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Bài tập Turbine chap 12

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Bài tập Turbine chap 12

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Chapter 12 / Turbomachinery CHAPTER 12 Turbomachinery Elementary Theory ω = 800 × π / 30 = 83.8 rad/s u1 = ωr1 = 83.8 × 0.04 = 3.35 m/s u = ω r2 = 83.8 × 0.125 = 10.48 m/s Q = 2π r1b1Vn1 , but Vn1 = u1 since β1 = 45D 12.2 ∴Q = 2π × 0.04 × 0.05 × 3.35 = 0.0421 m3 / s Vn2 = Q 0.0421 = = 2.14 m/s 2π r2b2 2π × 0.125 × 0.025 Vt2 = u2 − Vt1 = Vn2 tan β = 10.48 − 2.14 = 6.77 m/s tan 30D (α1 = 90D under ideal conditions) ( ) ∴T = ρQ r2Vt2 − rV t1 = 1000 × 0.0421(0.125 × 6.77 − 0) = 35.6 N ⋅ m W P = ωT = 83.8 × 35.6 = 2980 W H t = ωT / γ Q = 2980 /(9810 × 0.0421) = 7.22 m Q = 7.6 ×10−3 m3/s 12.4 ω = 2000 × π 30 = 209 rad/s 175 © 2012 Cengage Learning All Rights Reserved May not be scanned, copied or duplicated, or posted to a publicly accessible website, in whole or in part Chapter 12 / Turbomachinery Q 7.6 ×10−3 = = 1.94 m/s 2π r2b2 2π × 0.0625 × 0.01 Vn2 = u2 = ωr2 = 209 × 0.0625 = 13.06 m/s ∴ Ht = 13.06 u2 (13.06 − 1.94cot 60°) = 15.9 m (u2 − Vn2 cot β ) = 9.81 g  = γ QH = 9810 × 0.8 × 7.6 ×10−3 ×15.9 = 948 W W t  = 948/ 746 = 1.21 hp W Compute loss in suction pipe: ⎛ L ⎞ Q hL = ⎜ f + Σ K ⎟ ⎝ D ⎠ gA 11 ⎛ ⎞ = ⎜ 0.015 × + × 0.19 + 0.8⎟ ⎝ ⎠ 0.1 12.6 0.05 2 ⎛ π⎞ × 9.81 × ⎜ ⎟ × 0.1 ⎝ 4⎠ = 5.85 m Water at 20°C: γ = 9792 N/m3 , pv = 2340 Pa Substitute known data into NPSH relation, solving for Δz: ∴Δ z = patm − pv γ 101×103 − 2340 − 5.85 − = 1.23 m − hL − NPSH = 9792 Dimensional Analysis and Similitude Q1 = N ω1 970 Q = 1Q = × 0.8 = 0.65 m / s ω 2 N 2 1200 ∴from Fig 12.9, H1 ≅ 11.5 m and W ≅ 91 kW ⎛ω ⎞ ⎛ 1200 ⎞ ∴ H = ⎜ ⎟ H1 = ⎜ ⎟ ×11.5 = 17.6 m ⎝ 970 ⎠ ⎝ ω1 ⎠ 12.8 ⎛ 1200 ⎞  = ⎛ ω2 ⎞ W  ∴W ⎜ ⎟ 1=⎜ ⎟ × 91 = 172 kW ⎝ 970 ⎠ ⎝ ω1 ⎠ 12.10 CQ = Q Q / 3600 = = 1.061× 10 −4 Q ω D 304 × 0.2053 (Q in m /h) 176 © 2012 Cengage Learning All Rights Reserved May not be scanned, copied or duplicated, or posted to a publicly accessible website, in whole or in part Chapter 12 / Turbomachinery CH = gH 9.81H = = 2.526 × 10−3 H (H in m) 2 2 ω D 304 × 0.205 Tabulate CQ and CH using selected values of Q and H from Fig 12.6: CQ×10 −3 0.53 1.06 1.59 2.12 2.65 3.18 Q (m3/h) 50 100 150 200 250 300 H (m) 54 53 52 50 47 41 33 CH ×10−1 1.36 1.34 1.31 1.26 1.19 1.04 0.83 The dimensionless curve shown in Fig 12.12 is for the 240-mm impeller Since the impellers are not the same (240 mm versus 205 mm), dynamic similitude does not exist, and thus the curves are not the same Compute the specific speed: Ω P = 12.12 ω Q ( gH P )3 / = 1800 × π × 0.15 30 = 1.30 , (9.81 × 22)3 / hence use a mixed flow pump As an alternate, since Ω P is close to unity, a radial flow pump could be employed Fig 12.13: At η = 0.75 (best eff ), CQ ≅ 0.048 , C H ≅ 0.018, C W ≅ 0.0011, C NPSH ≅ 0.023 ω = 750 × π 30 = 78.5 rad/s 1/3 (a) 12.14 ⎛ 1240 ×10−3 ⎞ D = ⎜⎜ ⎟⎟ ⎝ 0.049 × 78.5 ⎠ H= = 0.685 m 0.018 × 78.52 × 0.6852 = 5.3 m 32.2 H NPSH = 0.023 × 78.52 × 0.6852 = 6.78 m 9.81  = 0.0011×1000 × 78.53 × 0.6855 = 80,250 W = 80.25 kW W or 12.16  = 82.25/0.746 = 107.6 hp W ω = 600 × π 30 = 62.8 rad /s, Q = 22.7 / 60 = 0.378 m / s, 177 © 2012 Cengage Learning All Rights Reserved May not be scanned, copied or duplicated, or posted to a publicly accessible website, in whole or in part Chapter 12 / Turbomachinery ΩP = ω Q ( gH P ) = 3/ 62.8 0.378 = 0.751 (9.81×19.5)3/ H ⎛ ω ⎞ ⎛ D2 ⎞ =⎜ ⎟ ⎜ ⎟ =2 H1 ⎝ ω1 ⎠ ⎝ D1 ⎠ Q2 ⎛ ω ⎞⎛ D2 ⎞ =⎜ ⎟⎜ ⎟ =2 Q1 ⎝ ω1 ⎠⎝ D1 ⎠ ⎛ ω ⎞ ⎛ D ⎞ ⎛ ω ⎞⎛ D ⎞ ∴ ⎜ ⎟ ⎜ ⎟ = ⎜ ⎟⎜ ⎟ ⎝ ω1 ⎠ ⎝ D1 ⎠ ⎝ ω1 ⎠⎝ D1 ⎠ 12.18 ∴Use a radial flow pump or ω D2 = ω1 D1 ⎛ω ⎞ ∴ ⎜ ⎟ = 2, ω2 = ω1 = 1.19 ω1 and D2 = D1 = 1.19 D1 ⎝ ω1 ⎠ Assume a pump speed N = 2000 rpm or ω = 2000 × π 30 = 209 rad/s  /(γ Q) = 200 ×103 /(8830 × 0.66) = 34.3 m HP = W f ∴Ω P = ω Q ( gH P ) 3/ = 209 0.66 = 2.16 (9.81× 34.3)3/ The specific speed suggests a mixed-flow pump However, if N = 1000 rpm, a radial-flow pump may be appropriate Consider both possibilities Mixed flow: from Fig 12.14, at best η : CW ≅ 0.0117, CQ ≅ 0.148, CH ≅ 0.067 Use 12.20 CQ = gH Q and CH = P2 ωD ωD Combining and solving for D and ω Q / CQ D= gHP / CH ρ= Q CQD3 0.66 / 0.148 = 0.251 m 9.81× 34.3/ 0.067 ∴D = ω= and ω = 0.66 = 282 rad/s or N = 282 × 30 / π = 2674 rpm 0.148 × 0.2513 γ g = 8830 = 900 kg/m3 9.81 178 © 2012 Cengage Learning All Rights Reserved May not be scanned, copied or duplicated, or posted to a publicly accessible website, in whole or in part Chapter 12 / Turbomachinery  = C  ρω 3D5 = 0.0117 × 900 × 2823 × 0.2515 ∴W P W = 2.35 × 105 W or 235 kW Radial flow: from Fig 12.12, at best η : CW ≅ 0.027, CQ ≅ 0.0165, C H ≅ 0.125 ∴D = ω= 0.66 / 0.0165 = 0.878 m 9.81× 34.3/ 0.125 0.66 59.1× 30 = 59.1 rad/s or N = = 564 rpm π 0.0165 × 0.878  = 0.0027 × 900 × 59.13 × 0.8785 = 2.62 × 105 W W P or 262 kW Hence, a mixed-flow pump is preferred Use of Turbopumps 12.22 The intersection of the system demand curve with the head-discharge curve yields Q = 2.75 m3 / min, H P = 12.6 m, W P = 7.2 kW N = 1350 rpm, Q = 2.75 m / min, H = 12.6 m, 12.24 W = 7.2 kW, N = 1200 rpm, D = D1 179 © 2012 Cengage Learning All Rights Reserved May not be scanned, copied or duplicated, or posted to a publicly accessible website, in whole or in part Chapter 12 / Turbomachinery ⎛ N ⎞⎛ D ⎞ ⎛ 1200 ⎞ ∴Q2 = Q1 ⎜ ⎟⎜ ⎟ = 2.75 ⎜ ⎟ = 2.44 m /min 1350 N D ⎝ ⎠ ⎝ ⎠⎝ ⎠ 2 ⎛N ⎞ ⎛D ⎞ ⎛ 1200 ⎞ H = H1 ⎜ ⎟ ⎜ ⎟ = 12.6 ⎜ ⎟ = 9.96 m ⎝ 1350 ⎠ ⎝ N1 ⎠ ⎝ D1 ⎠ ⎛N ⎞ ⎛D ⎞ ⎛ 1200 ⎞ W = W ⎜ ⎟ ⎜ ⎟ = 7.2 ⎜ ⎟ = 5.06 kW ⎝ 1350 ⎠ ⎝ N1 ⎠ ⎝ D1 ⎠ Efficiency will remain approximately the same Compute system demand: 2 14 ⎛ L ⎞V ⎛ ⎞ = ⎜ 0.01 × + × 0.1⎟ = 0.40 m H P = ⎜ f + ΣK ⎟ ⎝ D ⎠ 2g ⎝ 0.3 ⎠ × 9.81 12.26 Q = VA = × ∴Ω P = π × 0.32 = 0.212 m2 ω Q ( gH P ) 3/ = 31.4 0.212 = 5.19 (9.81 × 0.4)3/ ω = 300 × π / 30 = 31.4 rad/s ∴Axial pump is appropriate (a) 12.28 The intersection of the pump curve with the demand curve yields H P ≅ 64 m and Q ≅ 280 m3 / h ∴ From Fig 12.6, W P ≅ 64 kW and NPSH ≅ 8.3 m 180 © 2012 Cengage Learning All Rights Reserved May not be scanned, copied or duplicated, or posted to a publicly accessible website, in whole or in part Chapter 12 / Turbomachinery Use energy eqn to establish system demand: e⎤ ⎡ f ≅ 1.325 ⎢ln 0.27 ⎥ D⎦ ⎣ H P = Δz + f −2 0.000255 ⎤ ⎡ = 1.325 ⎢ln 0.27 × 0.45 ⎥⎦ ⎣ −2 = 0.017 0.017 × 5000 L Q2 = 192 + Q2 = 192 + 381Q2 D gA × 9.81× (π / 4) × (0.45) From Fig 12.6, at best ηP , Q ≅ 12.30 240 m3 = 0.067 m3/s, and HP ≅ 65 m 3600 s Assume three pumps in series, so that HP = 3× 65 = 195 m Then the demand head is H P = 192 + 381× (0.067) = 193.7 m Hence three pumps in series are appropriate The required power is WP = γ QHP/ηP = 9810× 0.86× 0.067 ×195/0.75 = 146,965 W W P = 146,965/746 = 197 hp or (a) For water at 80°C, pv = 46.4 × 103 Pa, and ρ = 9553 kg/m3 Write the energy equation from the inlet (section i) to the location of cavitation in the pump: pi γ 12.32 + Vi2 pv = + NPSH 2g γ ∴ NPSH = pi − pv γ Vi2 (83 − 46.4) ×103 62 + = + = 5.67 m 2g 9533 × 9.81 (b) NPSH1 = 5.67 m, N1 = 2400 rpm, N2 = 1000 rpm, D2/D1 = 2 ⎛N ⎞ ⎛D ⎞ ⎛ 1000 ⎞ ∴ NPSH = NPSH1 ⎜ ⎟ ⎜ ⎟ = 5.67 ⎜ ⎟ ⎝ 2400 ⎠ ⎝ N1 ⎠ ⎝ D1 ⎠ ( )2 = 15.8 m Given: 12.34 L = 200 m , D = 0.05 m , Δz = z − z1 = −3 m , V = m/s , ν = × 10 −7 m /s , ρ = 1593 kg/m , pv = 86.2 × 103 Pa , pa = 101 × 103 Pa Compute the pump head: 181 © 2012 Cengage Learning All Rights Reserved May not be scanned, copied or duplicated, or posted to a publicly accessible website, in whole or in part Chapter 12 / Turbomachinery Re = × 0.05 × 10 −7 = 2.5 × 105 ( ) f = 1.325 ⎡ ln 5.74Re-0.9 ⎤ ⎣ ⎦ −2 = 1.325 ⎡ ln 5.74 × (2.5 × 105 ) −0.9 ⎤ ⎣ ⎦ −2 = 0.015 fL ⎞ V ⎛ ⎛ 0.015 × 200 ⎞ = −3 + ⎜ + = 25.0 m H P = Δz + ⎜ + ⎟ ⎟ 0.05 D ⎠ 2g ⎝ ⎠ × 9.81 ⎝ (a) Choose a radial-flow pump Use Fig P12.35 to select the size and speed: C H = 0.124, CQ = 0.0165, η = 0.75 Q = 3× ∴D = ∴ω = π 4 × 0.052 = 0.00589 m CHQ CQ2 gH P Q CQ D = = 0.124 × 0.00589 0.01652 × 9.81 × 25.0 0.00589 0.0165 × 0.090 = 0.090 m = 490 rad/s, or N = 490 × 30 π = 4680 rpm (b) Available net positive suction head: NPSH = pa − pv 101×103 − 86.2 ×103 − Δz = + = 3.95 m 1593 × 9.81 ρg (c) 182 © 2012 Cengage Learning All Rights Reserved May not be scanned, copied or duplicated, or posted to a publicly accessible website, in whole or in part Chapter 12 / Turbomachinery Turbines ω = 120 × π / 30 = 12.6 rad/s α1 = cot −1 (2π r12b1ω / Q + cot β1 ) = cot −1 (2π × 4.52 × 0.85 × 12.6 /150 + cot 75D ) = 6.1D Vt1 = u1 + Vn1 cot β1 = ω r1 + = 12.6 × 4.5 + 12.36 Q cot β1 2π r1b1 150 cot 75D = 58.37 m/s 2π × 4.5 × 0.85 Vt2 = u2 + Vn2 cot β = ω r2 + = 12.6 × 2.5 + Q cot β 2π r2b2 150 cot100D = 29.52 m/s 2π × 2.5 × 0.85 ∴ T = ρQ(rV t1 − r2Vt2 ) = 1000 ×150(4.5 × 58.37 − 2.5 × 29.52) = 2.83 × 107 N ⋅ m  = ωT = 12.6 × 2.83 × 107 = 3.57 × 108 W or 357 MW W T  =W  , hence Under ideal conditions ηT = 1, and W T f HT = W T / γ Q = 3.57 × 108 /(9810 × 150) = 243 m N = 240 rpm , W = 2200 kW , D = 0.9 m, W = 9kW , H1 = 7.5 m 2 W ⎛ N ⎞ ⎛ D2 ⎞ H ⎛ N ⎞ ⎛ D2 ⎞ From the similarity rules  = ⎜ =⎜ ⎟ ⎜ ⎟ and ⎟ ⎜ ⎟ H1 ⎝ N1 ⎠ ⎝ D1 ⎠ W1 ⎝ N1 ⎠ ⎝ D1 ⎠ 12.38 Substitute second eqn into the first to eliminate ( N / N ), and solve for D : 1/ 3/  ⎞1/ ⎛ H ⎞3/ ⎛W ⎛ ⎞ ⎛ 45 ⎞ ∴ D1 = D2 ⎜  ⎟ ⎜ ⎟ = 0.9 ⎜ ⎟ ⎜ ⎟ = 0.221 m ⎝ 2200 ⎠ ⎝ 7.5 ⎠ ⎝ W2 ⎠ ⎝ H1 ⎠ 1/ ⎛H ⎞ N = N1 ⎜ ⎟ ⎝ H2 ⎠ ⎛ D2 ⎞ ⎛ 7.5 ⎞ ⎜ ⎟ = 240 ⎜ ⎟ D ⎝ 45 ⎠ ⎝ 1⎠ 1/ ⎛ 0.9 ⎞ ⎜ ⎟ = 399 rpm ⎝ 0.221 ⎠ 183 © 2012 Cengage Learning All Rights Reserved May not be scanned, copied or duplicated, or posted to a publicly accessible website, in whole or in part Chapter 12 / Turbomachinery Write energy eqn from upper reservoir (loc 1) to surge tank (loc 2) and solve for Q: 1/ ⎡ ⎤ D Q = ⎢ gA2 ( z1 − z2 ) ⎥ fL ⎣ ⎦ 1/ ⎡ × 9.81 × (π / 4) × 0.855 ⎤ =⎢ (650 − 648.5) ⎥ 0.025 × 2000 ⎣ ⎦ = 0.401 m / s Apply energy eqn from loc to lower reservoir (loc 3) and determine H T : ⎛ L ⎞ Q HT = z2 − z3 − ⎜ f + K v ⎟ ⎝ D ⎠ gA2 12.40 ⎛ 0.02 × 100 ⎞ = 648.5 − 595 − ⎜ + 1⎟ ⎝ 0.85 ⎠ 0.4012 ⎛π ⎞ × 9.81× ⎜ ⎟ × 0.855 ⎝4⎠ = 53.4 m ∴ W T = γ QHTηT = 9810 × 0.401 × 53.4 × 0.9 = 1.89 × 105 W or 189 kW ∴ From Fig 12.32, use a Francis turbine A representative value of the specific speed is (Fig 12.20): ΩT ( gHT )5 / 2(9.81× 53.3)5 / ∴ω = = = 306 rad/s  / ρ )1/ (W (2.67 × 105 /1000)1/ T or N = 306 × 30 / π = 2920 rpm ω = 200 × π / 30 = 20.94 rad/s and from Fig P12.42 at best efficiency (ηT = 0.8), φ ≈ 0.42, cv = 0.94 V1 = cv gHT = 0.94 × 9.81× 120 = 45.6 m/s ∴Q = 12.42 WT 4.5 × 10 = = 4.78 m / s γ H T η T 9810 × 120 × 0.8 This is the discharge from all of the jets Determine the wheel radius r : r = φ gHT 0.42 × 9.81× 120 = = 0.973 m 20.94 ω Hence, the diameter of the wheel is 2r = × 0.973 = 1.95 m Compute diameter of one jet: D j = 2r / = 1.95 / = 0.244 m, or 244 mm Let N j = no of jets Then each jet has a discharge of Q / N j and an area 184 © 2012 Cengage Learning All Rights Reserved May not be scanned, copied or duplicated, or posted to a publicly accessible website, in whole or in part Chapter 12 / Turbomachinery Q / Nj V1 Nj = = π D2j ∴Solving for N j : Q 4.78 = = 2.24 V1 ⎛ π ⎞ ⎛π ⎞ D 45.6 0.244 × × ⎜ ⎜ ⎟ j ⎟ ⎝4 ⎠ ⎝4⎠ ∴Use three jets ΩT = ω (W T / ρ )1/ ( gHT )5 / = 20.94(4.5 × 106 /1000)1/ = 0.204 (9.81 × 120)5 / Q = 2082 / = 347 m3 / sec (one unit) HT = WT 427,300 × 746 = = 110.1 m γ QηT 9810 × 347 × 0.85 Write energy eqn from upper reservoir (loc 1) to lake (loc 2): ⎛ L ⎞ Q + HT + z2 z1 = ⎜ f + ΣK ⎟ ⎝ D ⎠ 2gA 12.44 ⎛ 0.01 × 390 ⎞ ∴ 309 = ⎜ + 0.5 ⎟ D ⎝ ⎠ which reduces to 2.4 − 347 ⎛π ⎞ × 9.81 × ⎜ ⎟ D ⎝4⎠ + 110.1 + 196.5 38,840 4980 − =0 D5 D ∴ Solving, D ≅ m ∴From Fig 12.32, a Francis or pump/turbine unit is indicated (a) Let H be the total head and Q the discharge delivered to the turbine; then HT = 0.95H = 0.95 × 305 = 289.8 m and 12.46 Q=  W 10.4 × 10 T = = 4.30 m / s γHT ηT 9810 × 289.8 × 0.85 Write energy eqn from reservoir to turbine outlet: ⎛ L ⎞ Q H = HT +⎜ f +∑K⎟ ⎝ D ⎠ 2gA 4.32 ⎛ 0.02 × 3000 ⎞ ∴ 305 = 289.8 + ⎜ + 2⎟ D ⎝ ⎠ × 9.81× (π / 4)2 D 185 © 2012 Cengage Learning All Rights Reserved May not be scanned, copied or duplicated, or posted to a publicly accessible website, in whole or in part Chapter 12 / Turbomachinery which reduces to 15.2 − 91.67 3.06 − =0 D5 D ∴Solving D = 1.45 m (b) Compute jet velocity: V1 = cv gHT = 0.98 × 9.81× 289.8 = 73.9 m/s The flow through one nozzle is Q/4 and the jet area is πD 2j / Hence π D 2j = Q / 4.3/ = = 0.0146 m V1 73.9 × 0.0146 ∴ Dj = π = 0.136 m 12.48 ⎡ 4.15 × (9.81 × 3.7)5 / ⎤ WT = 1000 ⎢ ⎥ = 4.99 × 10 W (one unit) × 50 / 30 π ⎣ ⎦ Total power developed is 9.21 × 10 W Hence, required number of units is 9.21/ 4.99 = 1.8 ∴ Use two turbines (a) H T = z1 − z − fL Q D gA 0.015 × 350 × 0.252 = 915 − 892 − = 11.8 m 0.3 × × 9.81× (0.7854 × 0.32 )  = γ QH η = 9810 × 0.25 ×11.8 × 0.85 = 2.46 ×104 W or 24.6 kW W T T T (b) Compute the specific speed of the turbine: 12.50 ω=N π 30 ∴ΩT = = 1200 ×  /ρ ω W T ( gHT ) 5/4 π 30 = = 126 rad/s 126 2.46 × 104 /1000 ( 9.81×11.8) 5/4 = 1.65 Hence, from Fig 12.20, a Francis turbine is appropriate (c) From Fig 12.24, the turbine with ΩT = 1.063 is chosen: CH = 0.23, CQ = 0.13, and ηT = 0.91 186 © 2012 Cengage Learning All Rights Reserved May not be scanned, copied or duplicated, or posted to a publicly accessible website, in whole or in part Chapter 12 / Turbomachinery D= ω= CHQ2 = CQ2 gHT 0.23 × 0.252 = 0.293 m or approximately 0.30 m 0.132 × 9.81 × 11.8 Q 0.25 30 = = 71.2 rad/s or N = 71.2 × = 680 rpm 3 π CQ D 0.13 × 0.30 W T = γ QHTηT = 9810 × 0.25 × 11.8 × 0.91 = 2.63 × 10 W, or 26.3 kW Calculate a new specific speed based on the final design data: ΩT = 71.2 × 2.63 ×104 /1000 (9.81×11.8)5/4 = 0.96 An acceptable value according to Fig 12.20 187 © 2012 Cengage Learning All Rights Reserved May not be scanned, copied or duplicated, or posted to a publicly accessible website, in whole or in part Chapter 12 / Turbomachinery 188 © 2012 Cengage Learning All Rights Reserved May not be scanned, copied or duplicated, or posted to a publicly accessible website, in whole or in part [...]... W or 24.6 kW W T T T (b) Compute the specific speed of the turbine: 12. 50 ω=N π 30 ∴ΩT = = 120 0 ×  /ρ ω W T ( gHT ) 5/4 π 30 = = 126 rad/s 126 2.46 × 104 /1000 ( 9.81×11.8) 5/4 = 1.65 Hence, from Fig 12. 20, a Francis turbine is appropriate (c) From Fig 12. 24, the turbine with ΩT = 1.063 is chosen: CH = 0.23, CQ = 0.13, and ηT = 0.91 186 © 2 012 Cengage Learning All Rights Reserved May not be scanned,... z2 z1 = ⎜ f + ΣK ⎟ 2 ⎝ D ⎠ 2gA 12. 44 ⎛ 0.01 × 390 ⎞ ∴ 309 = ⎜ + 0.5 ⎟ D ⎝ ⎠ which reduces to 2.4 − 347 2 ⎛π ⎞ 2 × 9.81 × ⎜ ⎟ D 4 ⎝4⎠ 2 + 110.1 + 196.5 38,840 4980 − 4 =0 D5 D ∴ Solving, D ≅ 8 m ∴From Fig 12. 32, a Francis or pump /turbine unit is indicated (a) Let H be the total head and Q the discharge delivered to the turbine; then HT = 0.95H = 0.95 × 305 = 289.8 m and 12. 46 Q=  W 10.4 × 10 6 T = =... final design data: ΩT = 71.2 × 2.63 ×104 /1000 (9.81×11.8)5/4 = 0.96 An acceptable value according to Fig 12. 20 187 © 2 012 Cengage Learning All Rights Reserved May not be scanned, copied or duplicated, or posted to a publicly accessible website, in whole or in part Chapter 12 / Turbomachinery 188 © 2 012 Cengage Learning All Rights Reserved May not be scanned, copied or duplicated, or posted to a publicly... 9810 × 289.8 × 0.85 Write energy eqn from reservoir to turbine outlet: 2 ⎛ L ⎞ Q H = HT +⎜ f +∑K⎟ 2 ⎝ D ⎠ 2gA 4.32 ⎛ 0.02 × 3000 ⎞ ∴ 305 = 289.8 + ⎜ + 2⎟ D ⎝ ⎠ 2 × 9.81× (π / 4)2 D 4 185 © 2 012 Cengage Learning All Rights Reserved May not be scanned, copied or duplicated, or posted to a publicly accessible website, in whole or in part Chapter 12 / Turbomachinery which reduces to 15.2 − 91.67 3.06...Chapter 12 / Turbomachinery Q / Nj V1 Nj = = π 4 D2j ∴Solving for N j : Q 1 4.78 = = 2.24 V1 ⎛ π 2 ⎞ ⎛π ⎞ 2 D 45.6 0.244 × × ⎜ ⎜ ⎟ j ⎟ ⎝4 ⎠ ⎝4⎠ ∴Use three jets ΩT = ω (W T / ρ )1/ 2 ( gHT )5 / 4 = 20.94(4.5 × 106 /1000)1/ 2 = 0.204 (9.81 × 120 )5 / 4 Q = 2082 / 6 = 347 m3 / sec (one unit) HT = WT 427,300 × 746 = = 110.1... chosen: CH = 0.23, CQ = 0.13, and ηT = 0.91 186 © 2 012 Cengage Learning All Rights Reserved May not be scanned, copied or duplicated, or posted to a publicly accessible website, in whole or in part Chapter 12 / Turbomachinery D= ω= 4 CHQ2 = CQ2 gHT 4 0.23 × 0.252 = 0.293 m or approximately 0.30 m 0.132 × 9.81 × 11.8 Q 0.25 30 = = 71.2 rad/s or N = 71.2 × = 680 rpm 3 3 π CQ D 0.13 × 0.30 W T = γ QHTηT... area is πD 2j / 4 Hence π D 2j 4 = Q / 4 4.3/ 4 = = 0.0146 m 2 V1 73.9 4 × 0.0146 ∴ Dj = π = 0.136 m 2 12. 48 ⎡ 4.15 × (9.81 × 3.7)5 / 4 ⎤ 6 WT = 1000 ⎢ ⎥ = 4.99 × 10 W (one unit) × 50 / 30 π ⎣ ⎦ Total power developed is 9.21 × 10 6 W Hence, required number of units is 9.21/ 4.99 = 1.8 ∴ Use two turbines (a) H T = z1 − z 2 − fL Q 2 D 2 gA 2 0.015 × 350 × 0.252 = 915 − 892 − = 11.8 m 0.3 × 2 × 9.81×

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