hi?(1.01?1.88H)t?2491H?(1.01?1.88?0.00844)?125?2491?0.00844?149.26KJ/kg绝干气离开干燥器空气温度55℃,湿球温度45℃;
tw=45℃时,Ps=9.5837kPa,rs=2389.5KJ/kg,P=101.3kPa
Hstw?0.622ps9.5837?0.622?0.065kg水/kg绝干气
p?ps101.33?9.5837tw?t?rtw(Hstw?Ho)1.092389.545?55?(0.065?Ho)?Ho?0.0604kg水/kg绝干气
1.09ho?(1.01?1.88H)t?2491H?(1.01?1.88?0.0604)?55?2491?0.0604?212.26KJ/kg绝干气(1)水分蒸发量
wi0.15 ??0.17k6g5水k绝干料/g1?wi1?0.15wo0.02 xo???0.0204kg水/kg绝干料
1?wo1?0.02干基含水量 xi?
水分蒸发量 qmw?qmd(x?xo?)i 93.66600(0.1?7650.?020k4g)h/qmw93.66(2)绝干空气消耗量 qmdg???1802.5kg绝干气/h
Ho?Hi0.0604?0.00844273?tgi?1.24H4i)(3)湿空气的比体积 VH?(0.772
273273?20 ?(0.772?1.244?0.00844)
273 ?0.84m3湿空气/kg绝干气
鼓风机鼓风量qv?VH?qmdg?1802.5?0.84?1513.8m湿空气/h (4)见前面
3Ho?0.0604kg水/kg绝干气
(5预热器热负荷)
??qmdg(h?hi)=1802.5?(149.26?41.55)?.1.94?105kJ
8.已知某药物临界含水量为0.15kg水/kg干物料,平衡含水量为0.05kg水/kg干物料。于恒定干燥条件下,将物料由0.35 kg水/kg干物料干燥至0.19 kg水/kg干物料,历时4小时,问继续干燥至0.07 kg水/kg干物料,
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共需多少小时。
解:xc?0.15kg水/kg绝干料
x*?0.05kg水/kg绝干料xi?0.35kg水/kg绝干料xo1?0.19kg水/kg绝干料xo2?0.09kg水/kg绝干料;?1?4h
xi?xo1为恒速干燥阶段,时间4hr.恒速干燥阶段公式?md1?AU(xi?xo1) c4?mdAU(0.35?0.19)?md?25cAUc
x?0.19????恒速阶段?2?x降速阶段?3o1c=0.15?????xo2=0.07恒速干燥阶段公式?d2?mAU(x o1?xc)?25?(0.19?0.15)?1hrc降速干燥阶段?md(xc?x*)xc?x*0.15?0.053?AUln*?25?(0.15?0.05)?ln?4.02hrcxo2?x0.07?0.05
共需干燥时间=4+1+4.02=9.02hr
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