Erwin B Pattikayhatu
Jurusan Teknik Mesin Politeknik Negeri Ambon

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Optimalisasi Kekerasan Baja ST-42 Melalui Karburasi Ramah Lingkungan Berbasis Biokarbonat Cangkang Kepiting dan Modulasi Suhu Tempering Semuel M.J.S Tuny; H. S. Latumaerissa; Erwin B Pattikayhatu; Nevada Nanulaitta; Graciadiana I Huka
Journal Mechanical Engineering Vol. 3 No. 3 (2025): Journal Mechanical Engineering
Publisher : Department of Mechanical Engineering

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.31959/jme.v3i3.3871

Abstract

ST-42 low-carbon steel inherently possesses limitations in its surface mechanical properties, particularly regarding hardness and wear resistance. This study aims to enhance the material's functionality through pack carburizing and tempering heat treatments, utilizing the innovation of crab shell waste which is rich in Calcium Carbonate (CaCO3) as a biogenic catalyst to replace the toxic synthetic Barium Carbonate (BaCO3). The carburizing process utilized a mixture of walnut shell charcoal and 30% crab shell powder, followed by rapid quenching in SAE 20-50 oil, and subsequent tempering at varying temperatures from 200°C to 600°C. Hardness was evaluated using the Rockwell (HRC) method. The results demonstrated that the integration of the crab shell catalyst accelerated the Boudouard reaction via massive CO2 emissions, significantly increasing the surface hardness by 22.80% to an average of 138.34, compared to a mere 10.49% increase achieved without a catalyst. During the tempering phase, heating within the 200°C – 400°C range resulted in a marginal hardness decrease due to the formation of fine carbide particles that maintained wear resistance while relaxing residual stresses. Conversely, extreme heating at temperatures between 500°C – 600°C caused a drastic hardness reduction down to 125.325, driven by the dissolution of the rigid martensite structure into a ductile ferrite phase, accompanied by carbon spheroidization. In conclusion, crab shells are highly effective as an eco-friendly energizer that drastically boosts carbon diffusion, while modulating the tempering temperature provides precise control over the material's hardness-to-ductility balance. Keyword : St-42 low-carbon steel, pack carburizing, crab shell, tempering, Rockwell (HRC) method
PENINGKATAN KETAHANAN AUS PERMUKAAN BAJA KONSTRUKSI ST-42 MELALUI SUBSTITUSI ENERGIZER CANGKANG KEPITING (CACO3) PADA PROSES PACK CARBURIZING DAN PENEMPERAN Roy R. Lekatompessy; Erwin B Pattikayhatu; Nevada J.M Nanulaitta; Graciadiana I Huka
Journal Mechanical Engineering Vol. 4 No. 2 (2026): Journal Mechanical Engineering
Publisher : Department of Mechanical Engineering

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.31959/jme.v4i2.4103

Abstract

Low-carbon steel ST-42 is a material widely applied in general mechanical construction, yet it exhibits technical limitations regarding its surface hardness. This study aims to investigate the effect of varying tempering temperatures (200°C, 300°C, 400°C, 500°C, and 600°C) on the hardness value of St-42 steel following a surface hardening process using the pack carburizing method. As an eco-friendly biomaterial innovation, this research substitutes the use of synthetic Barium Carbonate (BaCO3) with crab shell waste which is rich in Calcium Carbonate (CaCO3) acting as a catalyst (energizer), combined with walnut shell carbon powder. A quantitative laboratory experiment was conducted utilizing 15 plate test specimens, where mechanical properties were measured using the Rockwell method (HRC).  The results demonstrated that crab shells operate highly effectively in accelerating carbon diffusion; the average initial hardness of the steel increased drastically from 112.6 HRC to approximately 138.5 HRC post-carburizing and rapid quenching using SAE 20-50 oil. The tempering stage revealed an inversely proportional empirical correlation between temperature and material hardness. Low-temperature tempering (200°C–300°C) successfully maintained hardness retention at around 135 HRC through epsilon carbide precipitation, whereas high-temperature tempering (500°C–600°C) drastically reduced hardness to 125.325 HRC due to cementite spheroidization and carbide agglomeration. In conclusion, crab shell waste serves as a highly reliable alternative energizer, and tempering temperature parameters can be precisely engineered to achieve an optimal equilibrium between surface wear resistance and material toughness for industrial machinery components. Keywords: ST-42 Steel, Pack Carburizing, Crab Shell, Tempering, Rockwell Hardness.