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Dual Loop Line-Focusing Solar Power Plants with Supercritical Brayton Power cycles

机译:具有超临界布雷顿功率循环的双回路线聚焦太阳能发电厂

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摘要

Most of the deployed commercial line-focusing solar power plants with Parabolic Troughs (PTC) or Linear Fresnel (LF) solar collectors and Rankine power cycles use a Single Loop Solar Field (SF), Configuration 1 illustrated in Fig. 2, with synthetic oil as Heat Transfer Fluid (HTF) [1, 2]. However, thermal oils maximum operating temperature should be below ~400ºC for assuring no oil degradation, hence limiting the power cycle gross efficiency up to ~38%. For overcoming this limitation Molten Salts (MS) as HTF in linear solar collectors (PTC and LF) were recently experimented in pilot facilities [3, 4]. Direct MS main drawbacks are the equipments and components material corrosion and the salts freezing temperature, requiring heat tracing to avoid any sald solidification, hence increasing the Solar Field (SF) capital investment cost and parasitic energy looses. Concentrated Solar Power plants (CSP) with Dual Loop SF are being studied since 2012 [5] for gaining the synergies between thermal oils and MS properties. In the Dual Loop SF the HTF in the primary loop is thermal oil (Dowtherm A) [6] for heating the Balance Of Plant (BOP) working fluid from ~300ºC up to ~400ºC, and a secondary loop with Solar Salt (60% NaNO3, 40% KNO3) as HTF, for boosting the working fluid temperature from ~400ºC up to 550ºC [7, 8, 9]. The CSP Dual Loop state of the art technology includes Rankine power cycles, the main innovation of this paper is the integration between Dual Loop SF and the supercritical Carbon Dioxide (s-CO2) Brayton power cycles [10], see Configurations 2 and 3 illustrated in Fig. 3a, Fig 3b. A secondary innovation studied in this paper is the integration between thermal oil HTF (Dowtherm A) in linear solar collectors, a widely validated and mature technology, with the s-CO2 Brayton power cycles. This technical solution is very cost competitive with carbon steel receiver pipes, low SF operating pressure, and no requiring any heat tracing. Two main conclusions are deducted from this researching study. Firstly we demonstrated the higher gross plant efficiency ~44.4%, with 550ºC Turbine Inlet Temperature (TIT), provided by the Dual Loop with the Simple recuperated s-CO2 Brayton cycle with reheating, in comparison with 41.8% obtained from the Dual Loop SF and subcritical water Rankine power cycle. And finally the second conclusion obtained is the selection of the most cost competitive plant configuration with a Single loop SF with Dowtherma A and a s-CO2 Brayton power cycle due to the receiver material low cost and no heat tracing for the thermal oil.
机译:具有抛物线槽(PTC)或线性菲涅尔(LF)太阳能集热器和兰金功率循环的大多数已部署的商业集中线太阳能发电厂都使用单回路太阳能场(SF),如图2所示,配置1。作为传热流体(HTF)[1、2]。但是,导热油的最高工作温度应低于〜400ºC,以确保不会发生机油降解,因此将电源循环的总效率限制在〜38%以内。为了克服这一局限性,最近在试验设施中对线性太阳能集热器(PTC和LF)中作为HTF的熔融盐(MS)进行了试验[3,4]。直接MS的主要缺点是设备和组件的材料腐蚀以及盐的冻结温度,需要进行伴热以避免任何盐渍固化,从而增加了太阳能场(SF)的资本投资成本和寄生能量的散失。自2012年以来,正在研究具有双回路SF的集中式太阳能发电厂(CSP)[5],以获取导热油和MS性能之间的协同作用。在双回路SF中,主回路中的HTF是导热油(Dowtherm A)[6],用于将工厂平衡(BOP)工作流体从约300ºC加热到约400ºC,并在次级回路中含太阳盐(60% NaNO3,40%KNO3)作为HTF,用于将工作流体温度从〜400ºC升高到550ºC[7、8、9]。 CSP双回路先进技术包括Rankine功率循环,本文的主要创新之处在于Dual Loop SF和超临界二氧化碳(s-CO2)Brayton功率循环之间的集成[10],请参见配置2和3在图3a,图3b中。本文研究的第二项创新是线性太阳能集热器中的导热油HTF(Dowtherm A)与s-CO2布雷顿功率循环的结合,这是一种经过广泛验证的成熟技术。该技术解决方案与碳钢接收管,SF工作压力低且无需任何伴热的技术,在成本上具有极强的竞争力。这项研究得出两个主要结论。首先,我们证明了双回路采用简单的回热s-CO2布雷顿循环再加热后的550ºC涡轮机入口温度(TIT),可达到约44.4%的总工厂效率,而双回路SF和亚临界水兰金功率循环。最后得出的第二个结论是,由于接收器材料成本低且导热油无热量,因此选择了具有Dowtherma A的单回路SF和s-CO2 Brayton功率循环的最具成本竞争力的工厂配置。

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