design of Pressed steel tank pdf

March 30, 2017 | Author: Er Harsh Mahajan | Category: N/A
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Design of Pressed steel tank According to IS 804:1967 Harsh Mahajan

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Step 1: Dimensioning of tank: Æ Dimensioning of tank is done in such a way that it fulfils the capacity criteria. Æ You can use only pressed plate of size 1.25X1.25 m, so length breadth and height should (n X1.25m )where n is no. Of plate. Æ Commonly two cases arises: 1. 2,5,5 plates along HLB respectively 2. 2,6,6 plates along HLB respectively Step2: Thickness of plate: Æ Thickness of plate of tank may be either 5mm or 6mm depending on height of tank and tier (For 2 plate one can say that bottom layer of plate is bottom tier and other will be top tier) Æ From IS 804:1967 clause : 6.3 and table 5, thickness of plates can be taken Step 3: Provision of stay: Æ As it is known that water will exerts the force in outside direction so it may be counteract by providing stay inside the tank.

Æ Æ By above diagram we can see the use of stay. Æ Main design is for stay which joins top tier and bottom tier with bottom plates. Æ Following diagram will gives the detail of plan of these diagonal stays. Look them carefully because step 4 and step5 depends on this.

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L1

L2

L3

L4

L5

L6

L7

6 panel @1.25m = 7.5m

By Harsh Mahajan

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A

B 15.328

C

30.656 #Pressure distribution diagram and reactions#

#Force In stay# Æ Calculation: ∑ Above figure shows pressure distribution diagram; Pressure on each unit of plate for 1.25m width: At 1.25m below top = 9.81X1.25X1.25 = 15.328kN/m2 At 2.50m below top = 9.81X2.50X1.25 = 30.656kN/m2 ∑ Reaction: For top plateP1= area of top pressure distribution diagram = .5X15.328X1.25= 9.58kN Referring to diagram R1X 1.25= 9.58X 1.25/2 R1= 3.19kN R1’= 9.58-3.19 = 6.39kN

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For bottom tier – P2= .5X(30.656+15.328)X 1.25 = 28.74kN Y= =

(

( (

)

(

) .

.

.

.

R2’ X1.25= 28.74X0.556 R2’=12.78kN

)

)

.

= 0.556m

Total reaction at A = 3.19kN At B = R1’+R2’ = 19.17kN At C= 15.96kN ∑

Force in stay: See the diagram— F1cos45 = 3.19 So F1= 4.512Kn F2cos45= 19.17kN F2= 27.11kN



Design of stay— Allowable stress in axial tension= 0.8X0.6X250 = 120N/mm2 (0.8 factor is from IS 804) Area required for long stay = 4.512E3 /120 = 37.6mm2 Area required for short stay= 27.11E3/120= 225.9mm2 Provide 30mm wide X 6mm thick mild steel flats for top stay. 60mm wide X 6mm thick flat

Step 4 : Design of longitudinal beam:Æ Æ Æ Æ Æ Æ

The tank is directly supported on seven longitudinal beam L1L1......L7L7. Refer first arrangement of stay diagram. Weight of water per unit area = 9.81X1X1X2.5= 24.52kN/m2 Weight of bottom plate = 0.006X1X1X78.5= 0.471kN/m2 Vertical force component V1 of F1= F1sin45= 3.19kN Vertical force component V2 of F2= F2sin45= 19.17kN

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∑ Longitudinal beam L4L4: Æ Load on this beam is due to water column and bottom plate of one pair of HALF PLATE means half load from left and other from right as load is uniform that’s why there no problem. Æ Another load is due to stay .Stay in between the span always create tension and at end it create compression. Æ UDL : 24.52X1.25 + 0.471X1.25 + 1(self wt.)= 32.2kN/m =~ 32kN/m Plate weight = wt. Of upper plate= 1.34kN

Udl is due to wt of water and bottom plate At end 1.34kN is force due wt. Of plate of upper and lower tier acting downward. At V2 (down)is due to small stay. In fig see, only two small stay is arranged which have vertical component on beam at 1.25m from end. Æ

Now calculate reaction, moment at support , moment at centre.



Longitudinal beam L3L3 and L5L5:

Again loading Æ Æ Æ Æ

Udl is due to water and bottom plate V1 V2 and wt of plate at end(ref diagram , in diagram end is associated with two stay.) At support vertical component of shorter stay. At middle points two vertical components of longer stay because that point is associated with two long stay Æ Again calculate reaction, moment at support , moment at centre.

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Longitudinal beam L3L3 and L5L5:

Loading: Æ Æ Æ Æ

Udl is due to water and bottom plate V2 and wt of plate at end(ref diagram , in diagram end is associated with one stay.) At support two vertical component of shorter stay. At middle points vertical components of short stay because at all point shorter stay ia attached (See diagram) Æ Again calculate reaction, moment at support , moment at centre. ∑ Longitudinal beam L1L1 and L7L7: Æ At end beam, the loading is slightly changed. Æ Load due to water= 0.5X 9.81X 1.25X2.5X1 = 15.325kN/m (half is because this beam carries on half column of water of end plate) Æ Similarly load of bottom plate= 0.5X0.006X1.25X1X78.5= 0.295kN/m Æ End beam also have to carry whole load of end wall so it also adds in udl Æ = 1.25X1X(0.006+0.005)X78.5= 1.07893kN/m Æ Total udl = 16.68 + self wt= 18kN/m(assume) Æ Point load of wall at end= 1.34/2 = 0.675 Æ

Æ As it is a end beam all vertical component will act downward Æ At support one vertical of short stay Æ At middle (at 2.5m from end) V1 and V2 both Again calculate reaction and moment ∑

Design: Æ Determine from above analysis maximum Moment. Æ These beams are laterally unsupported and take effective length =4X1.25 = 5m Æ For trial section assume σb= 165N/mm2 Æ Calculate Z =(M/σb) Æ Provide any I section Æ Determine its all property from steel table

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Æ From table 6.1B of IS 800:1984 calculate exact value of σb and fine true moment carrying capacity. Æ If is greater than Mmax then Design is safe. Step5- Design of cross beam: Æ Cross beams are provides under longitudinal beams hence it carry’s all the reaction forces due to longitudinal beam.

Æ R1=R7; R2=R6; R3=R5; R4 ... These all are calculated in previous steps. Æ Calculate moment and reaction Æ Design the beam by using same method as discussed in previous step.

Reference: 1. Design of steel structure by BC punmia 2. IS 804 and IS 800:1984 steel table.

Any query contact: Harsh Mahajan +91-9753351408 [email protected]

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