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Energies 2020, 13, x FOR PEER REVIEW Energies 2020, 13, 6163 14 of 18 14 of 18 (c) (d) (e) FiguFriegu9r.e 9V.aVliadliadtaiotinonttrrends offsyssytsetmemperpfeorfmoramncaenwceithwstiathcksitnalcekt teimnlpeetratetumrep.e(ra)tCuroem.b(ian)edCsoymstbemined systeamndasntadckstpaockweproewffiecrienfcfiyc;ie(bn)cyO;R(bC)nOetRpCownetr;p(oc)wSetra;ck(ce)lSectatrcikc peolewcteri;c(dp)owStaecr;k(tdh)erSmtaaclkptohweermr; al (e) Cooling pump power consumption. power; (e) Cooling pump power consumption. The efficiency of the combined system and the stack power efficiency are shown in Figure 9a, The efficiency of the combined system and the stack power efficiency are shown in Figure 9a, and the highest efficiency was shown as 56.03% and 52.45% at a current density of 0.15 A/cm2 and a and the highest efficiency was shown as 56.03% and 52.45% at a current density of 0.15 A/cm2 and a stack inlet temperature of 463 K. Additionally, the percentage increase in the combined system power stack inlet temperature of 463 K. Additionally, the percentage increase in the combined system efficiency compared to the stack power efficiency increased by up to 3.81% at a current density of power efficiency compared to the stack power efficiency increased by up to 3.81% at a current 0.25 A/cm2 and a stack inlet temperature of 433 K. In the case of the ORC net power, as the current density of 0.25 A/cm2 and a stack inlet temperature of 433 K. In the case of the ORC net power, as density increased, the thermal power of the stack and the heat exchange amount of the evaporator the current density increased, the thermal power of the stack and the heat exchange amount of the increased, resulting in an increase in power generation. However, when the inlet temperature of the evaporator increased, resulting in an increase in power generation. However, when the inlet stack increased, the power generation decreased, and up to 0.3 kW decreased at a current density of temperature of the stack increased, the power generation decreased, and up to 0.3 kW decreased at 0.4 A/cm2. In terms of the stack electric power, it reached a maximum of 55.96 kW at a current density of 22 acu0r.r4eAnt/cdmenasnitdy7o9f.306.4kWA/acnmda.Isntactekrimnlsetotfemthpeersattaucrkeeolfe4c6t3riKcpasoswheorw,nitinreFaicghuerde9ac,mwahxeirmeausmintoefrm55s.96 2 kWoafttahecustrarceknthdeermnsailtypowfe0r.,4itAre/camchedanadm7a9x.3im6ukmWoafn79d.3a6sktWackatinalceutrtremntpdernastiutyreofo0f.46A3/cKmasasnhdoawn stack inlet temperature of 433 K as shown in Figure 9d. As the current density increased, the power in Figure 9c, whereas in terms of the stack thermal power, it reached a maximum of 79.36 kW at a consumptionofthecooling2 pumpincreasedtherequiredmassflowrateonthestackandtheTEGside current density of 0.4 A/cm and a stack inlet temperature of 433 K as shown in Figure 9d. As the of the evaporator as shown in Figure 8, resulting in the increase in the corresponding pressure drop. current density increased, the power consumption of the cooling pump increased the required mass As shown in Figure 9e, the power consumption of the cooling pump required a maximum of 1.69 kW flow rate on the stack and the TEG side of the evaporator as shown in Figure 8, resulting in the at a current density of 0.4 A/cm2 and a stack inlet temperature of 433 K. increase in the corresponding pressure drop. As shown in Figure 9e, the power consumption of the 2 Figure 10a shows the rate of change in the stack power, waste heat generation, and ORC power cooling pump required a maximum of 1.69 kW at a current density of 0.4 A/cm2 and a stack inlet generation performance according to the difference of the stack coolant inlet temperature for each stack temperature of 433 K. current density. As the current density is relatively higher, the rate of change in the stack power andPDF Image | Combined Power Generation System Based on HT-PEMFC and ORC
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