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Journal : STEAM Engineering : Journal of Science, Technology, Education And Mechanical Engineering

ANALISIS KEKUATAN TABUNG GAS LPG KAPASITAS 12 KG BERBAHAN CAST CARBON STEEL MENGGUNAKAN METODE ELEMEN HINGGA Ahmad Saepuddin; Luchyto Chandra Permadi; Priyo Heru Adiwibowo
Steam Engineering Vol. 5 No. 1 (2023): STEAM Engineering, Vol. 5, No. 1, September 2023
Publisher : Program Studi Pendidikan Teknik Mesin, Fakultas Keguruan dan Ilmu Pendidikan, Universitas Palangka Raya

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.37304/jptm.v5i1.10963

Abstract

Liquefied Petroleum Gas (LPG) is gas that is formed from the production of oil refineries and gas refineries. An energy source that is widely used in everyday life, especially in cooking and heating applications. The purpose of this study was to examine the strength performance of a 12 kg LPG gas cylinder in the face of external pressure that occurs during normal use. The method used in writing this scientific article is to review various literature and other references related to the analysis of the strength of LPG gas cylinders using SolidWorks software with the finite element method. The results of the analysis of the strength of the structure and the factor of safety obtained are the force test of 7.826e+03 and the theoretical value of 7.827.18385 does not exceed the yield strength value (2.482 x 105). After analysis, it is known that the smallest gas cylinder safety validation value is 1,1 and a maximum of 22.7, so that the material structure is safe and can be used to manufacture 12 kg LPG gas cylinders.
PERANCANGAN PROTOTIPE SIZING MACHINE GUNA MEMPERMUDAH PEMILAHAN BIJI KOPI Saepuddin, Ahmad; Adiwibowo, Priyo Heru; Drastiawati, Novi Sukma
Steam Engineering Vol. 5 No. 2 (2024): STEAM Engineering, Vol. 5, No. 2, Maret 2024
Publisher : Program Studi Pendidikan Teknik Mesin, Fakultas Keguruan dan Ilmu Pendidikan, Universitas Palangka Raya

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.37304/jptm.v5i2.12837

Abstract

The aim of the research is to design a tool that can assist coffee farmers in determining the quality of the coffee beans produced according to the desired grade value of the coffee beans. The tool is designed to be able to fulfill the functional value produced by the tool. So that farmers can work fast, save time in the process of grading and sorting coffee beans, able to minimize operational costs, and save energy. With an electric motor power of 1 hp, the sizing machine is capable of sorting coffee with a capacity of ±250 kg/hour, therefore a day's the process of sorting 500 kg of coffee can be achieved in less than 2 hours. This really helps coffee farmers in determining the quality of coffee beans without taking a long time.
PERANCANGAN ULANG RANGKA DEPALLETIZER UNTUK MENINGKATKAN KEKAKUAN DAN MENURUNKAN TEGANGAN DI PT X Reno Ade Maulana; Ahmad Saepuddin
Steam Engineering Vol. 7 No. 2 (2026): STEAM Engineering, Vol. 7, No. 2, Maret 2026
Publisher : Program Studi Pendidikan Teknik Mesin, Fakultas Keguruan dan Ilmu Pendidikan, Universitas Palangka Raya

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.37304/jptm.v7i2.24917

Abstract

The depalletizer frame structure plays a crucial role in maintaining system motion stability during material handling processes in production lines. The existing frame design utilizes angle steel (open section), which has lower moment of inertia and torsional stiffness compared to closed sections, making it prone to larger deformation under operational loading. This study aims to redesign the depalletizer frame structure by replacing the angle section with a hollow (closed section) profile made of ASTM A36 steel and to evaluate its structural performance using Finite Element Analysis (FEA). The main contribution of this study is the quantitative demonstration that the use of hollow sections significantly improves the structural stiffness of the depalletizer frame. The results show a reduction in maximum displacement of 79.97%, from 2.86 mm to 0.573 mm under the most critical loading condition, and a reduction in von Mises stress of 29.13%, from 162 MPa to 114.817 MPa. In addition, the safety factor increases from 1.54 to a minimum of 2.18. Fatigue analysis indicates that the redesigned structure achieves a total life of 1,000,000 cycles, representing a significant improvement of 26.6% compared to the existing design, which has a minimum total life of 790,075.8 cycles. For all loading variations, the displacement values remain below the critical limit of 1.0 mm and the minimum safety factor exceeds 1.5, indicating that the redesigned structure satisfies the required stiffness and operational safety criteria. These findings demonstrate that the use of hollow sections provides design advantages in terms of increased structural stiffness, simplified frame configuration, reduced number of welded joints, and improved reliability and stability of depalletizer systems.