Beam Design

52
Beam Design

description

beam design

Transcript of Beam Design

Page 1: Beam Design

Beam Design

Page 2: Beam Design

RC BEAM DESIGNBased on BS 8110

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Partial Safety Factor γm

Cl. 2.4.4.1

Given in Table 2.2

m

strength sticCharacteri strength Design

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Durability

Cl. 2.2.4 and 3.1.5Exposure conditions (Integrity of rc concrete

– ability to prevent corrosion) : moderate, severe, very severe, most severe and abrasive (Table 3.2)

Protection a agaist corrosion of steel (Table 3.3)

Fire resistance requirement (Table 3.4)

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Nominal cover

Cl. 3.3.1.1Bar Size (Cl. 3.3.1.2)

Single Bars: nominal cover ≥ main bar diameter, d1

Paired bars: nominal cover ≥ √2 d1 Bundles bars: 2 √(Aequivalent/π)

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Example:Using the data given, determine:

(i) the nominal cover required to the underside of the beam, and

(ii) the minimum width of beam required.

Data:Exposure condition mildCharacteristic strength of concrete (fcu) 40 N/mm2Nominal maximum aggregate size (hagg) 20 mmDiameter of main tension steel 25 mmDiameter of shear links 8 mmMinimum required fire resistance 1.5 hours

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SOLUTION Clause 3.3.1.2 Nominal cover ≥ (main bar diameter − link

diameter) ≥ (25 − 8) = 17 mm Clause 3.3.1.3 Nominal cover ≥ nominal maximum

aggregate size > 20 mm Clause 3.3.3 Exposure condition is mild Grade of concrete is C40 Table 3.3 Nominal cover ≥ 20 mm* Clause 3.3.6 Minimum fire resistance = 1.5 hr The beam is simply supported Table 3.4 Nominal cover ≥ 20 mm

The required nominal cover = 20 mm

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Flexural Strength of Sections

The flexural strength (i.e. the ultimate moment of resistance of a cross-section) is determined assuming the following conditions as given in Clause 3.4.4.1, BS8110:Part 1

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Concrete Capacity

The maximum compressive force which can be resisted by the concrete corresponds to the maximum depth permitted for the neutral axis, as shown in Figure 5.28 (i.e. x = d/2).

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Concrete Capacity

Consider the moment of the compressive force about the line of action of Ft :

Mult,concrete = (Fc × z)where Fc = compressive force = (stress × area)

= [0.45fcu × (b × 0.9x )] (for the maximum concrete force x = d/2)

= [0.45fcu × (b × 0.45d)] = 0.2bdfcu z = lever arm = [d − (0.5 × 0.45d)] = 0.775d{Note: In general z = [d − (0.5 × 0.9x)] }Mult,concrete = (0.2bdfcu )×(0.775d) =0.156bd2fcu This equation can be rewritten as 0.156 =M/bd2fcu

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Steel Capacity

Mult,steel = (Fs × z) where Fs = tensile force = (stress × area) = (0.95fy × As) z = lever arm Mult,steel = 0.95fyAs z As = M/0.95fyz Consider z, the lever arm: z = [d − (0.5 × 0.9x)] , 0.9x = 2(d − z) Mult,concrete = [0.45fcu × (b × 0.9x)] × z (substitute for

0.9x) = 0.9fcu b (d − z) z

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Steel Capacity

Mult,concrete = K bd 2 fcu

K bd 2 fcu = 0.9fcu b (d − z) z

Kd 2 = 0.9fcu dz − 0.9z 2

z2 − dz + Kd2/0.9 = 0

The solution of this quadratic equation (ax2 + bx + c = 0) gives an expression which can be used to determine the lever arm, z.

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Summary

*The smaller of these two values being the critical case

When K ≤ K′ for a singly-reinforced section the maximum moment permitted, based on the concrete strength, is equal to 0.156 bd2fcu

When K > K′ a section requires compression reinforcement.

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Area of steel reinforcement, As

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Areas/metre width for various pitches of bars

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Example 1:

A rectangular beam section is shown in Figure 5.29. Using the data given, determine the maximum ultimate moment which can be applied to the section assuming it to be singly reinforced.

Data: Characteristic strength of concrete (fcu)

40 N/mm2 Characteristic strength of steel (fy)

460 N/mm2

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Solution:

Strength based on concrete:Mult = 0.156bd2fcu = (0.156 × 250 × 4202 × 40)/106

= 275.2 kNm Strength based on steel:As = 1260 mm2 z = 0.775 d = 0.775 x 420 = 325.5Mult = 0.95fyAs z = (0.95 × 460 × 1260 × 325.5)/106

= 179.5 kNm The maximum design moment which can be applied is:

Mult = 179.5 kNm

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Example 2: The cross-section of a simply

supported rectangular beam is shown in Figure 5.30. Using the data given, determine the maximum ultimate moment which can be applied to the section assuming it to be singly-reinforced.

Data: Characteristic strength of

concrete (fcu) 30 N/mm2 Characteristic strength of steel

(fy) 460 N/mm2 Nominal maximum aggregate

size (hagg) 20 mm Diameter of main tension steel

32 mm Diameter of shear links 8 mm Exposure condition mild Minimum required fire

resistance 1.0 hour

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Solution:

Clause 3.3.1 Nominal cover to all steelClause 3.3.1.2 ≥ bar sizecover ≥ (32 − 8) = 24 mmClause 3.3.1.3 ≥ Nominal maximum aggregate sizecover ≥ 20 mmClause 3.3.3 Exposure condition: mildTable 3.3 and fcu = 30 N/mm2cover ≥ 25 mmClause 3.3.6 Min. fire resistance: 1 hrbeam is simply supportedTable 3.4 cover ≥ 20 mm The required nominal cover to all steel = 25 mm

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Solution Figure 3.2 Minimum width b for 1 hour fire resistance = 200

mm adequate Effective depth d = (h − cover − link diameter − bar diameter/2) = (475 − 25 − 8 − 16) = 426 mm Strength based on concrete:Mult = 0.156bd2fcu = (0.156 × 250 × 4262 × 30)/106 = 212.3 kNm Strength based on steel:As = 2410 mm2 z = 0.775 dMult = 0.95fyAs z = (0.95 × 460 × 2410 × 0.775 × 426)/106 = 349.9 kNm The maximum design moment which can be applied is: Mult =

212.3 kNm

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Example 3:

The cross-section of a simply supported rectangular beam is shown in Figure 5.31. Using the data given, and assuming the section to be singly-reinforced, determine the area of tension reinforcement required to resist an applied ultimate bending moment of 150 kNm.

Data: Characteristic strength of concrete (fcu) 40 N/mm2 Characteristic strength of steel (fy) 460 N/mm2 Nominal maximum aggregate size (hagg) 20 mm Diameter of main tension steel Assume 25 mm Diameter of shear links 10 mm Exposure condition moderate Minimum required fire resistance 2.0 hours

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Solution:

• Clause 3.3.1 Nominal cover to all steel• Clause 3.3.1.2 ≥ bar sizecover = (25 − 10) = 15 mm• Clause 3.3.1.3 ≥ Nominal maximum• aggregate sizecover = 20 mm• Clause 3.3.3 Exposure condition: moderate• Table 3.3 fcu = 40 N/mm2cover ≥ 30 mm• Clause 3.3.6 Min. fire resistance: 2.0 hr• beam is simply supported• Table 3.4 cover ≥ 40 mmThe required nominal cover to the main steel = 40 mm• Figure 3.2 Minimum width b for 2 hours, fire resistance

= 200 mm adequate

Figure 5.31

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Solution: Effective depth d = (h − cover − link diameter − bar

diameter/2) = (450 − 40 − 10 − 13) = 387 mm Clause 3.4.4.4 Check that the section is singly-reinforced: K = M/bd2fcu = 0.125 < 0.156 Since K < K ′ the section is singly-reinforced

As = M/0.95fyz = [(150 × 106) / (0.95 × 460 × 0.83 × 387)]

= 1068 mm2

Adopt 4/ 20 mm diameter HYS bars providing 1260 mm2.

ddK

dz 95.083.09.0

25.05.0

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The equation in BS 8110 (Cl 3.4.5.2)

Where v = design shear stress V = design shear force due to ultimate loads bv=breadth of the section

d =effective depth

v ≤ 0.8 √(fcu) or ≤ 5 N/mm2

Shear Strength of Sections

db

Vv

v

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Shear Strength of Sections

This is the equation given in Table 3.7 of the code for the cross-sectional area of designed links when the design shear stress v at a cross-section is greater than (vc + 0.4). It is recognised that the truss analogy produces conservative results and the code specifies that: designed links are required when:

(vc + 0.4) < v < 0.8 (fcu)1/2 or 5 N/mm2

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Shear Strength of Sections

It is important to provide minimum areas of steel in concrete to minimize thermal and shrinkage cracking, etc.

Minimum links are specified in the code which provide a shear resistance of 0.4N/mm2 in addition to the design concrete shear stress vc, and consequently designed links are required when v > (vc + 0.4) as indicated.

In Table 3.7: minimum links are required when 0.5vc < v < (vc + 0.4)

The cross-sectional area of the links required is given by:

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Example 3:

A concrete beam is simply supported over a 5.0 m span as shown in Figure 5.48. Using the data given, determine suitable shear reinforcement.

Data: Characteristic strength of concrete (fcu) 40 N/mm2 Characteristic strength of mild steel (fyv) 250 N/mm2 Maximum shear force at the support 40 kN

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Solution:

Solution:Consider the end of the beam at the support

where the shear force is a maximum = 40 kNClause 3.4.5.2

2

2

23

/0.5&8.0

/06.5408.08.0

/89.0225x200

10x40

mmNfv

mmNf

mmNdb

Vv

cu

cu

v

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Solution:

Table 3.7 To determine the required reinforcement, evaluate vc and either adopt minimum links throughout or use designed links.

As = area of 2/16 mm diameter bars = 402 mm2

mmddb

A

v

s 225;893.0225x200

402x100100 From Table 3.8

2

233

2

2

/22.1)4.082.0()4.0(

/82.0)25/40(7.0)25/(7.0

/25 Since

/7.0]}25.0/)75.0893.0(x)66.073.0[(66.0{

mmNv

mmNfv

mmNf

mmNv

c

cuc

cu

c

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Solution:

Since 0.5vc < v < (vc + 0.4), minimum links are required for the whole length of the beam.

The cross-sectional area of the links required is given by

Option 1: Assume 2-legged / 6 mm diameter mild steel links.

Asv = 56.6 mm2

Table 3.7 The spacing required , Clause 3.4.5.5 The maximum spacing of the links ≤ 0.75d = (0.75 x 225) = 169 mm Adopt 6 mm diameter mild steel links @ 150 mm

centres throughout the length of the beam.

mmb

Afs

v

svyvv 169

x2000.4

6.56x250x95.0

4.0

95.0

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Solution:

Option 2:Clause 3.4.5.5The maximum spacing of the links ≤ 0.75d= (0.75 × 225) = 169 mmAssume sv = 150 mm.

*Adopt 6 mm diameter mild steel links (56.6 mm2) @ 150 mm centres throughout the length of the beam as in option 1.

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Example 4:

A concrete beam is simply supported over a 7.0 m span as shown in Figure 5.49. Using the data given, determine suitable shear reinforcement.

Data: Characteristic strength of concrete (fcu) 40 N/mm2

Characteristic strength of mild steel (fyv) 250 N/mm2

Characteristic dead load (gk) 5.0 kN/m Characteristic imposed load (qk) 30.0 kN/m

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Solution:

Ultimate design load = [(1.4 × 5.0) + (1.6 × 30.0)] = 55.0 kN/m

Ultimate design shear force at the support V = (55.0 × 3.5) = 192.5 kN

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Solution:

• Table 3.7 : To determine the required reinforcement evaluate vc and to determine the requirement for either minimum links or designed links.

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Solution: Table 3.7 Since (vc + 0.4) < v < 0.8 √(fcu) < 5 N/mm2 designed links are required The maximum shear force which can be resisted by the

provision of minimum links is given by: V = (vc + 0.4)bvd = (1.06 × 240 × 570)/103 = 145 kN

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Solution:

Provide designed links for the first metre from each end and minimum links elsewhere.

The cross-sectional area of the designed links required is given by

Assuming 8 mm diameter mild steel links, Asv = 101 mm2 and fyv = 250 N/mm2.

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Solution: Clause 3.4.5.5The maximum spacing of the links ≤ 0.75d = (0.75 × 570) = 428 mm Adopt 8 mm diameter mild steel links @ 125 mm centres

for 1.0 m from each end of the beam. The cross-sectional area of the minimum links required is

given by Asv =

Adopt 8 mm diameter mild steel links @ 250 mm centres throughout the central 5.0 m of the beam.

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Deflections (Cl. 3.4.6)

Allowances for these factors to reflect the actual behaviour are made in the BS 8110 in terms of:♦ using a basic ‘span/effective depth’ ratio (span/d)

rather than a ‘span/h ’ ratio (Table 3.9),

♦ applying a modifying factor which is dependent on the steel strength (steel percentage and steel strength are directly related through the factor K = M/bd2) and the steel stress (fs) under service conditions (Table 3.10),

♦ applying a modifying factor which is dependent on the percentage of compression steel provided (Table 3.11).

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Deflections

The basic ratios given in Table 3.9 relate to three support conditions: cantilevers, simply supported beams, continuous beams.

*Note: Continuous beams are considered to be any beam in which at least one end of the beam is continuous, i.e. this includes propped cantilevers at the end of a series of continuous beams.

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Example 5:

A rectangular concrete beam 250 mm wide × 475 mm overall depth is simply supported over a 7.0 m span. Using the data given, check the suitability of the beam with respect to deflection.

Data: Characteristic strength of concrete (fcu) 40 N/mm2 Characteristic strength of main steel (fy) 460 N/mm2 Design ultimate bending moment at mid-span (M)

150.0 kNm Assume the distance to the centre of the main steel

from the tension face is 50 mm

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Solution:

Effective depth d = (475 − 50) = 425 mmCheck that section is singly-reinforced:

Adopt 3/20 mm diameter HYS bars providing 943 mm2

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Solution:

Clause 3.4.6 There is no redistribution of moments β b = 1.0

Table 3.9 The beam is simply supported: L/d = 20Clause 3.4.6.5

M/bd 2 = (K × fcu )

= (0.082 × 40) = 3.32 N/mm2

2/7.2911

x3

2mmN

As

fyAsf

bprovided

requireds

Interpolate from Table 3.10 0.92

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Solution:

L/d x value from Table 3.10 = L/d x 0.92Allowable deflection = 20 x 0.92 = 18.4Actual deflection = L/d = 6000/425 = 14.12

So, the deflection is acceptable.

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Minimum Areas of Steel (Cl. 3.12.5)

Minimum areas of steel are required in structural elements to ensure that any unnecessary cracking due to thermal/shrinkage effects or tension induced by accidental loading can be minimized.

The required minimum steel areas for different situations, i.e. tension or compression reinforcement, rectangular beams/slabs, flanged beams and columns/walls, are given in Table 3.25

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Example 5: Minimum Areas of Steel

Determine the minimum areas of steel required for the cross-sections shown in Figure 5.57; in all cases fy = 460 N/mm2.

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(a) Rectangular beam

The required area of steel is given by:

100As /Ac = 0.13where:

As is the minimum recommended area of reinforcement,

Ac is the total area of concrete.

Ac = (550 × 320) = 176 × 103 mm2

As = (0.13×176×103)/100= 229 mm2

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(b) Flanged beam (see Cl 3.4.1.5)

where: b is the breadth of the section bw is the breadth or

effective breadth of the rib; for a box, T or I section, bw is taken as the average breadth of the concrete below the

flange, h is the overall depth of the cross-section of a reinforced

member.

bw / b = (300 / 1200) = 0.25 < 0.4 the required area of steel is given by:100As /bwh = 0.18bw h = (300 × 600) = 180 × 103 mm2

As = 0.18×180×103/100 = 324 mm2

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Maximum Areas of Steel (Cl. 3.12.6)

The maximum percentages of steel given in the code are based on the physical requirements for placing the concrete and fixing the steel. They are:

In beams (Clause 3.12.6.1): As ≤ 4% Ac As′ ≤ 4% Ac

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Minimum Spacing of Bars (Cl. 3.12.11.1)

Guidance is given in the code for minimum bar spacing to ensure that members can be constructed achieving adequate penetration and compaction of the concrete to enable the reinforcement to perform as designed.

It is important that reinforcing bars are surrounded by concrete for two main reasons: (i) to develop sufficient bond between the concrete

and the bars such that the required forces are transferred between the steel and the concrete, and

(ii) to provide protection to the steel against corrosion, fire, etc.

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Maximum Spacing of Bars (Clause 3.12.11.2)

The requirement to limit the maximum spacing of reinforcement is to minimize surface cracking.

Using Table 3.28.Since very small bars when mixed with larger

bars would invalidate the assumptions on which the Table 3.28 values are based, the code specifies that any bar in a section with a diameter < (0.45 × the largest bar in the section) should be ignored except when considering those in the side faces of deep beams.

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Maximum Spacing of Bars

The minimum size of bar to be used in the side faces is given in Clause 3.12.5.4 as:

bar diameter ≥ where: sb is the bar spacing (e.g. 250 mm)

b is the breadth of the section ≤ 500 mm