Handbook of Mechanical Engineering Calculations ar Episode 2 Part 6 ppt

... isentropicϭ(cp)(T 2 ϪT1)/(cp) and solve for the temperature after isentropic compression. Solv-(TϪT ), T , 2 Ј 12 Јing,ϭ0. 82 ϭ0 .24 (7 72. 7Ϫ 520 )/0 .24 ϭ 828 .4ЊR, or 368 ЊF. ThisT (TϪ 520 ) 2 Ј 2 Јis ... given,ϭ(1.4Ϫ1) / 1.4Tϭ 520 [( 56/ 14)] 2 7 72. 7ЊR, or 7 72. 7Ϫ 520 ϭ 25 2.7ЊF ( 122 .6 ЊC).(a) Here we have isentropic compression in the compressor with an effi-ciency of 85 percent. Using the ... Substituting, Wsϭ 21 .23 ϫ10 6 /[(1199 .6 Ϫ3 42) ϩ0.03ϫ( 364 Ϫ3 42) ]ϭ 24 ,7 36 lb/h (11 ,23 0 kg/h).Determine the boiler economizer duty fromϭ(1ϩblowdown)(Ws)Qeconwhere symbols are as before....

... 0. 62 2 lb (0 .28 kg) of water per pound (kg) of dry air. Since the watercontent of the air is a function of the partial pressures, (0. 62 2 ) (0.5 067 ) /[ (2 ϫ0.5 067 )]ϭ0 .67 3 lb of water per lb of ... xϭ0.8 12( 555/ 500)ϭ0.90; exϭ 2. 71830.90ϭ 2. 46; t 2 ϭ101.1Ϫ(101.1Ϫ85/ 2. 46) ϭ94 .6 ЊF (34.8ЊC).Check⌬tϭtsϪt 2 ϭ101.1Ϫ94 .6 ϭ 6. 5ЊF (3 .6 ЊC), which is greater than 5ЊF (2. 8ЊC). ... rate, gal /minϭ950 (25 ,000)/ [500(94 .6 Ϫ85)]ϭ4950 gal / min (3 12. 3 L /s). Then Aϭ0.8 12( 4950)ϭ4 020 ft 2 (373.5 m 2 ), andloadingϭ 25 ,000/ 4 020 ϭ 6 .23 lb/ ft 2 (30.4 kg/ m 2 ).Check the correction...

... burnedϭ 12. 39 /22 .1ϭ0. 560 lb (0 .25 2 kg). This, plus the weight of N 2 in the fuel, step 1, is 0. 560 ϩ0.0 025 ϭ0.5 62 5 lb (0 .25 3 kg) of N 2 in theproducts of combustion.Next, find the total weight of ... weights are: for Cϭ1ϫMCϭ1ϫ 12 ϭ 12; O 2 ϭ1 .2 ϫMO 2 ϭ1 .2 ϫ 32 ϭ38.4; N 2 ϭ(1 .2 ϫ3.78)MN 2 ϭ(1 .2 ϫ3.78ϫ 28 )ϭ 127 . Forthe products, relative weights are: for CO 2 ϭ1ϫMCO 2 ϭ1ϫ44ϭ44; ... combustion chemical reaction, or CH4ϩ2O 2 ϭCO 2 ϩ2H 2 O, that is, 16 ϩ 64 ϭ44ϩ 36, and C 2 H 6 ϩ7⁄ 2 O 2 ϭ2CO 2 ϩ3H 2 O, that is 30ϩ1 12 ϭ88ϩ54.See Table 2 from these and other useful chemical...

... 1 52, 000 (69 ,008) 153,140 (69 , 5 26 ) 154,330 (70, 066 )155,570 (70, 62 9 )Exit gas temperature,ЊF(ЊC) 319 (159) 28 5 (141) 27 3 (134) 26 9 (1 32) Fuel fired, MM Btu / h LHV basis (MW) 0 (0) 24 .50 (7 .2) ... 110, 467 ft3/min ( 52. 1 m3/s), with an outlet velocity of 4400 ft /min (22 .4 m /s), an outlet velocity pressure of 1 .21 0 inH 2 O (0.30 kPa), a speed of 122 2r/ min, and an input hp of 25 5.5 ... EQUIPMENT AND AUXILIARIES4. 16 POWER GENERATIONMa[GϪCbϪN 2 Ϫ7.94(H 2 ϪO 2 /8)]}, where Gϭ{[11CO 2 ϩ8O 2 ϩ7(N 2 ϩCO)]/ [3(CO 2 ϩCO)]}(CbϩS/ 2. 67 )ϩS/ 1 .60 ; Mƒϭlb of moisture per...

... (2. 5 cm).The number of tubes per ft 2 of tube sheetϭ 166 /(pitch) 2 , or 166 /1 2 ϭ 166 tubes per ft 2 (17 86. 8 per m 2 ). Since the heater has 1 12 tubes, the area of the tubesheetϭ1 12/ 166 ϭ0 .67 5 ... tubesheetϭ1 12/ 166 ϭ0 .67 5 ft 2 ,or97in 2 ( 62 5 .8 cm 2 ).The inside diameter of the heater shellϭ(tube sheet area, in 2 /0.7854)0.5ϭ(97/0.7854)0.5ϭ11.1 in (28 .2 cm). With a 0 .25 -in (0 .6- cm) thick ... Thus,( 327 .81Ϫ 23 8)Ϫ( 327 .81Ϫ318)tϭmln [ 327 .81Ϫ 23 8/( 327 .81Ϫ318)]ϭ 36. 5ЊF (20 .3ЊC)The average film temperature tffor any closed heater is thentϭtϪ0.8tfs mϭ 327 .81Ϫ 29 .2 ϭ 29 8 .6 ЊF...

... for 9 percent CO 2 in theexhaust gases, 0.09ϭ(CO 2 )/(CO 2 ϩN 2 )ϭ0. 065 4/(0. 065 4ϩN 2 ). Solving forN 2 , we find N 2 ϭ0 .66 1 mole. The weight of N 2 thereforeϭ0 .66 1ϫ 28 ϭ18.5lb (8.399 ... cylinder)(number of cylinders)(rpm /2) /60 s/min. Substituting, engine displacementϭ0.04 92( 6) ( 120 0/ 2) /60 ϭ 2. 9 52 ft3/s (0.0084 m3/s).Then, the volumetric efficiency of this engineϭactual charge drawn ... quantity of dust enteringthe engine is (3500/1000)(1 .6) ϭ5 .6 gr (3 62 . 8 mg). The hourly dust intakeϭ (60 min/h)(5 .6 gr/min)ϭ3 36 gr/ h (21 ,7 72 mg /h).During the year the engine operates 24 h...

... lb/ h (63 ,63 6 kg/h)ϭaflowof(140,000)(0. 120 2)ϭ 16, 840 gal/ h (63 ,739.4 L / h), or 16, 840 /60 ϭ 28 1 gal/ min(17.7 L/ s). Then the liquid velocityv ϭgpm /2. 448d 2 ϭ 28 1 /2. 448(4. 0 26 ) 2 ϭ7.1ft/s ... velocity headv 2 /2gϭ(7.1) 2 /2( 32. 2)ϭ0.784 ft (0 .24 m).Using k values from Fig. 11 in this section, heϭkv 2 /2gϭ(0.5)(0.784)ϭ0.3 92 ft (0. 12 m); hexϭ v 2 /2gϭ0.784 ft (0 .24 m).4. ... Values*CRE ValuesPHCRMean time betweenfailures, months0 6 6– 12 12 24 Ͼ 24 Aa1a2a3a4Ba2b1b2b3Ca3b2c1c2Da4b3c2d1*Chemical Engineering. TABLE 5Predictive MaintenanceFrequencies for Rotating...