Analisis Struktur Dan Desain Holder Plate

Authors

  • Fadhilah Urbaningrum Pratama Program Studi Teknik Mesin, Universitas Pancasakti, Indonesia Author
  • Irfan Santosa Program Studi Teknik Mesin, Universitas Pancasakti, Indonesia Author

Keywords:

Holder Plate, SolidWorks, FEM, Stress, Safety Factor

Abstract

The holder plate is an essential component in mechanical systems, serving as a support or base for other components. This study aims to analyze the structural strength of a holder plate designed using SolidWorks software and validated through Finite Element Method (FEM) simulations. The material used is aluminum alloy 5052-H32. The simulation results show that the maximum Von Mises stress of 1.24 × 10⁰ MPa is well below the material yield limit of 1.95 × 10⁸ Pa. The maximum displacement of 4.503 × 10⁻¹⁰ mm indicates negligible deformation. The minimum safety factor (FoS) reaches 1.6 × 10⁸, indicating that the design is very safe under static loads. Thus, the holder plate design is deemed suitable for industrial applications.

Keywords: Holder Plate, SolidWorks, FEM, Stress, Safety Factor

Abstrak

Holder plate merupakan salah satu komponen penting dalam sistem mekanis yang digunakan sebagai penyangga atau dudukan komponen lain. Penelitian ini bertujuan untuk menganalisis kekuatan struktur holder plate yang dirancang menggunakan perangkat lunak SolidWorks dan divalidasi dengan simulasi berbasis Finite Element Method (FEM). Material yang digunakan adalah aluminium alloy 5052-H32. Hasil simulasi menunjukkan bahwa tegangan maksimum Von Mises sebesar 1,24 × 10⁰ MPa masih jauh di bawah batas luluh material sebesar 1,95 × 10⁸ Pa. Displacement maksimum sebesar 4,503 × 10⁻¹⁰ mm menunjukkan deformasi sangat kecil. Faktor keamanan (FoS) minimum mencapai 1,6 × 10⁸, menandakan desain sangat aman terhadap beban statik. Dengan demikian, desain holder plate dinyatakan layak untuk digunakan pada aplikasi industrinya.

Kata kunci: Holder Plate, SolidWorks, FEM, Tegangan, Faktor Keamanan

Downloads

Download data is not yet available.

References

Davis, J. R. (Ed.). (1993). Aluminum and Aluminum Alloys. ASM International. This book is a primary source on aluminum alloys, including the 5000 series like 5052, and details the mechanical properties, corrosion resistance, and industrial applications of these materials.

Degarmo, E. P., Black, J. T., & Kohser, R. A. (2003). Materials and Processes in Manufacturing (9th ed.). Wiley.

Hibbeler, R. C. (2017). Mechanics of Materials (10th ed.). Pearson. This book is one of the main references in material mechanics, thoroughly explaining stress, strain, deformation, and internal force analysis.

Logan, D. L. (2011). A First Course in the Finite Element Method (5th ed.). Cengage Learning. This book covers how displacement is analyzed and calculated in structural engineering using the Finite Element Method (FEM).

Popov, E. P. (1990). Engineering Mechanics of Solids. Prentice Hall. This book discusses the basic concepts of deformation, strain, and their relationship to stress, as well as the elastic properties of materials.

Shigley, J. E., Budynas, R. G., & Nisbett, J. K. (2014). Shigley's Mechanical Engineering Design (10th ed.). McGraw-Hill Education. A primary reference in mechanical engineering design, detailing the concept of the factor of safety, its calculations, and its application in various mechanical components.

Zeid, I. (2010). Mastering CAD/CAM. McGraw-Hill Education. This book provides a comprehensive explanation of the fundamentals and applications of CAD, as well as its integration with CAM (Computer-Aided Manufacturing).

Downloads

Published

2026-01-12