2 合成塔的计算
2.1 衡算物料
99.5/32.04=99.11%
99.5/32.04+0.5/18.02
0.5/18.02=0.89?.5/32.+00.45/18.02
99.95/46.07=99.87%
99.95/46.07+0.05/32.040.05/32.04=0.004%
99.95/476.+00.05/32.04
1-99.87%-0.004%=0.126%
200000×103=25000 kg/h=542.65 kmol /h8000
η=542.65×99.87%=99.8%
FxFx=1371.997kmo/h
543.86×2=1359.649kmol/h
80%×100�59.649=1371.997kmol/ h0.9911
-5743.8×62=284.277klm/ho 1371.99表2-1 物料衡算表
组分 二甲醚 甲醇 水 合计
进料 F0/(kmol/h)
0 1371.997 12.211 1384.208
进料 qm0/(kg/h)
0 43958.784 220.042 44184.246
出料 F/(kmol/h)
543.860 284.277 556.070 1384.207
出料 qm/(kg/h) 25055.630 9108.230 10020.380 44184.246
2.2 计算催化剂床层体积 VR=qW22.4=1384.208×=6.201m3 Sv5000 - 7 -
2.3 反应器管数
n=VRπ2×d0×L4=6.201=2863.33 20.785×0.022×5.72.4 热量衡算
Cp1=2.495kJ/(kg/℃) CP2=2.25 kJ/(kg/℃) CP3=4.15 kJ/(kg/℃) μ1=1.75×10-5pa μ2=1.63×10-5pa μ3=1.8×10-5pa λ1=0.03/(m2?k) λ2=0.05624 w/(m2?k) λ3=0.5741w/(m2?k) Q1=(43958.784×2.495+220.042×4.15)×(533.15-298)
=2.6×107 kJ/h
Q2=(25055.63×2.25+9108.235×2.459+10020.38×4.15)×(533.15-298) =2.84×107 kJ/h
QR=1543.86×11770=6.4×107 kJ/h QC=Q1+QR-Q2=4.4×106 kJ/h
λdG0.7d at=f=3.5(P)exp(-4.6P)dtμfdtG=44184.246=39744.598kg/(m2h)
π2926××0.02224μf=1.63×10-5×39.29%+1.75×10-5×20.53%+1.8×105×40.18% =1.723×105Pas dPG0.005×39744.598==3203.95μf1.723×10-5×3600λ=0.05642×39.29%+0.03×20.53%+0.5741×40.18% 2=0.2589W/(mk)=0.9320KJ/(m2hk)所以
at=0.93200.0050.7×3.5×(3203.95)×exp(-4.6×)0.0220.022 =14825.4KJ/(m2hk) - 8 -
Kt=11δdtdt1+++Rstαtλdmd0α1=10.00250.0220.0221+++4.78×10-514825.4167.50.02450.0272717=2333.45KJ/(mhk)
Δtm=(533.15510)+(533.15515)=40.65K
2Qc4×106 A需==42.17m2
ktΔtm2333.45×40.65A实=πldtn=3.14×0.022×5.7×2926=1152.13m2
A实>A需,
dpG11Rem()=3203.95×()=6161.4
mf1-e1-0.48rfu01-eG21-ξΔP=1.75L=1.75L33dsedsPfξ(39744.598/3600)21-0.48=1.75×××5.7 30.005×627.60.48=1812.76kPa
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