STEEL DESIGN (LOOSELEAF)
STEEL DESIGN (LOOSELEAF)
6th Edition
ISBN: 9781337400329
Author: Segui
Publisher: CENGAGE L
Question
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Chapter 4, Problem 4.6.9P
To determine

(a)

A A992 W shape with a nominal depth of 21 inches using LRFD.

Expert Solution
Check Mark

Answer to Problem 4.6.9P

W21×62

Explanation of Solution

Given information:

STEEL DESIGN (LOOSELEAF), Chapter 4, Problem 4.6.9P , additional homework tip  1

D=90

L=260

Calculation:

Pu=1.2D+1.6LPu=1.2×90+1.6×260Pu=524kips

Assume Fcr=25ksi

Ag>PuϕcFcr=5240.90×25Ag>PuϕcFcr=23.29in2

Try the web size W21×93 (non-slender shape)

Ag=27.3in2,ry=1.84in

Effective slenderness ratio is given by

kLry=0.65×(15.33×12)1.84kLry=64.99<200

Fe=π2E(KLr2)Fe=π2×29,00064.992Fe=67.76ksi

Check for slenderness ratio

4.71EFy=4.7129,000504.71EFy=113.4>64.99

Fcr=0.658FyFe×50Fcr=0.6585067.76×50Fcr=36.71ksi

Nominal compressive strength is given by

Pn=FcrAgPn=36.21(27.3)Pn=1002kipsϕcPn=0.90×724.2ϕcPn=652kips>524kips(ok)

Check for web buckling from dimensions and properties table in the manual the width thickness ratio of the web is given by

htw=43.6

From the AISC section we have the equation

bt1.49Ef=1.4929,00036.21bt1.49Ef=42.17

Since htw>1.49Ef,

Local buckling should be checked

Width of the web is given by

b=d-2kb=d-2×1.19b=18.72in

Effective width is given by

be=1.92tEf[10.3443.6Ef]bbe=1.92×0.43029,00036.21[10.3443.629,00036.21]18.72be=18.2118.72

Calculate effective area

Aeff=A-tw(b-be)Aeff=20-0.430(18.72-18.21)Aeff=19.78in2

Critical stress is given by

4.71EQFy=4.7129,000(19.7820)504.71EQFy=114.1>66.43

Calculate the critical buckling stress as below

Fcr=Q(0.658QFyFe×50)Fcr=0.989(0.6580.989×5064.86×50)Fcr=35.94ksi

Calculate nominal compressive strength of column

Pn=FcrAgPn=35.94×20Pn=718.8kips(ok)

Try the web size W21×62,

Ag=18.3in2,ry=1.77in

Effective slenderness ratio is given by

kLr=0.65×(15.33×12)1.77kLr=67.56ksi

Calculate buckling stress

Fe=π2E(KLr2)Fe=π2×29,000(67.56)2Fe=113.4ksi>67.56

Fcr=0.658FyFe×50Fcr=0.6585062.71×42Fcr=35.81ksi

Calculate nominal compressive strength of column

Pn=FcrAgPn=35.81×18.3Pn=655.3kips(ok)

ϕcPn=0.90×655.5ϕcPn=590kips>524kips(ok)

Check for web buckling from dimensions and properties table in the manual the width thickness ratio of the web is given by

htw=46.9

From the AISC section we have the equation

bt1.49Ef=1.4929,00036.21bt1.49Ef=42.4

Since htw>1.49Ef,

Local buckling should be checked

Width of the web is given by

b=d-2kb=21-2×1.12b=18.76in

Effective width is given by

be=1.92tEf[10.3443.6Ef]bbe=1.92×0.40029,00035.81[10.3446.929,00035.81]18.76be=17.3518.76

Calculate effective area

Aeff=A-tw(b-be)Aeff=18.3-0.400(18.76-17.35)Aeff=17.74in2

Critical stress is given by,

4.71EQFy=4.7129,000(17.7418.3)504.71EQFy=115.2>67.56

Calculate the critical buckling stress as below

Fcr=Q(0.658QFyFe×50)Fcr=0.9694(0.6580.9694×5062.71×50)Fcr=35.07ksi

Calculate nominal compressive strength of column

Pn=FcrAgPn=35.07×18.3Pn=641.8kipsϕnPn=0.90×641.8ϕnPn=578kips>524kips(ok)

Try the web size W21×62,

Conclusion:

Therefore, size W21×62 of A992 W shape with a nominal depth of 21 inches used LRFD.

To determine

(b)

Select a A992 W shape with a nominal depth of 21 inches using ASD.

Expert Solution
Check Mark

Answer to Problem 4.6.9P

122.90kips

Explanation of Solution

Given information:

STEEL DESIGN (LOOSELEAF), Chapter 4, Problem 4.6.9P , additional homework tip  2

D=90

L=260

Calculation:

Pa=D+LPa=90+260Pa=350kips

Assume Fcr=25ksi

Ag>PuϕcFcr=5240.90×35Ag>PuϕcFcr=16.63in2

Try the web size W21×62,

Ag=18.3in2,ry=1.77in

Effective slenderness ratio is given by

kLry=0.65×(15.33×12)1.77kLry=67.56<200

Fe=π2E(KLr2)Fe=π2×29,00067.562Fe=67.76ksi

Check for slenderness ratio

4.71EFy=4.7129,000504.71EFy=113.4>67.56

Fcr=0.658FyFe×50Fcr=0.6585062.71×50Fcr=35.81ksi

Pn=FcrAgPn=35.81(18.3)Pn=655.3kipsPnΩc=655.31.67PnΩc=392kips>350kips(ok)

Check for web buckling from dimensions and properties table in the manual the width thickness ratio of the web is given by

htw=46.9

From the AISC section we have the equation

bt1.49Ef=1.4929,00035.81bt1.49Ef=42.4

Since, htw>1.49Ef,

Local buckling should be checked

Width of the web is given by

b=d-2kb=21-2×1.12b=18.76in

Effective width is given by

be=1.92tEf[10.3443.6Ef]bbe=1.92×0.40029,00035.81[10.3446.929,00035.81]18.72be=17.3518.76

Calculate effective area

Aeff=A-tw(b-be)Aeff=18.3-0.400(18.76-17.35)Aeff=17.74in2

Critical stress is given by

4.71EQFy=4.7129,000(17.7418.3)504.71EQFy=115.2>67.56

Calculate the critical buckling stress as below

Fcr=Q(0.658QFyFe×50)Fcr=0.9694(0.6580.9694×5062.71×50)Fcr=35.07ksi

Calculate nominal compressive strength of column

Pn=FcrAgPn=35.07×18.3Pn=641.8kips(ok)PnΩc=641.81.67PnΩc=384kips>350kips(ok)

Conclusion:

Therefore, size W21×62 of A992 W shape with a nominal depth of 21 inches used ASD.

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