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Strength of Materials Flashcards

7 cards from real Agricultural/Bioengineering practice questions. Tap to flip, then mark Knew It or Still Learning — missed cards come back until you master them.

Read the first 7 Strength of Materials flashcards as text
  1. A steel shaft in a feed mixer has a diameter of 40 mm and transmits a torque of 500 N·m. What is the maximum shear stress in the shaft?

    Answer: 39.8 MPa

    τ_max = Tc/J where J = πd⁴/32 = π(0.04)⁴/32 ≈ 2.513×10⁻⁷ m⁴; τ = 500 × 0.02 / 2.513×10⁻⁷ ≈ 39.8 MPa.

  2. Which failure mode is most critical for a long, slender steel column supporting a grain dryer platform?

    Answer: Euler buckling

    Long slender columns fail by Euler buckling (elastic instability) at loads well below the material's yield strength.

  3. If the slenderness ratio (L/r) of a column is increased by doubling its effective length while keeping the cross-section constant, how does the Euler critical buckling load change?

    Answer: It decreases to one-quarter

    Euler's formula P_cr = π²EI/L² shows that doubling L reduces P_cr by a factor of four (1/2² = 1/4).

  4. A rectangular wooden beam used in a greenhouse structure has width b = 100 mm and depth d = 200 mm. What is its moment of inertia about the horizontal (strong) axis?

    Answer: 133.3 × 10⁻⁶ m⁴

    I = bd³/12 = (0.1)(0.2)³/12 = 0.0008/12 ≈ 66.7 × 10⁻⁶ m⁴ — the strong axis (d=200mm) gives I = (0.1)(0.2)³/12 = 6.67×10⁻⁵ m⁴ = 66.7×10⁻⁶ m⁴.

  5. A simply supported steel beam of length 6 m carries a central point load of 12 kN. What is the maximum bending moment at midspan?

    Answer: 18 kN·m

    For a central point load, M_max = PL/4 = 12 × 6 / 4 = 18 kN·m.

  6. Poisson's ratio describes the relationship between which two types of strain in a loaded member?

    Answer: Lateral strain and axial strain

    Poisson's ratio ν = –(lateral strain / axial strain) relates the transverse contraction to the longitudinal extension under uniaxial load.

  7. In a bioengineering application, a bone scaffold made from a porous polymer has an apparent modulus of elasticity much lower than the bulk material. This is primarily because:

    Answer: Porosity reduces the effective cross-sectional area carrying load

    Porosity removes load-bearing material, lowering the effective stiffness and apparent modulus of the scaffold structure.