Elasticity/Warping of circular cylinder

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Choose warping function

${\displaystyle \psi (x_1,x_2)=0}$

Equilibrium (${\displaystyle {\mathrm{\nabla }}^2\psi =0}$) is trivially satisfied.

The traction free BC is

${\displaystyle (0-x_2)\frac{d{x}_2}{ds}-(0+x_1)\frac{d{x}_1}{ds}=0\mathrm{\forall }(x_1,x_2)\in \partial \text{S}}$

Integrating,

${\displaystyle x_2^2+x_1^2=c^2\mathrm{\forall }(x_1,x_2)\in \partial \text{S}}$

where ${\displaystyle c}$ is a constant.

Hence, a circle satisfies traction-free BCs.

• There is no warping of cross sections for circular cylinders

The torsion constant is

${\displaystyle \tilde{J}=\underset{S}{\int }(x_1^2+x_2^2)dA=\underset{S}{\int }{r}^{2}dA=J}$

The twist per unit length is

${\displaystyle \alpha =\frac{T}{\mu J}}$

The non-zero stresses are

${\displaystyle {\sigma }_{13}=-\mu \alpha x_2;{\sigma }_{23}=\mu \alpha x_1}$

The projected shear traction is

${\displaystyle \tau =\mu \alpha \sqrt{(x_1^2+x_2^2)}=\mu \alpha r}$

Compare results from Mechanics of Materials solution

${\displaystyle \varphi =\frac{TL}{GJ}\Rightarrow \alpha =\frac{T}{GJ}}$

and

${\displaystyle \tau =\frac{Tr}{J}\Rightarrow \tau =G\alpha r}$

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