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ProcessFesig20u2r0e,81,82.1O6ptimalthermalefficiencyandcorrespondingMC/PCinletpressuresforvariousturbin1e5of23 inlet pressures. Figure 19. Optimal exhaust heat recovery ratios and corresponding MC/PC inlet pressures for various Figure 19. Optimal exhaust heat recovery ratios and corresponding MC/PC inlet pressures for turbine inlet pressures. various turbine inlet pressures. When the turbine inlet pressure and temperature are fixed at 25 MPa and 500 ◦C, the optimal When the turbine inlet pressure and temperature are fixed at 25 MPa and 500 °C, the optimal MC/PC inlet pressures are 5.8 MPa and 7.68 MPa, respectively. It can lead to a maximum exhaust heat MC/PC inlet pressures are 5.8 MPa and 7.68 MPa, respectively. It can lead to a maximum exhaust recovery ratio of 19.0%, while this is 18.12% of the recuperation of the S-CO2 cycle. heat recovery ratio of 19.0%, while this is 18.12% of the recuperation of the S-CO2 cycle. 4.3. Split-Flow Recompression S-CO2 Cycle For recompression of the S-CO2 cycle, the split ratio (SR) is an important parameter which can affectFtohrertehceormparleesffisiocinenocfythηe aSn-CdOe2xchyaculest, thheeatsprelictorvaetiroy(rSaRti)oisηa.nFimorpvoarrtaionutspcayrcalmeeptreerswsuhriecshacnadn 4.3. Split-Flow Recompression S-CO2 Cycle t re taefmfepctertahteutrhese,rmthaelienfflfiucieencceyoηft tahnedSeRxhonauηstahnedatηreciosvdeirffyereantito, bηure.tFthoer voaprtiomuaslcyclleprresssurresand t re ttemperratturreeas,rethceoninsifsltueenntcweiothf the rSeRcuopnerηattiaondoηfrtehies Sd-iCffOerecnyt,clbeu. tTthheereofoprteim, tahlecfyoclloewpirnegssaunraelyasnisd 2 itsemcaprreireadtuartethaereopcotinmsiasltepnrteswsuitrhe athned rtecmuperatuiorne obftathineedS-fCroOm2 cthycelea.boTvherrefsourlet,s tbhaesefdolloonwtihneg haingahleystisηis.carried at the optimal pressure and temperature obtained from the above results based on re thehTighheetshteηrrme.alefficiencyηtandexhaustheatrecoveryratioηreoftherecompressionoftheS-CO2 cycle Tfohrevtahreiromusalspeflfiticriaetniocys (ηStRa)nadrexshaouwsnt hineaFtigreucroev2e0r,ywrhaetiroe ηthreeoifntlheet prerecsosmurpersesosfiothneocfotmheprSe-sCsoOr2 acnydcletufrobrivnaeraioruesfisxpelditaratt7io.6s5(SMRP)araensdho2w5nMiPnaF,igreusrpee2c0ti,vwelhye.reIttihsefionulentdptrheasstuηreisnocfrethaseecsoamnpdrethsseonr daencdretausrebsiwneithartehefixriesdingato7f.t6h5eMSRP,athaenrdei2s5anMoPpat,imreusmpeSctRivoefly0.3I6tliesafdoiunngdtoththaethηitgihnecsrteηas.eCsoamndpathredn t tdoercerceuapsesrawtioitnhotfhteheriSs-inCgOofcytchle,SthRe, hthigehresitsηanincorpetaismesufmromSR36o.f050%.36tole4a3d.1i6n%g.tTohtehreeshuilgthsesshtowηt. 2t that recompression of the S-CO2 cycle can improve cycle thermal efficiency observably. On the contrary, the exhaust heat recovery ratio ηre decreases with the rising of the SR. Since split-flow recompression has negative effects on the exhaust heat recovery, it improves thermal efficiency. Therefore, split-flow recompression of the S-CO2 cycle is not suitable to recovery of the ICE exhaust heat. tPDF Image | Supercritical CO2 Cycle for ICE Waste Heat Recovery
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