Bundle: Principles Of Geotechnical Engineering, Loose-leaf Version, 9th + Mindtap Engineering, 1 Term (6 Months) Printed Access Card
Bundle: Principles Of Geotechnical Engineering, Loose-leaf Version, 9th + Mindtap Engineering, 1 Term (6 Months) Printed Access Card
9th Edition
ISBN: 9781337583848
Author: Braja M. Das, Khaled Sobhan
Publisher: Cengage Learning
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Question
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Chapter 12, Problem 12.1P

(a)

To determine

Find the angle of friction, ϕ.

(a)

Expert Solution
Check Mark

Answer to Problem 12.1P

The angle of friction, ϕ is 24.9°_.

Explanation of Solution

Given information:

The diameter (d) of specimen is 71 mm.

The height (h) of specimen is 25 mm.

Shear force (Vu) at the failure is 276 N.

The normal stress (σ) on the failure plane is 150kN/m2.

Calculation:

Show the expression of Mohr’s coulomb failure as follows:

τf=c+σtanϕ (1)

Here, c is the cohesion, τf is shear strength of the dry sand, and ϕ is angle of friction.

Find the shear strength (τf) of the dry sand as follows:

τf=SA=Sπd24

Here, S is the shear force and A is area of specimen.

Substitute 276 N for shear force and 71 mm for d.

τf=276π×(71mm×1m1,000mm)24=69.71×103N/m2×1kN103N=69.71kN/m2

Find the angle of friction (ϕ) as follows:

Substitute 69.71kN/m2 for τf, 150kN/m2 for σ, and 0 for c in Equation (1).

The value of c for sand and inorganic silt is 0.

69.71=0+150tan(ϕ)69.71=150tan(ϕ)ϕ=tan1(69.71150)ϕ=24.9°

Thus, the angle of friction, ϕ is 24.9°_.

(b)

To determine

Find the shear force (S) required to cause failure.

(b)

Expert Solution
Check Mark

Answer to Problem 12.1P

The shear force required (S) to cause failure is 367.6N_.

Explanation of Solution

Given information:

The normal stress (σ) is 200kN/m2.

Calculation:

Refer part (a).

Substitute 0 for c, 200kN/m2 for σ, and 24.9° for ϕ in Equation (1).

τf=0+200tan24.9°=92.84kN/m2

Find the shear force is required to cause failure as follows:

S=τf×As=τf×(πd24)

Substitute 92.84kN/m2 for τf and 71 mm for d.

S=92.84×(π×(71mm×1m1000mm)24)=92.84×3.9592×103=0.3676kN×1000N1kN=367.6kN

Thus, the shear force (S) required to cause failure is 367.6N_.

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Students have asked these similar questions
Q # 3. Following data are given for a direct shear test conducted on dry sand: Specimen dimensions: 63 mm x63 mm and 25 mm (height). Normal stress: 105 kN/m?. Shear force at failure: 300 N a. Determine the angle of friction, for a normal stress of 180 kN/m?. b. What shear force is required to cause failure?
Q # 3. Following data are given for a direct shear test conducted on dry sand: Specimen dimensions: 63 mm × 63 mm and 25 mm (height). Normal stress: 105 kN/m². Shear force at failure: 300 N Determine the angle of friction, for a normal stress of 180 kN/m². b. What shear force is required to cause failure? а.
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