hi,
i've post a question in an another forum :
but will i have more chance to get a response here !?
thanks
i've post a question in an another forum :
but will i have more chance to get a response here !?
thanks
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Reinforcement on a skewed bridge
- Thread starter robyzou
- Start date
Most times often than not bridge engineers will lay the reinforcing normal to the centerline of the bridge and in the acute angle corners will cut the reinforcing to match the angle and use the lopped off bars for the other side.
At least in that method the reinforcing remains the same and the steel can be ordered full length and cut to fit in the fab shop.
THere are other ways of handling this but this is most common.
Regards,
Qshake
![[pipe]](/data/assets/smilies/pipe.gif "[pipe] [pipe]")
Eng-Tips Forums:Real Solutions for Real Problems Really Quick.
At least in that method the reinforcing remains the same and the steel can be ordered full length and cut to fit in the fab shop.
THere are other ways of handling this but this is most common.
Regards,
Qshake
Eng-Tips Forums:Real Solutions for Real Problems Really Quick.
SlideRuleEra
Structural
Perhaps this chapter on "Curved & Skewed Bridges" from the Portland Cement Association Bridge Design Manual will help
![[idea]](/data/assets/smilies/idea.gif "[idea] [idea]")
- Thread starter
- #4
The following formulas are valid with the assumption, that the cracked tension section of the slab could be treated as shield.
? = angle in between principal moments (M1) and direction of reinforcement
? = angle in between directions of reinforcement ? and ?
Mu = M1 sin^2(?- ?) + M2 cos^2(?- ?)
M? = M1 sin^2 (?) + M2 cos^2(?)
M’’ = M1 sin ? sin(?- ?) - M2 cos ? cos(?- ?)
Substitute moments (to size the reinforcement)
Mu ‘= 1/ sin^2(?) (Mu +k? M’’?)
M? ‘= 1/ sin^2(?) (M? +1/k? M’’?)
When ? =90°
then
Mu = M1 cos^2(?) + M2 sin^2(?)
M? = M1 sin^2(?) + M2 cos^2(?)
M’’ = (M1 - M2) sin?cos?
Mu ‘= Mu +k? M’’?
M? ‘= M? +1/k? M’’?
The factor k should be approximately 1.
? = angle in between principal moments (M1) and direction of reinforcement
? = angle in between directions of reinforcement ? and ?
Mu = M1 sin^2(?- ?) + M2 cos^2(?- ?)
M? = M1 sin^2 (?) + M2 cos^2(?)
M’’ = M1 sin ? sin(?- ?) - M2 cos ? cos(?- ?)
Substitute moments (to size the reinforcement)
Mu ‘= 1/ sin^2(?) (Mu +k? M’’?)
M? ‘= 1/ sin^2(?) (M? +1/k? M’’?)
When ? =90°
then
Mu = M1 cos^2(?) + M2 sin^2(?)
M? = M1 sin^2(?) + M2 cos^2(?)
M’’ = (M1 - M2) sin?cos?
Mu ‘= Mu +k? M’’?
M? ‘= M? +1/k? M’’?
The factor k should be approximately 1.
The following formulas are valid with the assumption, that the cracked tension section of the slab could be treated as shield.
? = angle in between principal moments (M1) and direction of reinforcement
? = angle in between directions of reinforcement ? and ?
Mu = M1 sin2(?- ?) + M2 cos2(?- ?)
M? = M1 sin2 ? + M2 cos2?
M’’ = M1 sin ? sin(?- ?) - M2 cos ? cos(?- ?)
Substitute moments (to size the reinforcement)
Mu ‘= 1/ sin2? (Mu +k? M’’?)
M? ‘= 1/ sin2? (M? +1/k? M’’?)
When ? =90°
then
Mu = M1 cos2 ? + M2 sin2 ?
M? = M1 sin2 ? + M2 cos2?
M’’ = (M1 - M2) sin? cos?
Mu ‘= Mu +k? M’’?
M? ‘= M? +1/k? M’’?
The factor k should be approximately = 1
Looks better w/ TGML
? = angle in between principal moments (M1) and direction of reinforcement
? = angle in between directions of reinforcement ? and ?
Mu = M1 sin2(?- ?) + M2 cos2(?- ?)
M? = M1 sin2 ? + M2 cos2?
M’’ = M1 sin ? sin(?- ?) - M2 cos ? cos(?- ?)
Substitute moments (to size the reinforcement)
Mu ‘= 1/ sin2? (Mu +k? M’’?)
M? ‘= 1/ sin2? (M? +1/k? M’’?)
When ? =90°
then
Mu = M1 cos2 ? + M2 sin2 ?
M? = M1 sin2 ? + M2 cos2?
M’’ = (M1 - M2) sin? cos?
Mu ‘= Mu +k? M’’?
M? ‘= M? +1/k? M’’?
The factor k should be approximately = 1
Looks better w/ TGML
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