Question Details

A circular shaft having diameter mm is manufactured by turning process. A 50 μm thick coating of TiN is deposited on the shaft. Allowed variation in TiN film thickness is ±5 μm. The minimum hole diameter (in mm) to just provide clearance fit is

Options

A

65.01

B

65.12

C

64.95

D

65.10

Correct Answer :

65.12

Solution :

The correct option is 65.12.

Step-by-Step Explanation:

1. Shaft Diameter before Plating:
From the first image, the limits of the circular shaft diameter are given as:
65 + 0.01 - 0.05 mm
The upper limit (UL) or the maximum diameter of the shaft before plating is:
D max, unplated = 65.00 + 0.01 = 65.01 mm
This is also explicitly indicated in the third image as UL before Plating = 65.01 mm.

2. Maximum Coating Thickness:
The nominal thickness of the TiN coating is 50 μm with an allowed variation of ±5 μm.
The maximum thickness of the coating (tmax) on one side of the shaft (as shown in the third image) is:
t max = 50 + 5 = 55 μm = 0.055 mm

3. Maximum Diameter of the Plated Shaft:
Since the coating is deposited uniformly all around the circular shaft, the total diameter increases by twice the coating thickness (2×tmax):
D max, plated = D max, unplated + 2 × t max
D max, plated = 65.01 + 2 × 0.055 = 65.01 + 0.11 = 65.12 mm

4. Minimum Hole Diameter for Clearance Fit:
A clearance fit requires that the hole diameter is always greater than or equal to the shaft diameter (i.e., the minimum clearance Min. C0, as illustrated in the second image).
To just provide a clearance fit, the minimum hole diameter (Hmin) must equal the maximum possible diameter of the plated shaft:
H min = D max, plated = 65.12 mm

Unlock Our Free Library

Access expert-curated educational resources and study materials—completely free.