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A Clean Energy Generation System of In-Tandem Combinations Each of Heat Pump, Compressor, and Turbine in Wind Tunnel

机译:串联组合的清洁能源系统热泵,压缩机和风洞中的涡轮机

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This is a series of in-tandem combinations each of heat pump, air compressor, and air turbine disposed in a wind tunnel, working together to generate clean/renewable electricity. The air compressor, located at downstream of the preceding air turbine, extracts air from this turbine thus reduces its backpressure and causes pressure drop at the turbine exit. Turbine output work Wtb is proportional to temperature difference (T3-T4) of turbine inlet/outlet air, which varies exponentially with turbine outlet/inlet air pressure ratio P4/P3 in adiabatic process as below: Wtb = MC_p(T3-T4) = MCpT3{1-(P_4/P_3)~(1-1/k)} as T4=T3(P_4/P_3)~(1-1/k) where, M=mass flow rate of air; Cp&Cv=constant pressure/volume specific heat capacities of air; k= Cp/Cv=1.4. An ASME paper [1] verifies that a suction blower put at turbine exit reducing back pressure of 200 mbar can increase turbine inlet/outlet air pressure ratio P3/P4by 25%. Therefore, Wtb becomes more than those turbines without such blowers as (T3-T4) becomes larger, thus this unique Clean Energy Generation System of Heat Pumps, Compressors, and Turbines (HPCT system)achieves producing net useful electric power. In HPCT system, each air compressor works efficiently to reduce air pressure at preceding turbine outlet, as it extracts more air from the turbine than the blower mentioned in the ASME paper, because compressors have higher compression ratio than blowers. Thus, such feature gives higher turbine pressure ratio to each combination of HPCT system than those turbines without blowers (or compressors) to reduce back pressure at turbine exit. Therefore, HPCT system of higher turbine air pressure ratio P3/P4 achieves producing more turbine output work, as air temperature at turbine exit simultaneously drops more when P3/P4 becomes larger. Heat pump is an efficient device to move heat from low-temperature source to high-temperature sink, and geothermal heat source is preferable as it provides steady and warmer heat energy. This "moved" heat is used to heat up the air in wind tunnel to offset the energy extracted by turbine from HPCT system. Also, HPCT system is fully thermally insulated, thus theoretically being of zero heat loss, as it works adiabatically. P-V&T-S curves and performance of each combination of HPCT system working cycle are studied to compare it with actual gas turbine cycle and ideal Brayton cycle. Working examples of HPCT system are presented to simulate practical applications of HPCT system, and find out virtual net useful output work and energy efficiency. HPCT system is a "COLD" Engine of Zero Carbon Emission, works under moderate energy efficiency and with higher energy density than most existing renewable energy generation systems. More importantly, it is a simply designed system using only conventional knowledge, and can be made by the existing technology under the least investment risk.
机译:这是一个系列中的每个热泵,空气压缩机,以及设置在风洞空气涡轮机的在串联组合,一起工作,以产生清洁/可再生的电力。的空气压缩机,位于前述空气涡轮机的下游,空气中提取从该涡轮机因此减少它的背压,并导致在涡轮机出口的压降。涡轮输出功WTB正比于涡轮入口/出口的空气,其与涡轮机出口/入口空气压力比P4指数变化的温度差(T3-T4)/ P3在绝热过程如下:WTB = MC_p(T3-T4)= MCpT3 {1-(P_4 / P_3)〜(1-1 / K)}为T4 = T3(P_4 / P_3)〜(1-1 / K)其中,M =空气的质量流率; CP&CV =空气的恒定压力/体积比热容量; K = CP / CV = 1.4。一个ASME论文[1]验证一个抽吸鼓风机放在涡轮机出口减少200毫巴的背压能够提高涡轮入口/出口空气的压力比P3 / P4by 25%。因此,WTB变得大于那些涡轮机没有这样的鼓风机作为(T3-T4)变大,由此热的这种独特的清洁能源发电系统泵,压缩机,和涡轮机(HPCT系统)实现产生净有用电力。在HPCT系统中,每个空气压缩机有效工作,以减少空气压力在涡轮机出口前面,因为它提取更多的空气从涡轮比在ASME论文中提到的鼓风机,因为压缩机具有比鼓风机更高的压缩比。因此,这样的特征给出了更高的涡轮压力比,以HPCT系统比涡轮机的每个组合而无需鼓风机(或压缩机),以减少在涡轮机出口的背压。因此,更高的涡轮机的空气的压力比P3的HPCT系统/ P4达到产生更多的涡轮输出功,如空气温度在涡轮机出口同时下降更多时P3 / P4变得更大。热泵是从低温源移动热至高温散热器的有效装置,以及地热源是优选的,因为它提供稳定和较热的能量。这种“移动”热被用于加热在风洞空气,以抵消由从HPCT系统涡轮机提取的能量。此外,HPCT系统完全绝热的,因此从理论上为零的热损失的,因为它的工作原理绝热。 P-V&T-S曲线和HPCT系统工作循环的每个组合的性能进行了研究,以将其与实际燃气轮机循环和理想的布雷顿循环比较。 HPCT系统的工作实例是为了模拟HPCT系统的实际应用,并找出虚拟网络有用的输出功和能量效率。 HPCT系统是零碳排放的“冷”发动机,在中等能效和比大多数现有的可再生能源发电系统,能量密度更高的作品。更重要的是,它仅使用传统的知识结构上简单的系统,并且可以通过现有的技术最少的投资风险下进行。

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