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Thermal stress in bimetallic receiver of solar parabolic trough concentrator induced due to non uniform temperature and solar flux distribution

机译:温度和太阳通量分布不均引起的太阳抛物线槽聚光器双金属接收器中的热应力

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The absorber-tube of the parabolic trough collector (PTC) witnesses compression and tension while operation due to the thermal gradient developed over the cross-section of the tube. While the researchers have proposed a number of receiver models to improve the energy collection by heat transfer fluid inside the absorber-tube, the stress developed that forms the essential frameworks for the tube's and glass-envelope's safety has not been modelled for real life scenarios where the absorber is held at a number of pillars. The current study models the stress due to compression and tension in a double-layered absorber (held at pillars) having a high conducting material's layer to mitigate the risk of stress significantly. The pillars are movable that ensure the smooth elongation of the absorber-tube under stress. The pillars are equipped with ball-joints that help the tube to rotate in longitudinal plane. The verification of the proposed model has been carried out against the reported results. The impact of placing the high conductive material as inside or outside layer of the double-layered absorber, width and focal-length of PTC, HTF's rate of flow, and the geometrical imperfections on the normal-stress are found out. The performance of the modelled double-layered absorber is observed in contrast with the single-layered one. It is concluded that (i) the single-layered absorber witnesses stress of -127 MPa/ + 101 MPa due to compression/tension. The one with double-layer undergoes lesser respective stress of -78 MPa/ + 59 MPa when the high conductivity material is placed on the inner side. Besides, the use of high conductivity material as outside layer reduces the stress further to - 38 MPa/ + 35 MPa. Thus, for minimum stress, the outside layer should always be made up of high conducting material, (ii) increasing the HTF's rate of flow from 0.4 kg/s to 1.4 kg/s results in the reduction of stress from -127 MPa/ + 101 MPa to -86 MPa/ + 66 MPa for single-layered absorber. For double-layered absorber, stress comes down from - 38 MPa/ + 35 MPa to -29 MPa/ + 26 MPa and (iii) an appropriate focal-length of around 0.7 m results in the reduction of stress to almost negligible value of 3 MPa for 3rd generation Luz PTC.
机译:抛物槽式集热器(PTC)的吸收器管在运行时会受到压缩和拉伸,这是由于在管的横截面上形成的热梯度所致。尽管研究人员提出了许多接收器模型来改善吸收器管内传热流体的能量收集,但是形成的应力却构成了管和玻璃信封安全性的基本框架,但并未针对现实生活中的情形进行建模。吸收器固定在许多支柱上。当前的研究对具有高导电材料层的双层吸收器(固定在支柱上)的压缩和拉伸应力进行建模,以显着降低应力风险。支柱是可移动的,以确保吸收管在应力作用下的平滑伸长。支柱配有球形接头,有助于管子在纵向平面上旋转。已针对报告的结果对提出的模型进行了验证。发现了将高导电材料作为双层吸收层的内层或外层,PTC的宽度和焦距,HTF的流速以及几何应力对法向应力的影响。与单层吸收器相反,观察到了模型化的双层吸收器的性能。结论是:(i)由于压缩/拉伸,单层吸收器承受-127 MPa / + 101 MPa的应力。当将高电导率材料置于内侧时,具有双层的那一层承受的应力较小,分别为-78 MPa / + 59 MPa。此外,使用高电导率材料作为外层可将应力进一步降低至-38 MPa / + 35 MPa。因此,为了使应力最小,外层应始终由高导电材料制成,(ii)将HTF的流速从0.4 kg / s增加到1.4 kg / s,从而使应力从-127 MPa / +降低单层吸收器的101 MPa至-86 MPa / + 66 MPa。对于双层吸收器,应力从-38 MPa / + 35 MPa下降到-29 MPa / + 26 MPa,并且(iii)合适的焦距约0.7 m导致应力降低到几乎可以忽略不计的3第三代Luz PTC的MPa。

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