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빌렛 형상 제어를 통한 Mg–5Bi 합금 압출재의 조직 균일도 및 기계적 물성 변화
- 진상철;
- 차재원;
- 박성혁
초록
Extruded Mg–Bi binary alloys are known to have an undesirable bimodal grain structure containing a large amount of coarse unrecrystallized grains. Accordingly, to improve the microstructural homogeneity of extruded Mg–Bi alloys, it is necessary to promote the dynamic recrystallization (DRX) behavior during hot extrusion. An effective way to promote DRX is an increase in nucleation sites for DRX through a pre-deformation process before extrusion, such as cold pre-forging and hot pre-compression. However, the application of these pre-deformation processes increases the cost of final extruded Mg products because of an increase in energy consumption and decrease in productivity. Therefore, a low-cost new continuous process with high productivity is required to improve the microstructural homogeneity and mechanical properties of extruded Mg alloys without a drastic increase in the entire process cost. This study proposes a new extrusion method using an extrusion billet with a truncated cone shape (i.e., tapered billet) instead of a conventional extrusion billet with a cylindrical shape. When the hot extrusion of a Mg–5Bi alloy is conducted using the tapered billet, the DRX behavior during extrusion is considerably promoted. The DRX fraction and average grain size of the extruded alloy significantly increase and decrease from 65% to 91% and from 225 μm to 49 μm, respectively. Consequently, the extruded Mg–5Bi alloy fabricated using the tapered billet has a finer homogeneous grain structure and higher tensile elongation than the extruded counterpart fabricated using the cylindrical billet.
키워드
- 제목
- 빌렛 형상 제어를 통한 Mg–5Bi 합금 압출재의 조직 균일도 및 기계적 물성 변화
- 제목 (타언어)
- Variation in Microstructural Homogeneity and Mechanical Properties of Extruded Mg–5Bi Alloy Via Controlling Billet Shape
- 저자
- 진상철; 차재원; 박성혁
- 발행일
- 2022-12
- 유형
- Y
- 저널명
- 소성가공
- 권
- 31
- 호
- 6
- 페이지
- 344 ~ 350
- 언어
- KOR
- 출판사
- 한국소성∙가공학회
- 발행국가
- 대한민국
- 분량
- 7 페이지
- ISSN
- E 2287-6359
P 1225-696X