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VCHP-ORC power generation from low-grade industrial waste heat combined with solar water heating system: Power generation and CO2 emission in industrial estate of Thailand

机译:低级工业废热与太阳能热水系统相结合的VCHP-ORC发电:泰国工业区的发电和CO2排放

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In the view of the total energy consumption by economic sectors of Thailand, it was shown that the greatest energy consumption derived from the industrial sector, where consumed both thermal energy and electrical energy for the processes. In this study, a novel concept of Organic Rankine Cycle (ORC) power generation is proposed. The power is generated from a low-grade industrial waste heat (IWH) with temperature below 70°C. The system is also combined with a solar water heating system (SWHS) and a vapor compression heat pump (VCHP) as a heating booster. A 400?kW thermal capacity VCHP, with R365mfc as the working fluid, is used to rise the heat from IWH and SWHS before supplying to a 60 kW_(e) ORC power generator with R245fa. Three types of solar collectors were used to generate heat: flat-plate, heat pipe evacuated-tube and compound parabolic concentrator (CPC). Between 300 and 700 units of each type of the collectors were connected in parallel with F R τ α e of 0.740, 0.572, 0.718, F _(R)U _(L) of 3.620, 0.750, 0.974?W/m~(2)-K, and gross area of 2.081, 2.369, 2.160?m~(2) per unit, respectively. The system is designed to produces 10?m~(3)/day of hot water at 70°C. The system is mathematically modeled and simulated to evaluate the net power output, the CO_(2) emission, and the levelized cost of electricity (LCOE). Six areas of industrial estate consisting of, Chiang Mai (18.80°N, 98.98°E), Bangkok (13.75°N, 100.52°E), Ratchaburi (13.54°N, 99.82°E), Songkhla (7.21°N, 100.56°E), Nakhon Ratchasima (13.75°N, 100.52°E), and Chon Buri (13.40°N, 101.00°E), that represent the north, central, west, south, north-east and east part of Thailand. Their weather data was taken for the simulations. The simulation results show that the system produces high electricity when the number of the collectors is increased. Moreover, the system located in Chiang Mai produced the highest amount of electricity with the lowest LCOE. When the temperature of low-grade IWH was around 64°C, with 700 solar collector units of each type of flat-plate, heat pipe evacuated-tube, and compound parabolic concentrator (CPC) solar collectors, the system can produce 84.4, 107.0, and 117.1 MWh/Year with LCOE of 0.35, 0.28, and 0.25 USD/kWh, respectively. In terms of the environmental impact, the system can reduce CO_(2) emission of 46.2, 58.6, and 64.2 Ton CO_(2)?eq./Year, respectively. From this study, it can be concluded that the VCHP-ORC system can be integrated with the SWHS and used in industrial processes for power production as well as reduction of the energy intensity and CO_(2) emission of the industries.
机译:从泰国各经济部门的总能源消耗来看,表明最大的能源消耗来自工业部门,在工业部门中,过程消耗了热能和电能。在这项研究中,提出了有机朗肯循环(ORC)发电的新概念。该功率由温度低于70°C的低级工业废热(IWH)产生。该系统还与太阳能热水系统(SWHS)和蒸汽压缩热泵(VCHP)结合在一起作为加热助推器。以R365mfc为工作液的400kW热容量VCHP,用于从IWH和SWHS升高热量,然后再向带有R245fa的60 kW_(e)ORC发电机供电。三种类型的太阳能收集器用于产生热量:平板,热管真空管和复合抛物线聚光器(CPC)。每种类型的收集器的300至700个单元并联连接,其FRταe为0.740、0.572、0.718,F_(R)U_(L)为3.620、0.750、0.974? W / m〜(2)-K,每单位总面积分别为2.081、2.369、2.160?m〜(2)。该系统设计用于在70°C下每天产生10?m〜(3)/天的热水。对系统进行数学建模和仿真,以评估净功率输出,CO_(2)排放量和平均电费(LCOE)。六个工业区,包括清迈(18.80°N,98.98°E),曼谷(13.75°N,100.52°E),叻atch(13.54°N,99.82°E),宋卡(7.21°N,100.56°) E),呵叻府(北纬13.75°,100.52°E)和春武里府(北纬13.40°,101.00°E),分别代表泰国的北部,中部,西部,南部,东北和东部。他们的天气数据用于模拟。仿真结果表明,随着集电极数量的增加,系统产生高电。此外,位于清迈的系统产生的电量最多,而LCOE最低。当低品位IWH的温度约为64°C时,每种类型的平板,热管真空管和复合抛物面聚光器(CPC)都有700个太阳能收集器单元,该系统可以生产84.4、107.0和117.1 MWh /年,LCOE分别为0.35、0.28和0.25 USD / kWh。就环境影响而言,该系统可以将CO_(2)排放量分别减少46.2、58.6和64.2吨CO_(2)eqeq./年。从这项研究可以得出结论,VCHP-ORC系统可以与SWHS集成在一起,并用于电力生产的工业过程以及降低工业的能源强度和CO_(2)排放。

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