中国有色金属学报
中國有色金屬學報
중국유색금속학보
THE CHINESE JOURNAL OF NONFERROUS METALS
2015年
6期
1435-1440
,共6页
张丽霞%孟德强%亓钧雷%郑文龙%冯吉才
張麗霞%孟德彊%亓鈞雷%鄭文龍%馮吉纔
장려하%맹덕강%기균뢰%정문룡%풍길재
4J34可伐合金%5005铝合金%真空钎焊%界面组织%抗剪强度
4J34可伐閤金%5005鋁閤金%真空釬銲%界麵組織%抗剪彊度
4J34가벌합금%5005려합금%진공천한%계면조직%항전강도
4J34 Kovar alloy%5005 aluminum alloy%vacuum brazing%interface structure%shear strength
利用Al-Si-Mg钎料实现5005铝合金与4J34可伐合金的真空钎焊,研究了接头界面结构及其形成机理,分析了钎焊温度及保温时间对接头界面结构和抗剪强度的影响。结果表明:随着钎焊温度的升高和保温时间的延长,接头的抗剪强度先升高后降低;当钎焊温度为580℃、保温时间为15 min时,接头抗剪强度达到最大值81 MPa,此时,接头的典型界面结构为4J34可伐合金/FeAl/FeAl 3/Fe m Al n+α(Al)/5005铝合金。接头的断裂形式主要受钎焊温度的影响;当钎焊温度较低时,接头断裂于铝合金侧氧化膜层及铝合金内;当温度升高至580℃时,接头断裂于Fe m Al n+α(Al)反应层中。
利用Al-Si-Mg釬料實現5005鋁閤金與4J34可伐閤金的真空釬銲,研究瞭接頭界麵結構及其形成機理,分析瞭釬銲溫度及保溫時間對接頭界麵結構和抗剪彊度的影響。結果錶明:隨著釬銲溫度的升高和保溫時間的延長,接頭的抗剪彊度先升高後降低;噹釬銲溫度為580℃、保溫時間為15 min時,接頭抗剪彊度達到最大值81 MPa,此時,接頭的典型界麵結構為4J34可伐閤金/FeAl/FeAl 3/Fe m Al n+α(Al)/5005鋁閤金。接頭的斷裂形式主要受釬銲溫度的影響;噹釬銲溫度較低時,接頭斷裂于鋁閤金側氧化膜層及鋁閤金內;噹溫度升高至580℃時,接頭斷裂于Fe m Al n+α(Al)反應層中。
이용Al-Si-Mg천료실현5005려합금여4J34가벌합금적진공천한,연구료접두계면결구급기형성궤리,분석료천한온도급보온시간대접두계면결구화항전강도적영향。결과표명:수착천한온도적승고화보온시간적연장,접두적항전강도선승고후강저;당천한온도위580℃、보온시간위15 min시,접두항전강도체도최대치81 MPa,차시,접두적전형계면결구위4J34가벌합금/FeAl/FeAl 3/Fe m Al n+α(Al)/5005려합금。접두적단렬형식주요수천한온도적영향;당천한온도교저시,접두단렬우려합금측양화막층급려합금내;당온도승고지580℃시,접두단렬우Fe m Al n+α(Al)반응층중。
Vacuum brazing of 5005 aluminum alloy and 4J34 Kovar was carried out with Al-Si-Mg filler foil as braze alloy. Various brazing heating cycles were carried out to study the effects of brazing parameters on the joint interface and mechanical properties. The results show that the shear strength of the joints increases firstly, and then decreases with increasing brazing temperature and holding time. According to the mechanical property tests, the joints brazed at 580℃for 15 min obtain the maximum shear strength of 81 MPa, and the typical interface structure of the joints is 4J34 Kovar/FeAl/FeAl 3/Fe m Al n+α(Al)/5005 aluminum alloy from 4J34 Kovar to 5005 aluminum alloy side. The fracture form of the joints is mainly affected by brazing temperature. When the brazing temperature is low, the joints fracture on the oxide layer and aluminum alloy. When the temperature is high, the joints fracture on Fe m Al n+α(Al) layer.