thermal and Chemical Analysis of Fouling Phenomenon in Condensers for Cooling Tower Applications

机译:冷却塔应用冷凝器中结垢现象的热化学分析

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Brazed plate heat exchanges (BPHEs) and tube-in-tube heat exchangers (TTHEs) are commonly used in the refrigeration, air conditioning, and food industry as refrigerant-to-water condensers, in which refrigerant rejects heat to water circulating in cooling tower loops. These heat exchangers often suffer from severe fouling issues because as the water in the cooling tower evaporates, the mineral concentration in the remaining water increases. Once the solubility limits are reached, the minerals precipitate and deposit on the heat transfer surfaces: an undesirable yet unavoidable phenomenon. Due to the fouling deposit on the heat transfer surfaces, the thermal resistance between refrigerant and water gradually increases. The fouling resistance depends on several factors such as heat exchanger geometry, heat flux, water quality and water flow rates. The fouling factors penalize the overall effectiveness of the refrigerant condensers and thus must be properly accounted for during the equipment design. Predictions of the fouling allowances during the life service of the condenser characterize the degradation in thermal performance and provide guidelines about the maintenance and service of this type of equipment. In this work, a smooth TTHE was investigated by using a new experimental facility at Oklahoma State University. The aim was to measure the fouling resistance in real time and correlate the data with the water quality and heat flux inside the refrigeration condenser. The fouling resistance in the TTHE was observed to have asymptotic trend and the asymptotic limit was lower than that for BPHEs with soft corrugation angles and higher than that of BHPEs with hard corrugation angles operating at similar conditions. The hydraulic performance was similar as BPHEs with hard corrugation angles. The fouling deposit inside the tube-in-tube heat exchanger was further analyzed by using a CCD camera with a borescope probe and by adopting a chemical digestion process for the fouling particles inside the tubes. Fouling did not deposit uniformly inside the TTHE and it was evident that more fouling was present at the outlet section of the water side. The chemical analysis showed that more than 85% of the fouling material was CaCO_3 which was expected from the chemical analysis of the water in critical saturation conditions.
机译:钎焊板式换热器(BPHE)和管内换热器(TTHE)通常在制冷,空调和食品行业中用作制冷剂对水的冷凝器,其中制冷剂将热量排散到冷却塔中循环的水中循环。这些热交换器经常遭受严重的结垢问题,因为随着冷却塔中的水蒸发,剩余水中的矿物质浓度增加。一旦达到溶解度极限,矿物就会沉淀并沉积在传热表面上:这是不希望的但不可避免的现象。由于在传热表面上积垢,致冷剂和水之间的热阻逐渐增加。耐污垢性取决于几个因素,例如热交换器的几何形状,热通量,水质和水流量。结垢因素不利于制冷剂冷凝器的整体效率,因此必须在设备设计期间适当考虑。冷凝器使用寿命期间对结垢量的预测可表征热性能的下降,并提供有关此类设备的维护和保养的准则。在这项工作中,使用俄克拉荷马州立大学的新实验设施对平滑的TTHE进行了研究。目的是实时测量抗结垢性,并将数据与制冷冷凝器内部的水质和热通量相关联。观察到在TTHE中的耐污垢具有渐近趋势,并且渐进极限低于在类似条件下工作的具有软波纹角的BPHE和高于具有硬波纹角的BHPE的渐进极限。液压性能类似于具有硬波纹角的BPHE。管内换热器内部的污垢沉积物通过使用带有管道镜探头的CCD摄像机并通过化学消化工艺对管内的污垢颗粒进行了进一步分析。结垢没有均匀地沉积在TTHE内部,并且很明显在水侧的出口部分存在更多的结垢。化学分析表明,超过85%的结垢物质是CaCO_3,这是在临界饱和条件下对水进行化学分析所预期的。

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