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PhD Thesis - Energy Systems Research Unit - University of Strathclyde

PhD Thesis - Energy Systems Research Unit - University of Strathclyde

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C Calculations performed using equations from Kaita. Y.,C "Thermodynamic properties <strong>of</strong> lithium bromide and water solutionsC at high temperatures" 2001. International Journal <strong>of</strong> RefrigerationC 24, 374-390C Point 1 - Weak solution exit from absorberh1=((3.462023-0.02679895*XWK)*T1 +& (0.5*T1**2)*(0.0013499-0.00000655*XWK) +& (162.81-6.0418*XWK-0.0045348*XWK**2+0.0012053*XWK**3))& *1000C Point 4 - Strong solution exit from generatorh4=((3.462023-0.02679895*XST)*T4 +& (0.5*T4**2)*(0.0013499-0.00000655*XST) +& (162.81-6.0418*XST-0.0045348*XST**2+0.0012053*XST**3))& *1000C Point 5 - Strong solution exit from recovery heat exchangerh5=((3.462023-0.02679895*XST)*T5 +& (0.5*T5**2)*(0.0013499-0.00000655*XST) +& (162.81-6.0418*XST-0.0045348*XST**2+0.0012053*XST**3))& *1000C Calculate work done by circulation pump (Wpump) (J/kg)C through (P2-P1)/DenistyWpump = (Phigh - Plow)*1000/& (1145.36 + 470.84*(XWK/100) + 1374.79*(XWK/100)**2& - (0.333393 + 0.571749*(XWK/100))*(273 + T1))C Calculate h2 from: h2 = Wpump + h1h2 = Wpump + h1C Electrical energy (Watts) required for pump = Wpump*zmwk/ElecEffPumpIF(IONOFF.EQ.0) THENEEPump=0ElseEEPump=Wpump*zmwk/BDATA(IPCOMP,18)295

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