Problem 2.5. Pressure vessel’s strains

Determine the axial and angular strains in the x-y coordinate system at point A of the pressure vessel given in the previous Problem. The material is isotropic, the properties are: E = 210 GPa, ν = 0.3. Rotate the obtained strains into the principal directions. Check the results.

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Stress, $ε_{x}$ [×10^-5MPa]=

Stress, $ε_{y}$ [×10^-5MPa]=

Stress, $γ_{x y}$ [×10^-5MPa]=

Principal stress, $ε_{1}$ [×10^-5MPa]=

Principal stress, $ε_{2}$ [×10^-5MPa]=

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Steps

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Step 1. Strains are related to the stresses due to the compliance matrix of the material. Determine the compliance matrix of the material.

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Eqs.(2-57) and (2-62).

$S = [\begin{matrix} \frac{1}{E} & - \frac{ν}{E} & 0 \\ - \frac{ν}{E} & \frac{1}{E} & 0 \\ 0 & 0 & \frac{1}{G} \end{matrix}] = [\begin{matrix} \frac{1}{210} & - \frac{0.3}{210} & 0 \\ - \frac{0.3}{210} & \frac{1}{210} & 0 \\ 0 & 0 & \frac{1}{80.77} \end{matrix}] \frac{1}{GPa} where G = \frac{E}{2 (1 + ν)} = \frac{210}{2 (1 + 0.3)} = 80.77 GPa$

Since the material is isotropic material properties and also the compliance matrix is the same in every directions.

Step 2. Give strains in x-y coordinate system from the stresses determined in the previous Problem.

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Eqs.(2-57).

$\{\begin{matrix} ε_{x} \\ ε_{y} \\ γ_{x y} \end{matrix}\} = {Sσ}_{x} = [\begin{matrix} \frac{1}{E} & - \frac{ν}{E} & 0 \\ - \frac{ν}{E} & \frac{1}{E} & 0 \\ 0 & 0 & \frac{1}{G} \end{matrix}] \{\begin{matrix} σ_{x} \\ σ_{y} \\ τ_{x y} \end{matrix}\} = [\begin{matrix} \frac{1}{210} & - \frac{0.3}{210} & 0 \\ - \frac{0.3}{210} & \frac{1}{210} & 0 \\ 0 & 0 & \frac{1}{80.77} \end{matrix}] \{\begin{matrix} 15.87 \\ 14.13 \\ - 4.92 \end{matrix}\} \times 10^{- 3} \{\begin{matrix} ε_{x} \\ ε_{y} \\ γ_{x y} \end{matrix}\} = \{\begin{matrix} 5.537 \\ 4.463 \\ - 6.096 \end{matrix}\} \times 10^{- 5}$

Step 3. Calculate the principal strains and the principal strain’s directions.

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Eq.(2-48).

$ε_{1} = \frac{ε_{x} + ε_{y}}{2} + \sqrt{{(\frac{ε_{x} - ε_{y}}{2})}^{2} + {(\frac{γ_{x y}}{2})}^{2}} = \frac{5.537 - 4.462}{2} + \sqrt{{(\frac{5.537 - 4.462}{2})}^{2} + {(\frac{- 6.069}{2})}^{2}} ε_{2} = \frac{ε_{x} + ε_{y}}{2} - \sqrt{{(\frac{ε_{x} - ε_{y}}{2})}^{2} + {(\frac{γ_{x y}}{2})}^{2}} = \frac{5.537 - 4.462}{2} - \sqrt{{(\frac{5.537 - 4.462}{2})}^{2} + {(\frac{- 6.069}{2})}^{2}} ε_{1} = 8.095 \times 10^{- 5} ε_{2} = 1.905 \times 10^{- 5}$

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Eq.(2-47).

$β_{0} = \frac{1}{2} \tan^{- 1} \frac{ε_{x} - ε_{y}}{γ_{x y}} = \frac{1}{2} \tan^{- 1} \frac{5.537 - 4.462}{- 6.096} \to β_{0} = - 40^{\circ}$

Rotating x-y coordinate system backward by -40^o we arrive at the hoop and axial directions, thus the principal direction of stresses and those of the strains coincide. This statement is true for any isotropic material.

See Footnote l in Section 2.1.4

Step 4. Check the solution by calculating the stresses from the principal strains.

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Stresses are obtained by multiplying the stiffness matrix with the strains.

Eqs.(2-58).

σ = E ε_{12} = \frac{1}{1 - ν^{2}} [\begin{matrix} E & ν E & 0 \\ ν E & E & 0 \\ 0 & 0 & G (1 - ν^{2}) \end{matrix}] \{\begin{matrix} ε_{1} \\ ε_{2} \\ 0 \end{matrix}\} = [\begin{matrix} \frac{210}{1 - 0 . 3^{2}} & \frac{0.3 \times 210}{1 - 0 . 3^{2}} & 0 \\ \frac{0.3 \times 210}{1 - 0 . 3^{2}} & \frac{210}{1 - 0 . 3^{2}} & 0 \\ 0 & 0 & 80.77 \end{matrix}] \{\begin{matrix} 8.095 \\ 1.905 \\ 0 \end{matrix}\} \times 10^{- 2} σ = \{\begin{matrix} 20 \\ 10 \\ 0 \end{matrix}\} MPa = \{\begin{matrix} σ_{1} \\ σ_{2} \\ 0 \end{matrix}\}

The results are equal to the principal stresses which verifies our calculation and meets the expectations.

Results

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Strains are related to the stresses due to the compliance matrix of the material. The compliance matrix of the izotrop material is

Eqs.(2-57) and (2-62).

$S = [\begin{matrix} \frac{1}{E} & - \frac{ν}{E} & 0 \\ - \frac{ν}{E} & \frac{1}{E} & 0 \\ 0 & 0 & \frac{1}{G} \end{matrix}] = [\begin{matrix} \frac{1}{210} & - \frac{0.3}{210} & 0 \\ - \frac{0.3}{210} & \frac{1}{210} & 0 \\ 0 & 0 & \frac{1}{80.77} \end{matrix}] \frac{1}{GPa}, where G = \frac{E}{2 (1 + ν)} = \frac{210}{2 (1 + 0.3)} = 80.77 GPa .$

Since the material is isotropic material properties and also the compliance matrix is the same in every directions.

The strains in x-y coordinate system are

Let us find the principal strains and their directions.

Eqs.(2-48) and (2-47).

$ε_{1} = \frac{ε_{x} + ε_{y}}{2} + \sqrt{{(\frac{ε_{x} - ε_{y}}{2})}^{2} + {(\frac{γ_{x y}}{2})}^{2}} = \frac{5.537 - 4.462}{2} + \sqrt{{(\frac{5.537 - 4.462}{2})}^{2} + {(\frac{- 6.069}{2})}^{2}}, ε_{2} = \frac{ε_{x} + ε_{y}}{2} - \sqrt{{(\frac{ε_{x} - ε_{y}}{2})}^{2} + {(\frac{γ_{x y}}{2})}^{2}} = \frac{5.537 - 4.462}{2} - \sqrt{{(\frac{5.537 - 4.462}{2})}^{2} + {(\frac{- 6.069}{2})}^{2}}, ε_{1} = 8.095 \times 10^{- 5}, ε_{2} = 1.905 \times 10^{- 5},$

$β_{0} = \frac{1}{2} \tan^{- 1} \frac{ε_{x} - ε_{y}}{γ_{x y}} = \frac{1}{2} \tan^{- 1} \frac{5.537 - 4.462}{- 6.096} \to β_{0} = - 40^{\circ} .$

See Footnote l in Section 2.1.4.

We can check the solution by calculating the stresses from the principal strains.

Eq.(2-58).

σ = E ε_{12} = \frac{1}{1 - ν^{2}} [\begin{matrix} E & ν E & 0 \\ ν E & E & 0 \\ 0 & 0 & G (1 - ν^{2}) \end{matrix}] \{\begin{matrix} ε_{1} \\ ε_{2} \\ 0 \end{matrix}\} = [\begin{matrix} \frac{210}{1 - 0 . 3^{2}} & \frac{0.3 \times 210}{1 - 0 . 3^{2}} & 0 \\ \frac{0.3 \times 210}{1 - 0 . 3^{2}} & \frac{210}{1 - 0 . 3^{2}} & 0 \\ 0 & 0 & 80.77 \end{matrix}] \{\begin{matrix} 8.095 \\ 1.905 \\ 0 \end{matrix}\} \times 10^{- 2}, σ = \{\begin{matrix} 20 \\ 10 \\ 0 \end{matrix}\} MPa = \{\begin{matrix} σ_{1} \\ σ_{2} \\ 0 \end{matrix}\} .

The results are equal to the principal stresses which verifies our calculation and meets the expectations.