中国有色金属学报
中國有色金屬學報
중국유색금속학보
THE CHINESE JOURNAL OF NONFERROUS METALS
2010年
2期
226-232
,共7页
AA7150铝合金%淬火%力学性能%剥落腐蚀%显微组织
AA7150鋁閤金%淬火%力學性能%剝落腐蝕%顯微組織
AA7150려합금%쉬화%역학성능%박락부식%현미조직
aluminum alloys AA7150%quenching%mechanical properties%exfoliation corrosion%microstructure
采用熔炼铸造与锻造变形方法制备含0.3%Sc的AA7150铝合金.通过拉伸测试、剥落腐蚀测试、金相及透射电镜等技术方法,研究不同淬火工艺对锻造态铝合金性能及显微组织的影响.结果表明:铝合金在空气中自然冷却时,T6时效态合金的抗拉强度与抗剥落腐蚀性能层严重降低;而室温水淬的T6时效态合金比室温油淬的T6时效态合金具有更好的塑性.当预先采用(80 ℃,30 s)水淬火或(80 ℃,30 s)油淬火再15 ℃水淬时,T6时效态合金的抗拉强度明显得到提高,且抗剥落腐蚀性能也得到了改善.预先80 ℃淬火能提高T6时效态合金性能的主要原因是时效态合金晶界析出相的尺寸与离散度明显增大.
採用鎔煉鑄造與鍛造變形方法製備含0.3%Sc的AA7150鋁閤金.通過拉伸測試、剝落腐蝕測試、金相及透射電鏡等技術方法,研究不同淬火工藝對鍛造態鋁閤金性能及顯微組織的影響.結果錶明:鋁閤金在空氣中自然冷卻時,T6時效態閤金的抗拉彊度與抗剝落腐蝕性能層嚴重降低;而室溫水淬的T6時效態閤金比室溫油淬的T6時效態閤金具有更好的塑性.噹預先採用(80 ℃,30 s)水淬火或(80 ℃,30 s)油淬火再15 ℃水淬時,T6時效態閤金的抗拉彊度明顯得到提高,且抗剝落腐蝕性能也得到瞭改善.預先80 ℃淬火能提高T6時效態閤金性能的主要原因是時效態閤金晶界析齣相的呎吋與離散度明顯增大.
채용용련주조여단조변형방법제비함0.3%Sc적AA7150려합금.통과랍신측시、박락부식측시、금상급투사전경등기술방법,연구불동쉬화공예대단조태려합금성능급현미조직적영향.결과표명:려합금재공기중자연냉각시,T6시효태합금적항랍강도여항박락부식성능층엄중강저;이실온수쉬적T6시효태합금비실온유쉬적T6시효태합금구유경호적소성.당예선채용(80 ℃,30 s)수쉬화혹(80 ℃,30 s)유쉬화재15 ℃수쉬시,T6시효태합금적항랍강도명현득도제고,차항박락부식성능야득도료개선.예선80 ℃쉬화능제고T6시효태합금성능적주요원인시시효태합금정계석출상적척촌여리산도명현증대.
The aluminum alloy AA7150 with 0.3%Sc was prepared by melting and casting technique and forging deformation method. The effects of different quenching techniques on the tensile strength, exfoliation corrosion properties and microstructure of the alloy were investigated by using tensile testing, exfoliation corrosion, optical microscope and transmission electron microscopy (TEM). The results show that the air quenching at room temperature decreases the tensile strength and exfoliation corrosion-resistance properties of the alloy after aging at T6 treatment. The elongation of the alloy with water quenching at room temperature is higher than that of the alloy with oil quenching at room temperature. The tensile strength and exfoliation corrosion properties can be improved after (80 ℃, 30 s) water quenching+15 ℃ water quenching or (80 ℃, 30 s) oil quenching+15 ℃ water quenching. Prequenching at 80 ℃ can improve the grain boundary precipitation of the alloys, which is the reason why the properties of the alloy after aging at T6 treatment are improved.