8
V
http://doi.org/10.22214/ijraset.2020.5088
May 2020
International Journal for Research in Applied Science & Engineering Technology (IJRASET) ISSN: 2321-9653; IC Value: 45.98; SJ Impact Factor: 7.429 Volume 8 Issue V May 2020- Available at www.ijraset.com
Design of Tall Chimney for Thermal Power Plant Karan Dhall Delhi College of engineering, India Abstract: This research paper presents the Study of along and across wind effects on150m high single flue RCC chimney for Nardana, Maharastra, India where the Basic Wind speed is taken from Figure 1 of IS 875 Part 3 which is 39m/s. Index Terms: Reinforced concrete chimney, structural designing of tall chimney, wind analysis of tall chimney, earthquake analysis and design of tall structures. I. INTRODUCTION This article was primarily conceptualized to understand behavior of tall structures to wind, in our case it is a tall chimney, 150 meter in height which makes it susceptible to wind forces, along with wind, the research paper also calculates earthquake forces on the chimney. Wind is essentially the large-scale movement of free air due to thermal currents. It plays an important role in design of tall structures because it exerts static and dynamic loads whose effects on a slender structure, such as a chimney are significant. The wind load exerted at any point on a chimney can be considered as the sum of quasi-static and a dynamic load component. In case of calculating the forces Simplified method as per as per IS code 875 is used, in order to study the structure completely with random and small variations Random Response method is applied. Random response method also provides us detailed analysis which is much effective than Simplified Method for result evaluations. II. THE BEHAVIOR OF TALL CHIMNEY IN WIND A. Along-wind Effects and Across-wind Effects In a tall freestanding structure like chimneys, wind is generally a governing force. The effect of wind on these tall structures can be separated into two components, known as along-wind effect across-wind effect Along-wind loads are caused by ‘drag’ component of wind force on the chimney, whereas the across-wind loads are caused by the resultant ‘lift’ component. The former is accompanied by the ‘gust buffeting’ causing a dynamic response in the direction of the mean flow, whereas the second is associated with the phenomenon of ‘vortex shedding’ which causes the chimney to oscillate in the direction perpendicular to the direction of wind flow. Evaluation of wind effects therefore includes the estimation of these two types of loads.
Figure 1 Vortex Shedding
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International Journal for Research in Applied Science & Engineering Technology (IJRASET) ISSN: 2321-9653; IC Value: 45.98; SJ Impact Factor: 7.429 Volume 8 Issue V May 2020- Available at www.ijraset.com
Along wind bending of chimney (N.T.S.)
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Across wind bending of chimney (N.T.S.) Figure 2
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International Journal for Research in Applied Science & Engineering Technology (IJRASET) ISSN: 2321-9653; IC Value: 45.98; SJ Impact Factor: 7.429 Volume 8 Issue V May 2020- Available at www.ijraset.com
Figure 3 Chimney elevation
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International Journal for Research in Applied Science & Engineering Technology (IJRASET) ISSN: 2321-9653; IC Value: 45.98; SJ Impact Factor: 7.429 Volume 8 Issue V May 2020- Available at www.ijraset.com III. NUMERICAL PROBLEM A. Design Wind Speed The basic wind speed(Vb), from figure 1 of IS: 875 (Part 3) – 1987, is 39m/s for Shirpur TPS at Nardana. Basic wind speed is based on peak gust velocity which is averaged over a short time interval of 3 seconds and which corresponds to mean heights 10 m over ground level in an open ground for a 50 year return period. The basic wind speed is modified in order to include the subsequent effects to get design wind velocity at a height (Vz) for the chimney structure: 1) Risk level; 2) topography roughness, elevation and size of structure; and 3) Local geography It can be mathematically expressed as follows: Vz= Vb k1k2 k3 Where, Vb= basic wind speed = 39 m/s k1 = probability factor (risk coefficient) = 1.06 k2 = terrain, height and structure size factor, it is calculated for different heights, as per IS 4998 Part 1 we need to consider K3 = topography factor = 1.0 Thus, the design wind velocity and related base shear and bending moment for along wind with simplified method. Class C, Category 2 Height(M)
K1
K2
K3
Vb
Vz
pz(N/Sqm)
145.5 144.5 140 135 130 125 120 115 110 105 100 95 90 85 80 75 70 65 60 58 50 42 29 24 16 15 12.75 10.5 9 6.9 5.4 0
1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06 1.06
1.28 1.28 1.28 1.28 1.28 1.28 1.28 1.28 1.28 1.28 1.24 1.24 1.24 1.24 1.24 1.24 1.24 1.24 1.24 1.24 1.17 1.17 1.12 1.12 1.07 1.05 1.05 1.05 1 1 1 1
1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1
39 39 39 39 39 39 39 39 39 39 39 39 39 39 39 39 39 39 39 39 39 39 39 39 39 39 39 39 39 39 39 39
52.9152 52.9152 52.9152 52.9152 52.9152 52.9152 52.9152 52.9152 52.9152 52.9152 51.2616 51.2616 51.2616 51.2616 51.2616 51.2616 51.2616 51.2616 51.2616 51.2616 48.3678 48.3678 46.3008 46.3008 44.2338 43.407 43.407 43.407 41.34 41.34 41.34 41.34
1680.011 1680.011 1680.011 1680.011 1680.011 1680.011 1680.011 1680.011 1680.011 1680.011 1576.651 1576.651 1576.651 1576.651 1576.651 1576.651 1576.651 1576.651 1576.651 1576.651 1403.6664 1403.6664 1286.2584 1286.2584 1173.9774 1130.5006 1130.5006 1130.5006 1025.3974 1025.3974 1025.3974 1025.3974
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International Journal for Research in Applied Science & Engineering Technology (IJRASET) ISSN: 2321-9653; IC Value: 45.98; SJ Impact Factor: 7.429 Volume 8 Issue V May 2020- Available at www.ijraset.com B. Circumferential Wind Moments = 0.33 x pz x r^2 N-m/m(Ref. Clause 5.4 IS 4998 Part 1) Where Moe and Moi = internal and external ring moment Pz = Design Wind Pressure at Z in N/sqm rm = Mean Radius of the shell at the cross-section under consideration in M Height
pz
r radius in m
Moe
Moi
145.5
1680
5.05
14139
14139
144.5
1680
5.05
14139
14139
140.0
1680
5.05
14139
14139
135.0
1680
5.05
14139
14139
130.0
1680
5.05
14139
14139
125.0
1680
5.05
14139
14139
120.0
1680
5.05
14139
14139
115.0
1680
5.05
14139
14139
110.0
1680
5.05
14139
14139
105.0
1680
5.05
14139
14139
100.0
1577
5.05
13269
13269
95.0
1577
5.05
13269
13269
90.0
1577
5.05
13269
13269
85.0
1577
5.05
13269
13269
80.0
1577
5.05
13269
13269
75.0
1577
5.05
13269
13269
70.0
1577
5.05
13269
13269
65.0
1577
5.05
13269
13269
60.0
1577
5.05
13269
13269
58.0
1577
5.05
13269
13269
50.0
1404
5.4215
13615
13615
42.0
1404
5.793
15545
15545
29.0
1286
6.3965
17367
17367
24.0
1286
6.6285
18650
18650
16.0
1174
7
18983
18983
15.0
1131
7
18280
18280
12.8
1131
7
18280
18280
10.5
1131
7
18280
18280
9.0
1025
7
16581
16581
6.9
1025
7
16581
16581
5.4
1025
7
16581
16581
0.0
1025
7
16581
16581
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International Journal for Research in Applied Science & Engineering Technology (IJRASET) ISSN: 2321-9653; IC Value: 45.98; SJ Impact Factor: 7.429 Volume 8 Issue V May 2020- Available at www.ijraset.com C. Calculation For Static Wind Load Along wind load –Simplified method (Peak factor method): Fz, = PzCD d z Where Pz= design wind pressure obtained in accordance IS 875 (part3):1987. Z = height of section of the chimney in m measured from the top of foundation. CD = drag coefficient of the chimney taken as 0.8&dz = external diameter of the chimney. NOTE — Take the proper factor leading to the class of the structure as defined in the IS 875 (part3):1987. Height
FZ
DIA
SHEAR
BASE SHEAR
Bending
N/sqm/M
dz
M-Ton
M-Ton
Mton-M
0.8
13574
10.1
1.36
0.00
1680
0.8
13574
10.1
6.11
1.36
0.678724
1680
0.8
13574
10.1
6.79
7.47
22.05854
135
1680
0.8
13574
10.1
6.79
14.25
76.3565
130
1680
0.8
13574
10.1
6.79
21.04
164.5907
125
1680
0.8
13574
10.1
6.79
27.83
286.7611
120
1680
0.8
13574
10.1
6.79
34.61
442.8677
115 110
1680 1680
0.8 0.8
13574 13574
10.1 10.1
6.79 6.79
41.40 48.19
632.9106 856.8896
105
1680
0.8
13574
10.1
6.58
54.98
1114.283
100
1577
0.8
12739
10.1
6.37
61.56
1405.091
95 90
1577 1577
0.8 0.8
12739 12739
10.1 10.1
6.37 6.37
67.92 74.29
1728.79 2084.339
85
1577
0.8
12739
10.1
6.37
80.66
2471.735
80
1577
0.8
12739
10.1
6.37
87.03
2890.98
75 70
1577 1577
0.8 0.8
12739 12739
10.1 10.1
6.37 6.37
93.40 99.77
3342.073 3825.015
65
1577
0.8
12739
10.1
6.37
106.14
4339.805
60
1577
0.8
12739
10.1
2.55
112.51
4876.889
58 50
1577 1404
0.8 0.8
12739 12176
10.1 10.843
9.97 10.07
115.06 125.03
5111.88 6072.661
42
1404
0.8
13010
11.586
17.01
135.10
7140.926
29
1286
0.8
13164
12.793
6.70
152.11
8940.798
24 16
1286 1174
0.8 0.8
13642 13149
13.257 14
10.72 1.29
158.82 169.53
9728.16 11003.85
15
1131
0.8
12662
14
2.85
170.82
11174.8
13
1131
0.8
12662
14
2.85
173.67
11562.36
11 9
1131 1025
0.8 0.8
12662 11484
14 14
1.81 2.41
176.52 178.33
11955.16 12221.75
7
1025
0.8
11484
14
1.72
180.74
12598.05
5 0
1025 1025
0.8 0.8
11484 11484
14 14
6.20
182.47 188.67
12873.81 13859.13
pz
CD
146
1680
145 140
m
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International Journal for Research in Applied Science & Engineering Technology (IJRASET) ISSN: 2321-9653; IC Value: 45.98; SJ Impact Factor: 7.429 Volume 8 Issue V May 2020- Available at www.ijraset.com D. Calculations Of Dynamic Wind Loads Across wind load –Simplified method:
Where ηoi= peak tip deflection due to the vortex shedding in the ith mode of the vibration in m dz = external diameter of chimney. CL= peak oscillatory lift coefficient to be taken as 0.16 H = height of the chimney in m. Ksi = mass damping parameter for the ith mode of vibration Sn= Strouhal number to be taken as 0.2 Øzi= mode shape function normalized with respect to the dynamic amplitude at top of the chimney in the ithmode of vibration 1) Calculating Ø (mode shape): This is calculated from STAAD software using Dynamic analysis using plates in space frame for details refer appendix: A Consolidated data for different modes Height M 145.5 144.5 140 135 130 125 120
Outer Diameter OD 10.1 10.1 10.1 10.1 10.1 10.1 10.1
Thickness M 0.35 0.35 0.35 0.35 0.35 0.35 0.35
Mass Kg/m 26788.13 26788.13 26788.13 26788.13 26788.13 26788.13 26788.13
Mode 1 Ø1 1 0.989 0.942 0.89 0.837 0.785 0.732
Mode 2 Ø2 -1 -0.966 -0.813 -0.642 -0.472 -0.305 -0.142
Mode 3 Ø3 1 0.947 0.711 0.448 0.19 -0.052 -0.268
Mode 4 Ø4 -1 -0.927 -0.61 -0.254 0.081 0.364 0.569
115
10.1
0.35
26788.13
0.68
0.014
-0.447
0.675
110 105 100 95 90 85 80 75 70
10.1 10.1 10.1 10.1 10.1 10.1 10.1 10.1 10.1
0.35 0.35 0.35 0.35 0.35 0.35 0.35 0.35 0.35
26788.13 26788.13 26788.13 26788.13 26788.13 26788.13 26788.13 26788.13 26788.13
0.629 0.578 0.528 0.48 0.432 0.386 0.342 0.3 0.261
0.16 0.294 0.414 0.518 0.604 0.67 0.716 0.742 0.747
-0.579 -0.659 -0.683 -0.651 -0.568 -0.439 -0.277 -0.094 -0.095
0.673 0.567 0.375 0.126 -0.146 -0.401 -0.605 -0.729 -0.756
65
10.1
0.35
26788.13
0.224
0.734
0.277
-0.684
60 58 50 42 29 24 16 15 12.75
10.1 10.1 10.843 11.586 12.793 13.257 14 14 14
0.35 0.35 0.36 0.388 0.419 0.431 0.45 0.45 0.45
26788.13 26788.13 29624.96 34106.87 40699.94 43394.85 47865.38 47865.38 47865.38
0.19 0.178 0.134 0.097 0.052 0.039 0.022 0.02 0.016
0.702 0.686 0.595 0.487 0.305 0.24 0.148 0.137 0.114
0.438 0.493 0.637 0.679 0.568 0.486 0.335 0.316 0.271
-0.527 -0.449 -0.052 0.318 0.637 0.641 0.536 0.518 0.466
10.5
14
0.45
47865.38
0.013
0.093
0.228
0.41
9 6.9 5.4 -0.1 -5.5
14 14 14 14 14
0.45 0.45 0.45 0.45 0.45
47865.38 47865.38 47865.38 47865.38 47865.38
0.011 0.008 0.007 0.002 0 2.68 2.34
0.079 0.063 0.052 0.021 0 0.55 11.42
0.2 0.164 0.138 0.06 0 0.222 28.28
0.371 0.315 0.274 0.129 0 0.124 50.82
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period sec ώ
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International Journal for Research in Applied Science & Engineering Technology (IJRASET) ISSN: 2321-9653; IC Value: 45.98; SJ Impact Factor: 7.429 Volume 8 Issue V May 2020- Available at www.ijraset.com Mode shapes Mode 1
Mode 2
Mode 3
Mode 4
Figure 4 view showing different mode shapes Knowing the values of Ø following equation can be calculated using graphical method as specified by GeoffryM.Pinfort, Nachshen, crofts and Leggatt in book “Reinforced concrete Chimneys and towers” 2) Finding Ksi = mass damping parameter for the ith mode of vibration Given by where mei = equivalent mass per unit length in kg/m in the ith mode of vibration as defined, δs = logarithmic decrement of the structural damping = 2πβ β = structural damping as a fraction of critical damping to be taken 0.016, σ = mass density of air to be taken 1.2 kg/m3, d = effective diameter taken as average diameter above the top 1/3rd height of chimney in m. = 10.1M
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International Journal for Research in Applied Science & Engineering Technology (IJRASET) ISSN: 2321-9653; IC Value: 45.98; SJ Impact Factor: 7.429 Volume 8 Issue V May 2020- Available at www.ijraset.com 3) The equivalent mass per unit length in ith mode of vibration (mei): Follwing eq is shown the ith mode of vibration
4) Consolidated data and corresponding results of Ks1, me1, ηo1for first mode Mode mz ø1 dz mz ø1 (z-z0) Height Outer Thickness Mass Diameter M 1 dz M OD Kg/m 145.5 144.5 140 135 130 125 120 115 110 105 100 95 90 85 80 75 70 65 60 58 50 42 29 24 16 15 12.75 10.5 9 6.9 5.4 0 -5.5
10.1 10.1 10.1 10.1 10.1 10.1 10.1 10.1 10.1 10.1 10.1 10.1 10.1 10.1 10.1 10.1 10.1 10.1 10.1 10.1 10.843 11.586 12.793 13.257 14 14 14 14 14 14 14 14 14
0.35 0.35 0.35 0.35 0.35 0.35 0.35 0.35 0.35 0.35 0.35 0.35 0.35 0.35 0.35 0.35 0.35 0.35 0.35 0.35 0.36 0.388 0.419 0.431 0.45 0.45 0.45 0.45 0.45 0.45 0.45 0.45 0.45
26788.125 26788.125 26788.125 26788.125 26788.125 26788.125 26788.125 26788.125 26788.125 26788.125 26788.125 26788.125 26788.125 26788.125 26788.125 26788.125 26788.125 26788.125 26788.125 26788.125 29624.958 34106.868 40699.942 43394.847 47865.375 47865.375 47865.375 47865.375 47865.375 47865.375 47865.375 47865.375 47865.375
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1 0.989 0.942 0.89 0.837 0.785 0.732 0.68 0.629 0.578 0.528 0.48 0.432 0.386 0.342 0.3 0.261 0.224 0.19 0.178 0.134 0.097 0.052 0.039 0.022 0.02 0.016 0.013 0.011 0.008 0.007 0.002 0 ∑
mz ø1^2
ø1^2 dz
Dz ø1 dz
ø1^2 dz
26640.79 116387.7 122689.6 115657.7 108625.8 101594 94562.08 87664.14 80833.17 74069.17 67506.07 61076.92 54781.72 48754.39 42994.94 37570.35 32480.6 27725.71 9858.03 35201.76 29444.1 36225.2 9565.782 11133.75 1005.173 1938.548 1561.608 861.5768 954.9142 538.4855 1163.129 263.2596
3876234.99 16818023.53 17176545.75 15613793.51 14121360.09 12699245.51 11347449.75 10081375.99 8891648.391 7777262.391 6750607.5 5802307.875 4930354.406 4144122.937 3439595.25 2817775.898 2273642.109 1802171.109 591481.8 2041702.3 1472205.19 1521458.315 277407.6859 267209.9303 16082.766 29078.21531 19910.50021 9046.555875 8594.228081 3715.549734 6280.894508 0
26494 112372 112384 99870 88096 77059 66761 57376 48783 40960 34023 27851 22406 17747 13801 10538 7877 5739 1814 5215 3162 2461 421 323 21 35 23 10 9 4 5 0
0.98903 4.194856 4.19528 3.728161 3.288605 2.876611 2.49218 2.141851 1.821061 1.529045 1.27008 1.03968 0.836405 0.66248 0.515205 0.393401 0.294031 0.214245 0.067712 0.194688 0.106722 0.072153 0.010351 0.007442 0.000441 0.000729 0.000473 0.000216 0.00019 8.44E-05 0.000109 5.5E-06
10.04445 43.881975 46.258 43.60675 40.9555 38.30425 35.653 33.05225 30.47675 27.9265 25.452 23.028 20.6545 18.382 16.2105 14.16525 12.24625 10.4535 3.7168 12.6048 10.018932 11.221041 2.9104075 3.234708 0.294 0.567 0.45675 0.252 0.2793 0.1575 0.3402 0.077
0.98903025 4.19485613 4.19528 3.72816125 3.288605 2.87661125 2.49218 2.14185125 1.82106125 1.529045 1.27008 1.03968 0.836405 0.66248 0.515205 0.39340125 0.29403125 0.214245 0.067712 0.194688 0.106722 0.07215325 0.01035125 0.007442 0.000441 0.000729 0.00047306 0.000216 0.00018953 8.4375E-05 0.00010935 0.0000055
1441330
156627690.9
883641 me1 Ks1
32.94353 26822.91 44.03434
536.88186 ηo1
32.9435252 0.02357315
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International Journal for Research in Applied Science & Engineering Technology (IJRASET) ISSN: 2321-9653; IC Value: 45.98; SJ Impact Factor: 7.429 Volume 8 Issue V May 2020- Available at www.ijraset.com 5) Consolidated data and corresponding results of Ks2, me2, ηo2 for second mode Outer Mode mz ø2 (z-z0) mz ø2^2 Height Thickness mz ø2 dz Diameter 2 dz dz M OD M
ø2^2 dz
Dz ø2 dz
ø2^2 dz
145.5
10.1
0.35
-1
-26332.7
-3831411.8
25885.07
0.966289
-9.9283
0.966289
144.5
10.1
0.35
-0.966
-107226
-15494181
95377.68
3.560446
-40.4278
3.560446
140
10.1
0.35
-0.813
-97441.8
-13641853
70888.91
2.646281
-36.7388
2.646281
135
10.1
0.35
-0.642
-74604.9
-10071665
41554.94
1.551245
-28.1285
1.551245
130
10.1
0.35
-0.472
-52035.9
-6764671.3
20215.96
0.754661
-19.6193
0.754661
125
10.1
0.35
-0.305
-29935.7
-3741966.2
6690.636
0.249761
-11.2868
0.249761
120
10.1
0.35
-0.142
-8572.2
-1028664
548.6208
0.02048
-3.232
0.02048
115
10.1
0.35
0.014
11652.83
1340075.95
1013.797
0.037845
4.3935
0.037845
110
10.1
0.35
0.16
30404.52
3344497.41
6901.826
0.257645
11.4635
0.257645
105
10.1
0.35
0.294
47414.98
4978573.03
16784.9
0.62658
17.877
0.62658
100
10.1
0.35
0.414
62416.33
6241633.12
29086.01
1.08578
23.533
1.08578
95
10.1
0.35
0.518
75140.69
7138365.61
42153.93
1.573605
28.3305
1.573605
90
10.1
0.35
0.604
85320.18
7678816.03
54348.95
2.028845
32.1685
2.028845
85
10.1
0.35
0.67
92820.85
7889772.52
64324.85
2.401245
34.9965
2.401245
80
10.1
0.35
0.716
97642.72
7811417.25
71181.54
2.657205
36.8145
2.657205
75
10.1
0.35
0.742
99718.8
7478909.65
74240.64
2.771401
37.59725
2.771401
70
10.1
0.35
0.747
99183.03
6942812.3
73445.04
2.741701
37.39525
2.741701
65
10.1
0.35
0.734
96169.37
6251008.97
69049.61
2.57762
36.259
2.57762
60
10.1
0.35
0.702
37181.92
2230915.05
25804.25
0.963272
14.0188
0.963272
58
10.1
0.35
0.686
144530.3
8382758.48
92571.67
3.281922
51.7524
3.281922
50
10.84
0.36
0.595
137915.7
6895783.62
74612.38
2.341448
46.9285
2.341448
42
11.59
0.388
0.487
192552.7
8087214.67
76250.88
2.038608
59.64473
2.038608
29
12.79
0.419
0.305
57289.58
1661397.68
15611.41
0.371281
17.43046
0.371281
24
13.26
0.431
0.24
70817.93
1699630.38
13738.68
0.301088
20.57486
0.301088
16
14
0.45
0.148
6820.816
109133.055
971.9663
0.020306
1.995
0.020306
15
14
0.45
0.137
13515.99
202739.779
1696.256
0.035438
3.95325
0.035438
12.75
14
0.45
0.114
11146.65
142119.777
1153.678
0.024103
3.26025
0.024103
10.5
14
0.45
0.093
6174.633
64833.6504
531.0185
0.011094
1.806
0.011094
9
14
0.45
0.079
7136.727
64230.5467
506.7076
0.010586
2.0874
0.010586
6.9
14
0.45
0.063
4128.389
28485.8813
237.3823
0.004959
1.2075
0.004959
5.4
14
0.45
0.052
9434.265
50945.0332
344.3507
0.007194
2.7594
0.007194
0
14
0.45
0.021
2764.225
0
29.02437
0.000606
0.8085
0.000606
-5.5
14
0.45
0 1103145
42141657.1
1067753
37.92054
379.6942
37.92054
me2
28157.63
ηo2
0.013797
Ks2
46.22551
∑
©IJRASET: All Rights are Reserved
562
International Journal for Research in Applied Science & Engineering Technology (IJRASET) ISSN: 2321-9653; IC Value: 45.98; SJ Impact Factor: 7.429 Volume 8 Issue V May 2020- Available at www.ijraset.com Calculated values for the first 2 modes we get
ηo1
ηo2
0.02357315
0.013797
Calculation of the sectional shear force (Fzoi)&Sectional Bending Moment (Mzoi)
where f1 = natural frequency of the chimney in Hz in the ith mode of vibration mz = mass per unit length of the chimney at section z in kg/m. Result taken from STAAD Pro. Mode
Frequency Hz
1
0.373
2
1.818 Critical wind speed
d
avgdia of top 1/3
10.1
Sn
strouhal number
0.2
Vcr1 Vcr1
18.8365 91.809
does not govern
Thus calculated values of the Shear force Kg&Bending Moment Kg-M at base is as follows: Fzo1 186431
©IJRASET: All Rights are Reserved
Fzo2 Doesn’t govern
Mzo1 20259236
Mzo2 Doesn’t govern
563
International Journal for Research in Applied Science & Engineering Technology (IJRASET) ISSN: 2321-9653; IC Value: 45.98; SJ Impact Factor: 7.429 Volume 8 Issue V May 2020- Available at www.ijraset.com E. Along wind R.R.M. Analysis The along wind load per unit height at any height z on a chimney shall be calculated from the equation: Fz = Fzm + Fzf Along
Wind
R.R.M
SHEAR
Bending Mton-M
Height (M)
V10
f1
S
E
B
r
Vt
gr
G
∫Fzm.Z.dz
Fzf
Fzf+ Fzm
M-Ton
145.5
49.92
0.37
0.3
0.09
0.63
0.24
1148.96
3.91
2.42
137102
28
13602
0
144.5
49.92
0.37
0.3
0.09
0.63
0.24
1148.96
3.91
2.42
616961
123
13698
1
1
140
49.92
0.37
0.3
0.09
0.63
0.24
1148.96
3.91
2.42
685512
133
13707
8
22
135
49.92
0.37
0.3
0.09
0.63
0.24
1148.96
3.91
2.42
685512
128
13703
14
77
130
49.92
0.37
0.3
0.09
0.63
0.24
1148.96
3.91
2.42
685512
123
13698
21
166
125
49.92
0.37
0.3
0.09
0.63
0.24
1148.96
3.91
2.42
685512
119
13693
28
289
120
49.92
0.37
0.3
0.09
0.63
0.24
1148.96
3.91
2.42
685512
114
13688
35
447
115
49.92
0.37
0.3
0.09
0.63
0.24
1148.96
3.91
2.42
685512
109
13684
42
639
110
49.92
0.37
0.3
0.09
0.63
0.24
1148.96
3.91
2.42
685512
104
13679
49
864
105
49.92
0.37
0.3
0.09
0.63
0.24
1148.96
3.91
2.42
685512
100
13674
55
1123
100
48.36
0.37
0.3
0.09
0.63
0.24
1143.13
3.91
2.4
643337
88
12827
62
1415
95
48.36
0.37
0.3
0.09
0.63
0.24
1143.13
3.91
2.4
643337
83
12823
68
1739
90
48.36
0.37
0.3
0.09
0.63
0.24
1143.13
3.91
2.4
643337
79
12818
74
2096
85
48.36
0.37
0.3
0.09
0.63
0.24
1143.13
3.91
2.4
643337
75
12814
81
2484
80
48.36
0.37
0.3
0.09
0.63
0.24
1143.13
3.91
2.4
643337
70
12810
87
2904
75
48.36
0.37
0.3
0.09
0.63
0.24
1143.13
3.91
2.4
643337
66
12805
94
3357
70
48.36
0.37
0.3
0.09
0.63
0.24
1143.13
3.91
2.4
643337
62
12801
100
3841
65
48.36
0.37
0.3
0.09
0.63
0.24
1143.13
3.91
2.4
643337
57
12796
106
4357
60
48.36
0.37
0.3
0.09
0.63
0.24
1143.13
3.91
2.4
257335
21
12760
113
4896
58
48.36
0.37
0.3
0.09
0.63
0.24
1143.13
3.91
2.4
1029339
82
12821
115
5132
50
45.63
0.37
0.28
0.09
0.63
0.24
1131.88
3.9
2.37
1056192
70
12246
126
6097
42
45.63
0.37
0.28
0.09
0.63
0.24
1131.88
3.9
2.37
1959586
110
13120
136
7171
29
43.68
0.37
0.27
0.09
0.63
0.24
1122.92
3.9
2.34
842041
32
13196
154
8983
24
43.68
0.37
0.27
0.09
0.63
0.24
1122.92
3.9
2.34
1446767
45
13687
160
9776
16
41.73
0.37
0.27
0.08
0.63
0.24
1113.06
3.9
2.31
184080
4
13152
171
11063
15
40.95
0.37
0.26
0.08
0.63
0.24
1108.85
3.9
2.3
398841
8
12669
172
11235
12.75
40.95
0.37
0.26
0.08
0.63
0.24
1108.85
3.9
2.3
398841
6
12668
175
11625
10.5
40.95
0.37
0.26
0.08
0.63
0.24
1108.85
3.9
2.3
265894
4
12665
177
12019
9
39
0.37
0.25
0.08
0.63
0.24
1097.56
3.9
2.27
337643
4
11488
179
12287
6.9
39
0.37
0.25
0.08
0.63
0.24
1097.56
3.9
2.27
241173
2
11487
182
12665
5.4
39
0.37
0.25
0.08
0.63
0.24
1097.56
3.9
2.27
868224
6
11490
183
12940
0
39
0.37
0.25
0.08
0.63
0.24
1097.56
3.9
2.27
0
0
11484
186
13929
=
20670804
©IJRASET: All Rights are Reserved
564
International Journal for Research in Applied Science & Engineering Technology (IJRASET) ISSN: 2321-9653; IC Value: 45.98; SJ Impact Factor: 7.429 Volume 8 Issue V May 2020- Available at www.ijraset.com
Height
Mode 1
M
ø1
145.5
1
0.016
0.12
1
0.2
1.2
14.40594059
26822.90553
144.5
0.989
0.016
0.12
1
0.2
1.2
14.30693069
140
0.942
0.016
0.12
1
0.2
1.2
135
0.89
0.016
0.12
1
0.2
130
0.837
0.016
0.12
1
0.2
125
0.785
0.016
0.12
1
120
0.732
0.016
0.12
115
0.68
0.016
110
0.629
105
β
CL
L
Sn
∩
σ mass density of air
ø1^2 dz
deflection
with respect to height
M
0.5
32.94352519
0.073196556
26822.90553
0.5
31.95449494
0.073250134
13.86138614
26822.90553
0.5
27.75963881
0.073680438
1.2
13.36633663
26822.90553
0.5
23.56435881
0.074194765
1.2
12.87128713
26822.90553
0.5
19.83619756
0.074629771
0.2
1.2
12.37623762
26822.90553
0.5
16.54759256
0.075145234
1
0.2
1.2
11.88118812
26822.90553
0.5
13.67098131
0.075534619
0.12
1
0.2
1.2
11.38613861
26822.90553
0.5
11.17880131
0.075963401
0.016
0.12
1
0.2
1.2
10.89108911
26822.90553
0.5
9.036950063
0.076432881
0.578
0.016
0.12
1
0.2
1.2
10.3960396
26822.90553
0.5
7.215888813
0.076793022
100
0.528
0.016
0.12
1
0.2
1.2
9.900990099
26822.90553
0.5
5.686843813
0.077115638
95
0.48
0.016
0.12
1
0.2
1.2
9.405940594
26822.90553
0.5
4.416763813
0.077534526
90
0.432
0.016
0.12
1
0.2
1.2
8.910891089
26822.90553
0.5
3.377083813
0.077674464
85
0.386
0.016
0.12
1
0.2
1.2
8.415841584
26822.90553
0.5
2.540678813
0.077761758
80
0.342
0.016
0.12
1
0.2
1.2
7.920792079
26822.90553
0.5
1.878198813
0.077739994
75
0.3
0.016
0.12
1
0.2
1.2
7.425742574
26822.90553
0.5
1.362993813
0.077508464
70
0.261
0.016
0.12
1
0.2
1.2
6.930693069
26822.90553
0.5
0.969592563
0.077239433
65
0.224
0.016
0.12
1
0.2
1.2
6.435643564
26822.90553
0.5
0.675561313
0.076527319
60
0.19
0.016
0.12
1
0.2
1.2
5.940594059
26822.90553
0.5
0.461316313
0.07546994
58
0.178
0.016
0.12
1
0.2
1.2
5.742574257
26822.90553
0.5
0.393604313
0.075257235
50
0.134
0.016
0.12
1
0.2
1.2
4.611269944
26822.90553
0.5
0.198916313
0.083858767
42
0.097
0.016
0.12
1
0.2
1.2
3.625064733
26822.90553
0.5
0.092194313
0.087830751
29
0.052
0.016
0.12
1
0.2
1.2
2.266864692
26822.90553
0.5
0.020041063
0.097161465
24
0.039
0.016
0.12
1
0.2
1.2
1.810364336
26822.90553
0.5
0.009689813
0.100612033
16
0.022
0.016
0.12
1
0.2
1.2
1.142857143
26822.90553
0.5
0.002247813
0.10471596
15
0.02
0.016
0.12
1
0.2
1.2
1.071428571
26822.90553
0.5
0.001806813
0.102808572
12.75
0.016
0.016
0.12
1
0.2
1.2
0.910714286
26822.90553
0.5
0.001077813
0.098177894
10.5
0.013
0.016
0.12
1
0.2
1.2
0.75
26822.90553
0.5
0.00060475
0.096640754
9
0.011
0.016
0.12
1
0.2
1.2
0.642857143
26822.90553
0.5
0.00038875
0.094425433
6.9
0.008
0.016
0.12
1
0.2
1.2
0.492857143
26822.90553
0.5
0.000199225
0.083994889
5.4
0.007
0.016
0.12
1
0.2
1.2
0.385714286
26822.90553
0.5
0.00011485
0.085632706
0
0.002
0.016
0.12
1
0.2
1.2
0
26822.90553
0.5
5.5E-06
-5.5
0
0.016
0.12
1
0.2
1.2
©IJRASET: All Rights are Reserved
me1
ka
∑
32.94352519
ηo1 (max)
0.10471596
565
International Journal for Research in Applied Science & Engineering Technology (IJRASET) ISSN: 2321-9653; IC Value: 45.98; SJ Impact Factor: 7.429 Volume 8 Issue V May 2020- Available at www.ijraset.com F. Across Wind R.R.M. Analysis Thus values of the Shear force Kg&Bending Moment Kg-M at base is as follows: Fzo1
Fzo2
Mzo1
Mzo2
53268.48743
DOES NOT GOVERN
43560.9311
DOES NOT GOVERN
G. Seismic Analysis 1) Horizontal Seismic Force The horizontal seismic coefficient Ah, shall be obtained using the period T, described as under. 2) When using site specific spectra, the seismic coefficient shall be calculated from the expression :
where / g = spectral acceleration coefficient calculated from the expression:
where Z = Zone factor Sa/g = Spectral acceleration coefficient R = Response reduction factor Table 1 Importance factor for various Industrial structures II
The fundamental time period for stake-like structures, ‘T” is given by:
CT = coefficient depending upon slenderness ratio. WT = Total weight of structure. h = Height of structure above the base. Table 2 Values of CT andCv
©IJRASET: All Rights are Reserved
566
International Journal for Research in Applied Science & Engineering Technology (IJRASET) ISSN: 2321-9653; IC Value: 45.98; SJ Impact Factor: 7.429 Volume 8 Issue V May 2020- Available at www.ijraset.com Calculation for Time period Area
g
Es (M25)
wt
H/r
Ct
T
19.14615
9.81
32000000000
4651909
30.3
56
1.86
medium soil
Ah1
HORIZO SEISMIC LOAD
BENDING MOMENT
3) Seismic Calculations Outer Height Diameter Thickness
Mass
Mass
M
OD
M
Kg/m
kg
Z
I
R
time period
145.5
10.1
0.35
26788.13
13394.06
0.24
1.75
3
1.8613
0.731
0.0511
685.0619904
99676.51961
144.5
10.1
0.35
26788.13
73667.34
0.24
1.75
3
1.8613
0.731
0.0511
3767.840947
544453.0169
140
10.1
0.35
26788.13
127243.6
0.24
1.75
3
1.8613
0.731
0.0511
6508.088909
911132.4473
135
10.1
0.35
26788.13
133940.6
0.24
1.75
3
1.8613
0.731
0.0511
6850.619904
924833.6871
130
10.1
0.35
26788.13
133940.6
0.24
1.75
3
1.8613
0.731
0.0511
6850.619904
890580.5876
125
10.1
0.35
26788.13
133940.6
0.24
1.75
3
1.8613
0.731
0.0511
6850.619904
856327.488
120
10.1
0.35
26788.13
133940.6
0.24
1.75
3
1.8613
0.731
0.0511
6850.619904
822074.3885
115
10.1
0.35
26788.13
133940.6
0.24
1.75
3
1.8613
0.731
0.0511
6850.619904
787821.289
110
10.1
0.35
26788.13
133940.6
0.24
1.75
3
1.8613
0.731
0.0511
6850.619904
753568.1895
105
10.1
0.35
26788.13
133940.6
0.24
1.75
3
1.8613
0.731
0.0511
6850.619904
719315.09
100
10.1
0.35
26788.13
133940.6
0.24
1.75
3
1.8613
0.731
0.0511
6850.619904
685061.9904
95
10.1
0.35
26788.13
133940.6
0.24
1.75
3
1.8613
0.731
0.0511
6850.619904
650808.8909
90
10.1
0.35
26788.13
133940.6
0.24
1.75
3
1.8613
0.731
0.0511
6850.619904
616555.7914
85
10.1
0.35
26788.13
133940.6
0.24
1.75
3
1.8613
0.731
0.0511
6850.619904
582302.6919
80
10.1
0.35
26788.13
133940.6
0.24
1.75
3
1.8613
0.731
0.0511
6850.619904
548049.5923
75
10.1
0.35
26788.13
133940.6
0.24
1.75
3
1.8613
0.731
0.0511
6850.619904
513796.4928
70
10.1
0.35
26788.13
133940.6
0.24
1.75
3
1.8613
0.731
0.0511
6850.619904
479543.3933
65
10.1
0.35
26788.13
133940.6
0.24
1.75
3
1.8613
0.731
0.0511
6850.619904
445290.2938
60
10.1
0.35
26788.13
93758.44
0.24
1.75
3
1.8613
0.731
0.0511
4795.433933
287726.036
58
10.1
0.35
26788.13
133940.6
0.24
1.75
3
1.8613
0.731
0.0511
6850.619904
397335.9545
50
10.84
0.36
29624.96
236999.7
0.24
1.75
3
1.8613
0.731
0.0511
12121.74884
606087.4419
42
11.59
0.388
34106.87
358122.1
0.24
1.75
3
1.8613
0.731
0.0511
18316.76171
769303.9917
29
12.79
0.419
40699.94
366299.5
0.24
1.75
3
1.8613
0.731
0.0511
18735.00666
543315.1931
24
13.26
0.431
43394.85
282066.5
0.24
1.75
3
1.8613
0.731
0.0511
14426.76874
346242.4497
16
14
0.45
47865.38
215394.2
0.24
1.75
3
1.8613
0.731
0.0511
11016.70018
176267.203
15
14
0.45
47865.38
77781.23
0.24
1.75
3
1.8613
0.731
0.0511
3978.252844
59673.79267
12.75
14
0.45
47865.38
107697.1
0.24
1.75
3
1.8613
0.731
0.0511
5508.350092
70231.46368
10.5
14
0.45
47865.38
89747.58
0.24
1.75
3
1.8613
0.731
0.0511
4590.291744
48198.06331
9
14
0.45
47865.38
86157.68
0.24
1.75
3
1.8613
0.731
0.0511
4406.680074
39660.12066
6.9
14
0.45
47865.38
86157.68
0.24
1.75
3
1.8613
0.731
0.0511
4406.680074
30406.09251
5.4
14
0.45
47865.38
165135.5
0.24
1.75
3
1.8613
0.731
0.0511
8446.136808
45609.13876
0
14
0.45
47865.38
129236.5
0.24
1.75
3
1.8613
0.731
0.0511
6610.020111
0
4651909
231319.722
15251248.78
wt
KG
KG-M
Sa/g
DOSENT GOVERN
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International Journal for Research in Applied Science & Engineering Technology (IJRASET) ISSN: 2321-9653; IC Value: 45.98; SJ Impact Factor: 7.429 Volume 8 Issue V May 2020- Available at www.ijraset.com IV. RESULTS AND DISCUSSIONS After Analysis of chimney with respect to IS 875, IS 4998, IS 1893, following table Shows Resultant Moment
S.NO.
1 2 3 4
Table 3Results of chimney W.R.T. (IS CODES), UNIT RESULTANT SIMPLIFIED METHOD
EFFECTS OF WIND Along wind maximum bending moment ACROSS wind maximum bending moment Along wind maximum BASE SHEAR ACROSS wind maximum BASE SHEAR
BENDING MOMENT IN K-TON-M
A.
design wind speed 3.00E+01 2.50E+01 2.00E+01 1.50E+01 1.00E+01 5.00E+00
W.R.T. (IS CODES), RANDOM RESPONSE
RESULTANT
KTON-M
13.86
13.93
KTON-M
20.26
0.044
KTON
0.188
0.186
KTON
0.186
24.55
13.93
0.26
0.19 0.053
ALONG WIND
ALONG WIND
0.00E+00 48.36 45.88 43.4 40.92 38.44 35.96 33.48
31
28.52 26.04 23.56 21.08
design wind speed Figure 5 Bending Moment Vs Design wind speed (Along wind)
ACROSS WIND 8 6 4 2
ACROSS WIND
0 -2
48.36 45.88 43.4 40.92 38.44 35.96 33.48
-4
31
28.52 26.04 23.56 21.08
design wind speed Figure 6 Moment Vs Design wind speed (Across wind)
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International Journal for Research in Applied Science & Engineering Technology (IJRASET) ISSN: 2321-9653; IC Value: 45.98; SJ Impact Factor: 7.429 Volume 8 Issue V May 2020- Available at www.ijraset.com Graph Showing Deflection In Mm Vs Height Of The Chimney For Random Response Calculation As Per Is 4998 Equations
HEIGHT VS DEFLECTION
160
Deflection Vs Height 160
140
140
120 120
100 100
80 80
60 60
40
40 20
20 0 0
100
200
300
-20
Figure 7 Deflection Vs Height (Along R.R.M.)
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0 0.000
50.000
100.000
150.000
Figure 8 Deflection Vs Height (ACCROS R.R.M)
569
International Journal for Research in Applied Science & Engineering Technology (IJRASET) ISSN: 2321-9653; IC Value: 45.98; SJ Impact Factor: 7.429 Volume 8 Issue V May 2020- Available at www.ijraset.com Design of CHIMNEY
SHE AR
BAS E SHE AR
0.0 1.4 7.5 14.3 21.1 27.8 34.6 41.5 48.3 55.6 62.8 70.0 76.5 83.5 90.8 98.3 104.4 112.2 120.3 125.3 137.6 150.5 170.0 180.8 195.7 203.1 212.8 223.5 234.4 246.7
0.0 228.9 324.9 408.4 571.4 772.1 908.6 1784.2 2326.3 3842.9 4541.5 5150.4 5390.9 5904.6 6503.7 7183.7 7420.7 8200.4 9046.2 9782.6 10957.8 12256.4 14067.5 15306.7 16904.6 17839.5 18967.2 20151.9 21318.6 22605.9
5.400
1.37 6.17 6.85 6.85 6.85 6.84 6.84 6.84 6.63 6.41 6.41 6.41 6.41 6.40 6.40 6.40 6.39 6.40 2.51 10.15 10.53 17.47 6.71 10.33 1.27 2.85 2.72 1.72 2.41 1.72 114.9 5
DESIGN CALCULATIONS Eccen Weig tricity Max ht(K (e)m Min stres N) m stress s in concrete(N/Sq mm) 273 8 0 0 1502 2122 0 0 2867 1397 0 0 4233 1324 0 1 5598 1353 0 1 6963 1280 0 1 8329 2102 0 1 9694 2354 0 2 11059 3409 0 2 12425 3586 0 3 13790 3664 -1 3 15155 3489 0 3 16521 3506 -1 4 17886 3567 -1 4 19251 3661 -1 4 20617 3531 -1 5 21982 3660 -1 5 23347 3801 -1 5 23894 4016 -1 6 26078 4122 -1 5 28494 4220 -1 5 33014 4180 -1 5 35088 4279 -1 5 38627 4293 0 4 39115 4474 0 5 40213 4627 -1 5 41311 4785 -1 5 42043 4974 -1 5 43067 5149 -1 5
258.4
23775.3
43799
5325
-1
0.000
0.00
265.2
24546.1
46434
5186
-1.1
Height( M)
145.500 144.500 140.000 135.000 130.000 125.000 120.000 115.000 110.000 105.000 100.000 95.000 90.000 85.000 80.000 75.000 70.000 65.000 60.000 58.000 50.000 42.000 29.000 24.000 16.000 15.000 12.750 10.500 9.000 6.900
ton
Ton
Bending
ton-M
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providerei nf.
providedrei nf.
Tensi on capac ity -2 -2 -2 -2 -2 -2 -2 -2 -2 -2 -2 -2 -2 -2 -2 -2 -2 -2 -2 -2 -2 -2 -2 -2 -2 -2 -2 -2 -2
CHECK
1% thus Ast 107153 107153 107153 107153 107153 107153 107153 107153 107153 107153 107153 107153 107153 107153 107153 107153 107153 107153 107153 118500 136427 162800 173579 191462 191462 191462 191462 191462 191462
every 300mm 1050 1050 1050 1050 1050 1050 1050 1050 1050 1050 1050 1050 1050 1050 1050 1050 1050 1050 1050 1080 1164 1257 1293 1350 1350 1350 1350 1350 1350
Compres sion capacity 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10
6
191462
1350
10
-2
HENCE SAFE
6
191462
1350
10
-2
HENCE SAFE
HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE HENCE SAFE
570
International Journal for Research in Applied Science & Engineering Technology (IJRASET) ISSN: 2321-9653; IC Value: 45.98; SJ Impact Factor: 7.429 Volume 8 Issue V May 2020- Available at www.ijraset.com V. CONCLUSIONS, DISCUSSION, FUTURE SCOPE. Our objective of study included Analysis of structure as per IS Codes and comparing the results with each other, after we obtained results we found that Bending moment and shear forces obtained from Simplified method and R.R.M method of analysis as per IS 4998 are higher than bending moment and shear force obtained due to earthquake analysis, also every structure is unique and with changes in geometry the governing forces and their values differs, after in depth study of codes in this paper I have worked out a case study of a chimney and using this solution chimney any other chimney problem can be solved quickly and with accuracy. Future scope includes analysis of chimney of different height and material properties in similar fashion as explained in this case study to understand behavior of structures in a better manner, wind velocity may also be increased to study behavior of structure when excited in higher modes, one may also go for wind tunnel testing and CFD analysis to testify results obtained with Indian standard codes. REFERENCES [1] [2] [3] [4] [5] [6] [7] [8] [9] [10] [11] [12] [13] [14] [15]
[16] [17] [18] [19] [20] [21] [22] [23] [24] [25] [26] [27] [28] [29]
Batham, J.P., “Parameters required for the wind-tunnel simulation of the wind loads on large power station chimneys”, Wind Engineering and Industrial dynamics, Elsevier science publishers -Amsterdam, Vol.18, 1985. Milford R.V., “Structural reliability and cross wind response of tall chimneys”. Engineering structures, Butterworth & Co. (Publishers) Ltd, Vol.4, 1982, Reddy K.R.C, Jaiswal O.R and Godbole P.N, “Wind response control of tall RC chimneys”, Wind and Engineering, Vol. 8, 2011. Reddy K. R. C, Jaiswal O. R. and P. N. Godbole., “Wind and Earthquake Analysis of Tall RC Chimneys”, Earth sciences and Engineering, October 2011, Vickery B.J. and Basu.R. “Simplified approaches to the evaluation of the across wind Response of chimneys”, Wind Engineering and Industrial dynamics, Elsevier science Publishers -Amsterdam, 1983, pp. 153-166. Manohar, S.N., “Tall Chimneys”, Tata McGraw-Hill Publishing Company Limited, New Delhi, 1981. Code of practice for design loads for buildings and structures, IS: 875(Part-III):1987, published by Bureau of Indian standards. GeoffryM.Pinfort, Nachshen, crofts and Leggatt in their book “Reinforced concrete Chimneys and towers” Criteria for design of Reinforced concrete Chimneys, IS: 4998(Part-I):1992, published by Bureau of Indian standards. IS 1893(Part1) – 2002, Indian Standard Code of Practice for Criteria for Earthquake Resistant Design of Structures. Bureau of Indian Standard, (New Delhi) K. Suresh Kumar and G. N. V. Rao, Wind Loading over the Top Portions of Tall Stacks with and Without External Landing Platforms, Journal of Wind Engineering and Industrial Aerodynamics, Vol. 51, Page 319-338, July 1993 Lawrence C Maugh and Wadi S. Rumman, Dynamic Design of Reinforced Concrete Chimneys, ACI Journal, Vol. 64, No. 47, Page 560-567, September 1967 S. R. Joshi, N. S. Pendse, V. T. Patilkakad, Some Special Aspects of the Design and Analysis of Tall Chimneys, Irrigation and Power Journal, Vol. 42, No. 1, January 1985 K. S. Babu Narayan, Subhash C. Yarogal, and Yukio Tamura, “Interaction Envelops For Limit State Design of Chimneys”, Fourth International Symposium on Computational Wind Engineering, Yokohama, 2006 [10] J. L. Wilson, Code Recommendation for the aseismic Design of Tall Reinforced Concrete Chimneys, CICIND’s Report Australia, Bibao, Vol. 16, No. 2, September 2000 N. S. Pour, Indrajit Chowdhary, Dynamic Soil – Structure Interaction Analysis of Tall Multi flue Chimneys Under Aerodynamic and Seismic Force, Twelfth International Conference of IACMAG India, Goa, Page 1-6, October 2008 Jaiswal, O.R., Srinivas, V., 2005, ‘Effect of tuned mass damper on across-wind response of tall RC Chimneys’, Journal of Wind & Engineering, India, vol.2, No.1, pp.9-21 Shivaji, M., Raju, V.S.N., ‘Dynamic analysis of R.C.C. chimneys’ H.Taibi Zinai, A. Plumier and D. Kerdal, “Computation of Buckling Strength of Reinforced Concrete Columns by the Transfer-Matrix Method”, International Journal of Civil Engineering & Technology (IJCIET), Volume 3, Issue 1, 2012, pp. 111 - 127, ISSN Print: 0976 – 6308, ISSN Online: 0976 – 6316. B.C.Punmia, Ashok K Jain and Arun K Jain, “Reinforced concrete structures- Vol.II”, Laxmi Publication (P) Ltd. New Delhi-110002. Mohammed S. Al-Ansari, “Flexural Safety Cost of Optimized Reinforced Concrete Beams”, International Journal of Civil Engineering & Technology (IJCIET), Volume 4, Issue 2, 2013, pp. 15 - 35, ISSN Print: 0976 – 6308, ISSN Online: 0976 – 6316. A Model code for concrete chimneys, Part-A-The shell (1984)-CICIND, 136 North street, Brighton, England. Shravya Donkonda and Dr.Devdas Menon, “Optimal design of reinforced concrete retaining walls”, The Indian Concrete Journal, Vol.86, No.04, pp. 9-18. A Flaga and T Lipecki (2010), “Code approaches to vortex shedding and own model”, Engineering Structures. 32, pp.1530-1536. A Kareem and J Hseih (1986), “Reliability analysis of concrete chimneys under wind loading”, Journal of Wind Engineering and Industrial Aerodynamics. 25, pp. 93-112. A Hlaga (1983), “A analysis of along-across and torsional wind effect on slender engineering structures in stochastic formulation”, Wydawnictwa politechniki, Monografia No 22, Krakow (in Polish). A. Castelani (1983), “Construzioni in zona sismica.Milano”, Masson Italia Editori. CICIND, “Model code for steel chimneys (Revision 1-December 1999)”, Amendment A, March 2002. D Menon and PS Rao (1997), “Uncertainties in codal recommendations for across-wind load analysis of R/C chimneys”, Journal of Wind Engineering and Industrial Aerodynamics.72, pp. 455-468.
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