22-Mec-B1 Advanced Machine Design · May 2017
Nivaar worked solution (AI-drafted; not reviewed by a licensed engineer)
Paper format. National Exams — 16-Mec-B1 Advanced Machine Design, May 2017. Open-book, 3 hours, 100 marks. Part I (Problems 1–2) is compulsory; only three of the four Part II problems (Problems 3–6) are required. All six problems are solved as a study resource. “State all assumptions clearly… assume any missing data and properly state it” is an explicit exam instruction, invoked in Problem 2.
Reference texts. R.G. Budynas & J.K. Nisbett, Shigley’s Mechanical Engineering Design, 10th ed. (shafts & deflection §7 & §4, fasteners §8, clutches/brakes §16, journal bearings §12, power screws §8-2); R.C. Juvinall & K.M. Marshek, Fundamentals of Machine Component Design (brakes, bearings, screws); R.C. Hibbeler, Mechanics of Materials (beam deflection, impact); R.L. Norton, Machine Design (fatigue, stress concentration).
Question text not reproduced: the examination questions are © Engineers and Geoscientists BC. Open the official past paper (linked at the top of this page) to read the question, then follow the worked solution below.
Given. $T=100$ N·m, $N=750$ rpm, $p_{max}=1.2$ MPa, $\mu=0.25$, uniform-wear model, ratio $d_i/d_o=0.577$, single friction surface.
Find. Outside diameter $d_o$, inside diameter $d_i$, and the transmitted power.
Approach. Under the uniform-wear assumption the pressure peaks at the inner radius, $p\,r=p_{max}r_i$; integrate the friction torque over the annulus, substitute $r_i=0.577\,r_o$, solve for $r_o$, then get the clamp force and power.
| Quantity | Value |
|---|---|
| Outside diameter $d_o$ | 130.2 mm |
| Inside diameter $d_i$ | 75.1 mm |
| Axial clamp force $F$ | 7.79 kN |
| Power transmitted | 7.85 kW |