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Analytic Modeling Of A Solar Power Plant With Parabolic Linear Collectors

机译:具有抛物线形集热器的太阳能发电厂的解析模型

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An analytic model for a solar thermal electric generating system with parabolic trough collectors was developed. The energy conversion of solar radiation into thermal power along the absorber tube of the parabolic collector is studied, taking into consideration the non-linearity of heat losses and its dependence on the local temperature. The coupling between the collector and the thermodynamic cycle is made up of three heat exchangers, yielding the characteristic temperatures of the cycle. The conventional Rankine cycle is treated as an endo-reversible Carnot cycle, whereby the mechanical and electric power is calculated. For comparison, we refer to the Solar Electric Generating System VI (SEGS VI), installed in the Mojave desert-CA, whose solar field is composed by LS2 parabolic trough collectors. We simulated the efficiency curves of collectors LS2 with evacuated and non-evacuated absorbers and compared with experimental results. A second simulation was carried out to estimate the optimum quantity of non-evacuated LS2 collectors in series in a collectors' row, when friction losses along the absorber tubes are considered. Also, the performance of a 30 (MWe) power plant, composed of 50 rows with 16 LS2 collectors in series (total 800 collectors) was simulated. Three fields of different collectors were considered, the first field with evacuated absorbers, the second with non-evacuated absorbers and the third with bare absorbers. Finally, the output power of the plant is analyzed as a function of the evaporation temperature of the water-vapor fluid. A large maximum of the overall cycle efficiency is found for evaporation temperatures around 320 °C. Good agreement is obtained when comparing the results of this model with experimental data belonging to the Solar Electric Generating Systems (SEGS) installed in the Mojave desert. The analytic model developed combines simplicity, precision and flexibility, making it an attractive tool for simulation and design of solar power stations.
机译:建立了具有抛物线形槽式集热器的太阳能热发电系统的解析模型。考虑到热损失的非线性及其对局部温度的依赖性,研究了沿抛物线收集器的吸收器管将太阳辐射转换为热能的能量。集热器与热力循环之间的耦合由三个热交换器组成,产生了循环的特征温度。传统的朗肯循环被视为可逆的卡诺循环,从而计算出机械和电能。为了进行比较,我们参考安装在莫哈韦沙漠CA的太阳能发电系统VI(SEGS VI),其太阳场由LS2抛物槽收集器组成。我们模拟了带有真空和非真空吸收器的集热器LS2的效率曲线,并与实验结果进行了比较。当考虑沿吸收器管的摩擦损失时,进行了第二次模拟以估计在收集器排中串联的非抽空LS2收集器的最佳数量。此外,还模拟了一个30(MWe)发电厂的性能,该发电厂由50行组成,串联了16个LS2集热器(总共800个集热器)。考虑了三个不同收集器的区域,第一个区域使用真空吸收器,第二个区域使用非真空吸收器,第三个区域使用裸露吸收器。最后,根据水蒸气流体的蒸发温度来分析设备的输出功率。对于320℃左右的蒸发温度,发现整体循环效率有很大的最大值。将模型的结果与安装在莫哈韦沙漠中的太阳能发电系统(SEGS)的实验数据进行比较,可以得出很好的一致性。所开发的分析模型结合了简单性,精确性和灵活性,使其成为太阳能电站仿真和设计的理想工具。

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