Tag Archives: Microstructure

Fig. 1. Shock tower casting scheme.

Effects of die-casting defects on the blister formation in high-pressure die-casting aluminum structural components

This article introduces the paper “Effects of die-casting defects on the blister formation in high-pressure die-casting aluminum structural components”. 1. Overview: 2. Research Background: 3. Research Objectives and Research Questions: 4. Research Methodology 5. Key Research Findings: 6. Conclusion and Discussion: 7. Future Follow-up Research: 8. References: 9. Copyright: *This material is summarized based on

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Figure 18 Comprehensive opportunities for polymers and polymer composites with associated manufacturing processes for lightweighting in vehicles. Abbreviations: BMC, bulk molding compound; HP RTM, high-pressure resin transfer molding; LFT, long-fiber thermoplastic; SMC, sheet molding compound. Adapted from Reference 105.

Materials for Automotive Lightweighting

This article introduces the paper “Materials for Automotive Lightweighting”. 1. Overview: 2. Research Background: 3. Research Objectives and Research Questions: 4. Research Methodology: 5. Main Research Findings: 6. Conclusion and Discussion: 7. Future Follow-up Research: 8. References: 9. Copyright: This material is based on the paper by [Alan Taub et al.] titled: [Materials for Automotive

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Fig 1. Microstructure alloy MCMgAl6Zn1: a) without heat treatment – 0, b) after heat treatment – 2, c) after heat treatment – 3, d) after heat treatment – 4

Heat Treatment Impact on the Structure of Die-Cast Magnesium Alloys

This article introduces the paper “Heat treatment impact on the structure of die-cast magnesium alloys” published in the Journal of Achievements in Materials and Manufacturing Engineering in 2007. 1. Overview: 2. Research Background: 3. Research Purpose and Research Questions: 4. Research Methodology: 5. Major Research Findings: 6. Conclusion and Discussion: 7. Future Follow-up Research: 8.

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Fig. 4. Z-shaped section of the cylinder block

Materials in Automotive Engineering

This article introduces the paper “Materials in Automotive Engineering”. 1. Overview: 2. Research Background: 3. Research Objectives and Research Questions: 4. Research Methodology 5. Key Research Findings: 6. Conclusion and Discussion: 7. Future Follow-up Research: 8. References: 9. Copyright: This material is a summary based on the above paper, and unauthorized use for commercial purposes

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Fig. 1. Life cycle boundary of vehicle Al DCs and detailed processes in the manufacturing stage.

Critical life cycle inventory for aluminum die casting: A lightweight-vehicle manufacturing enabling technology

This article introduces the paper “Critical life cycle inventory for aluminum die casting: A lightweight-vehicle manufacturing enabling technology”. 1. Overview: 2. Research Background: 3. Research Objectives and Research Questions: 4. Research Methodology: 5. Key Research Results: 6. Conclusion and Discussion: 7. Future Follow-up Research: 8. References: 9. Copyright: This material is based on the paper

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Fig. 1: Illustration of engine block with 6 ingates and the vacuum channels.

Correlation Between Microstructure and Mechanical Properties of Al-Si Diecast Engine Blocks

This article introduces the paper “Correlation Between Microstructure and Mechanical Properties of Al-Si Diecast Engine Blocks” 1. Overview: 2. Research Background: 3. Research Objectives and Research Questions: 4. Research Methodology: 5. Key Research Findings: 6. Conclusion and Discussion: 7. Future Research Directions: 8. References: [1] Colás, R., A. Rodríguez, J. Talamantes, and S. Valtierra. Solidification

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Fig. 4 Operations for forging control arm a bending, b flattening, and c forging. (Color figure online)

Magnesium 2021: Proceedings of the 12th International Conference on Magnesium Alloys and their Applications

This article introduces the paper “Magnesium 2021: Proceedings of the 12th International Conference on Magnesium Alloys and their Applications”. 1. Overview: 2. Research Background: 3. Research Objectives and Research Questions: 4. Research Methodology: 5. Main Research Findings: Fig. 1 Schematic diagram of thermic reduction equipment. (Color figure online) 6. Conclusion and Discussion: 7. Future Follow-up

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Fig. 4. Detail of the core balance volume.

About the impact on gravity cast salt cores in high pressure die casting and rheocasting

This article introduces the paper “About the impact on gravity cast salt cores in high pressure die casting and rheocasting”. 1. Overview: 2. Research Background: 3. Research Objectives and Research Questions: 4. Research Methodology: 5. Major Research Findings: 6. Conclusion and Discussion: 7. Future Follow-up Research: 8. References: 9. Copyright and Source Material: This summary

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Figure 20: The deformation of the salt core in a casting experiment; Uin = 30 ms−1

On determining lost core viability in high-pressure die casting using Computational Continuum Mechanics

This article introduces the paper “On determining lost core viability in high-pressure die casting using Computational Continuum Mechanics”. 1. Overview: 2. Research Background: 3. Research Objectives and Research Questions: 4. Research Methodology 5. Main Research Results: 6. Conclusion and Discussion: 7. Future Follow-up Research: 8. References: 9. Copyright: This material is a summary written based

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Fig. 1. Squeeze casting device.

Effect of Applying Pressure of High Pressure Diecasting Process Using Salt core

This article introduces the paper “Effect of Applying Pressure of High Pressure Diecasting Process Using Salt core”. 1. Overview: 2. Research Background: 3. Research Objectives and Research Questions: 4. Research Methodology: 5. Main Research Results: 6. Conclusion and Discussion: 7. Future Follow-up Research: 8. References: 9. Copyright: This material is a summary based on the

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