Homework Sourse62 To save steelhandling costs an alternative design is prop
Solution
check to determine the redesigned beam is satisfactory for cracking:
crack width is controlled by establishing a minimum spacing.
steps followed to check for cracking in the beams
i)according to aci code 10.6.7 if depth of beam isgreater than 36 in then skin reinforcement has to provide.the skin reinforcement to be provided should be such that it should not be greater than the actual main tension reinforcement.
ii)in second step steel stress is determined:
steel stressfs=Ms/(As*(d-hf/2)) or fs= 0.60fy
where Ms=service load moment
As*(d-hf/2)=area of reinforcement *moment area
iii) S=540/fs-2.5Cc is less than or equal to 12*(36/fs)
here Cc = clear spacing
if S=center to center spacing is with in the limit as specified above then the cracking is with in the control if not then redesign has to done.
In the given problem the data given is
grade of steel in desigened beam is 75 and in redesigned beam is 60 so the stress in steel is 75*0.6=45ksi and 0.6*60=36ksi respectively
now the spacing is calculated for the two design and redesined beams
the center to center spacing is given by S=540/fs-2.5Cc
for desigened beam
S=540/45-(2.5*2.25)=6.375in which is less than 12*36/fs=12*36/45=9.6in hence it is safe
for redesigened beam
S=540/36-(2.5*2.25)=9.375in and it is less than the maximum spacing which is given by 12*36/fs=12*36/36=12in
hence the beam is with in the limits.and the beam is safe against the cracking.
modifications to reduce the number of reinforcing bars
the addition of steel does not prevent cracking due to restrained shrinkage but it limits the width of crack.bycausing the formation of the number of narrow cracks rather than single wide crack.
larger size bars leads to fewer cracks but wider cracks while smaller size bars leads to number of narrow cracks hence it is advisible to provide number of smaller diameter bars of equal strength of designed bars rather than larger dia bars.
