Multidisciplinary Innovations and Research in Applied Engineering
Vol. 3 No. 1 (2026)

Failure Analysis of a Rear-Sprocket Mounting (Nap Gear) Bolt in a 145 cc Motorcycle

Ambo Ardy Pranowo (Universitas Diponegro)
Andiyanto Andiyanto (Diponegoro University)
Ruben Sanilo (KTH Royal Institute of Technology)
Hammam Abdirrazzaq Ats Tsaqif (Department of Control and Instrumentation Engineering, College of Engineering & Physics, King Fahd University of Petroleum & Minerals, Dhahran, Kingdom of Saudi Arabia)



Article Info

Publish Date
30 Jun 2026

Abstract

Rear-sprocket mounting bolts, referred to in this study as nap gear bolts, transmit torque from the rear sprocket assembly to the wheel hub through the damper/bushing interface and may experience repeated transverse shear and bending loads. This study investigates the fracture of a rear-sprocket mounting (nap gear) bolt from a 145 cc motorcycle to determine its material characteristics, fracture mechanism, and mechanical cause of failure. The investigation combined macro-fractographic observation, spark-emission chemical composition testing, optical metallography, Vickers microhardness testing, and finite element analysis of a three-dimensional bolt model. The measured chemistry was consistent with the SAE 1015 low-carbon steel composition range, with 0.137 wt.% C and a ferrite-pearlite microstructure; however, the grade designation is reported as a chemical-consistency assessment rather than a mill-certified material identification. No abnormal microstructural difference or surface-hardening layer was observed between the failed and intact bolts. The hardness values were 179-190 HV0.5 for the failed bolt and 169-183 HV0.5 for the intact bolt. Fractography identified a proposed crack-initiation region, a crack-propagation region with beachmark-like macroscopic features, and a final-fracture region. Finite element analysis predicted a local maximum stress intensity, defined as the difference between the maximum and minimum principal stresses, of 529.6 MPa at the fracture location; the corresponding maximum shear stress was 264.8 MPa. The failure is therefore attributed to fatigue initiated at a stress-concentrated region, while the available evidence does not indicate that material selection or gross metallurgical abnormality was the primary cause.

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Journal Info

Abbrev

mirae

Publisher

Subject

Computer Science & IT Electrical & Electronics Engineering Engineering Industrial & Manufacturing Engineering Materials Science & Nanotechnology Mechanical Engineering

Description

MIRAE Journal is dedicated to publishing innovative research and reviews in science and technology. We focus on mechanical engineering and product design, industrial and manufacturing engineering, electrical and electronics engineering, computer science and engineering, biomedical engineering, ...