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Hydrogen Generation in CSP Plants and Maintenance of DPO/BP Heat Transfer Fluids - A Simulation Approach

机译:CSP植物中的氢气产生和DPO / BP传热流体的维护 - 一种模拟方法

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The ageing of diphenyl oxide/biphenyl (DPO/BP) Heat Transfer Fluids (HTFs) implies challenging tasks for operators of parabolic trough power plants in order to find the economic optimum between plant performance and O&M costs. Focusing on the generation of hydrogen, which is effecting from the HTF ageing process, the balance of hydrogen pressure in the HTF is simulated for different operation scenarios. Accelerated build-up of hydrogen pressure in the HTF is causing increased permeation into the annular vacuum space of the installed receivers and must be avoided in order to maintain the performance of these components. Therefore, the effective hydrogen partial pressure in the HTF has to be controlled and limited according to the specified values so that the vacuum lifetime of the receivers and the overall plant performance can be ensured. In order to simulate and visualize the hydrogen balance of a typical parabolic trough plant, initially a simple model is used to calculate the balance of hydrogen in the system and this is described. As input data for the simulation, extrapolated hydrogen generation rates have been used, which were calculated from results of lab tests performed by DLR in Cologne, Germany. Hourly weather data, surface temperatures of the tubing system calculated by using the simulation tool from NREL, and hydrogen permeation rates for stainless steel and carbon steel grades taken from literature have been added to the model. In a first step the effect of HTF ageing, build-up of hydrogen pressure in the HTF and hydrogen loss rates through piping and receiver components have been modeled. In a second step a selective hydrogen removal process has been added to the model. The simulation results are confirming the need of active monitoring and controlling the effective hydrogen partial pressure in parabolic trough solar thermal power plants with DPO/BP HTF. Following the results of the simulation, the expected plant performance can only be achieved over lifetime, if the hydrogen partial pressure is actively controlled and limited.
机译:二苯基/联苯(DPO / BP)传热流体(HTFS)的老化意味着抛物面槽发电厂的运营商的挑战性任务,以便在植物性能和O&M成本之间找到经济最佳的优化。专注于氢的产生,该氢从HTF老化过程中实现,对于不同的操作场景,模拟了HTF中的氢气压力的平衡。加速在HTF中的氢气压力积聚导致安装接收器的环形真空空间的渗透增加,并且必须避免以保持这些部件的性能。因此,必须根据规定值控制和限制HTF中的有效氢分压,从而可以确保接收器的真空寿命和整体植物性能。为了模拟和可视化典型抛物线槽厂的氢平衡,最初用于计算系统中氢的平衡,描述了这一点。作为模拟的输入数据,已经使用了外推的氢生成率,从德国科隆的DLR执行的实验室测试结果计算。每小时天气数据,通过使用NREL的模拟工具计算的管道系统的表面温度,以及从文献中取出的不锈钢和碳钢等级的氢渗透速率。在第一步中,HTF老化的效果,通过管道和接收器组件建模了HTF和氢气损失中的氢气压力的积聚。在第二步骤中,在模型中添加了选择性氢去除过程。仿真结果证实了需要主动监测和控制抛物面槽太阳能热电厂的有效氢分压与DPO / BP HTF。在模拟结果之后,如果氢气部分压力被主动控制和有限,则只能在寿命上实现预期的植物性能。

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