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Thermal Energy Storage Strategy Booster Heat Pump Low Temp

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Thermal Energy Storage Strategy Booster Heat Pump Low Temp ( thermal-energy-storage-strategy-booster-heat-pump-low-temp )

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Energies 2020, 13, 6576 17 of 24 Considering that the results with unlimited availability of water from the low temperature energy source could correspond with an ULTDH application, the stratified case shows a slightly better system global efficiency. This could put the stratified case as the best option from the energetic point of view for a booster HP application with the ULTDH network. However, the energy use from the ULTDH network is 87% higher. Considering the cases in which a limitation is imposed, its function can be linked to a grey water energy recovery application since a limited daily grey water production is fixed. In this case, it can be concluded that the variable-water-volume case is a better option for a booster HP application with grey water energy recovery. In conclusion, the variable-water-volume case is the best option for a booster HP with energy recovery (ULTDH or grey water) from a low temperature heat source since it achieves the maximum system global efficiency with a much more reduced energy use Energies 2020, 13, x FOR PEER REVIEW 18 of 25 from the source and lower heat pump and tank sizes. 4. Variable-Water-Volume Storage Tank Implementation 4. Variable-Water-Volume Storage Tank Implementation The variable-water-volume tank is shown as the best option to be coupled with a booster HP The variable-water-volume tank is shown as the best option to be coupled with a booster HP application in terms of cost (smaller tank size) and energy efficiency, overall in energy recovery application in terms of cost (smaller tank size) and energy efficiency, overall in energy recovery applications. In this way, the authors intend to present a solution to implement this solution in a applications. In this way, the authors intend to present a solution to implement this solution in a DHW application. Thus, Figure 14 introduces a sketch of what could be the real implementation of the DHW application. Thus, Error! Reference source not found. 14 introduces a sketch of what could be proposed system. the real implementation of the proposed system. FiFgiugruere141.4S.keStckhetocfhthoefimthpeleimpenletmatieonntaotfiothneovfarthiaeblvea-wriabtelre-vwoalutemr-evotalnukmientaadnkominestaicdhoomtwesatitcerhot water application. application. ThTehme aminaipnrporbolebmlemthathtatriasreisews hwehnetnrytrinygintgotcoocuopulepltehethveavriarbialeb-lwe-awteart-evro-vluomluemteantakniknianDaHDWHW apapplipclaitciaotnioins irselraetleadtewd iwthitthtehperpesresussruizraiztiaotnioonfoitf ictocmombinbeindedwiwthitthhtehwe whohleolienisntasltlaltliaotnio.nT.hTehDeHDWHW facfailcitiilietsieasrearperpesresussruizreizdedanadnndeneedetdhtehteantakntkotboebiencinluclduedetdotboebaelsaolsporpesresussruizreizde.dW. Whehneincinlucdluindgintghethe strsattriaftiiefideodpotpiotnio,na,satshethveovluomluemiesimsaminatianitnaeindecdocnosntasntatn,th,tishipsrporbolebmlemisiasuatuomtoamtiactaicllayllsyoslvoelvde.dIn. Ionrdoredrer tothoahvaevaesaimsimilairlasritsuitautaiotinonfofrotrhtehevavrairaibalbel-ew-wataetre-rv-voolulumeetatannkk,,ththeeccoonnffiigurrattiionshowninFigure 14 is isproposed. Itconsiisttsoffattankaandttwoovvaalvlveess..TThheetatnaknkisisdidviivdieddedinintwtwoopapratsrtbsybya ma movoinvginwgawllall cocmopmopsoesdeodfothf ethrmeramlaisloislaotliaotniomn amtearteiarliainl isnuscuhcahwa awyatyhtahtatht tehheohtowt awtearteirs ims aminatianitnaeindeidnitnhethteoptopaprtart ofotfhtehteatnaknkanadndthtehecoclodldwwaateterrinintthheebotttompart.Whenthereisahottwaatteerrddeemaannddbbuut,ta,cacocrodridnigngthe thecocnotnrtorloallaglogroitrhitmhmofotfhtehesyssytsetmemthteheSHSHPPisisoffo,fft,hteheVaVlavlev_eh_ohtoitsiospoepne,nt,htehheohtowt wataetreflroflwows osuotustisdiedethe thetantaknaknadncdolcdolwdawteartenrtenrsteirnsiidnesiidtemiotvminogvuinpgthuepinthnerinwnaelrl.wWahlle.nWtherne tihsenroetihsontowtahteortdweamtearnd debmuatnadccobrudtinagccthoredcionngtrtohlealcgonrittrhoml atlhgeoSriHthPmmtuhset hSeHatPwmatuesr,ttheavtalwvea_tecor,ldthiseovpaelnvea_llcowldinigstohpeecnold allwowatienrgtothgeocouldttwheataenrktotogothoeuStHthPeatnadnklatoerthoenSgHoiPnganindsildaetetrhoentagnokinthgrionusgidheththeehtoatnwkattheropuagrhtothfethe hottanwka,tienrtphaisrtcoasfet,htehetamnko,vianbltehiwsaclalswe,iltlhmeomvoevdaobwlenw. Failnlawlliyl,limf tohveeSdHoPwisn.oFniannadllyth, iefrethies aSHdePmisanodnof and there is a demand of hot water, both valves will remain open. Summarizing, the Valve_cold is open when the SHP is on and the valve_hot is open when there is a demand of hot water. 5. Conclusions The research work presented in this paper includes the analysis of the influence of the TES system coupled with a HP for an energy recovery application. Two alternatives of the TES system

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