首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到16条相似文献,搜索用时 441 毫秒
1.
为了研究在不同爆炸焊接工艺条件下获得的复合板的轧制效果,本文对大波、小波、微波状3种界面的1Cr18Ni9Ti/20G复合板进行轧制实验研究.实验表明:只有用下限获得的微小波状界面的爆炸焊接复合板,才能实现成功轧制,而大波状复合板界面存在一定的缝隙、空洞等微观缺陷,在轧制时由于分层会使轧制失效.爆炸焊接 轧制工艺获得的复合板结合界面的组织、强度和性能的测试结果表明:轧制复合板结合界面的剪切和分离强度虽比爆炸态略低,但延伸率、冲击韧性都大大增强,轧制复合板的耐蚀性能也未降低.  相似文献   

2.
文章通过多次试验测试了2#岩石铵梯炸药的不稳定爆轰距离大约在26cm~28cm,并分析了炸药不稳定爆轰对爆炸焊接界面结合质量的影响规律.不稳定爆轰最初0~6cm,炸药的爆轰压力未达到材料的动态屈服极限,不能实现爆炸焊接,在不稳定爆轰6cm~28cm之间,不仅可以成功实现焊接,而且结合界面的结合质量要比稳定爆轰段界面结合质量高,其界面由微波状结合逐渐变为小波状结合.  相似文献   

3.
通过选取最佳的爆炸焊接参数,消除了T10-20G爆炸复合板表面的裂纹,使复合率达到100%,微观测试和宏观力学性能检测表明,从起爆端开始,界面波依次为微波状和小波状,消除了大波状界面中不可避免的微观缺陷,界面的结合强度较高  相似文献   

4.
爆炸焊接界面成波机理初探   总被引:1,自引:0,他引:1  
文章通过研究炸药爆轰特性和爆轰荷载,对爆炸焊接界面波的形成得到了一些新的结果,并由此提出了"波状荷载压嵌的新机理".爆炸焊接用炸药爆轰波反应区的宽度一般在0.1mm~1.0mm之间,与界面波波长的数量级一致.炸药反应区的宽度和界面波的长度都随炸药厚度、爆速的增加而增大.爆轰反应区实际总的压力也呈波状分布.界面波的波幅取决于荷载的大小和基复板材料的比强度,而界面波的波长等于炸药爆轰反应区的宽度.  相似文献   

5.
陈沛  段卫东  唐玉成 《爆破》2018,35(1):123-129
为探究膨化硝铵炸药作用下,厚度均为2 mm的钛(Ti)、钢板的最优爆炸焊接参数以及验证一种新的爆炸焊接试验方案,实验采取阶梯型多层基板的爆炸焊接试验方案,以控制药量和间距为变量,并将Ti板作为复板,同时对多层阶梯型钢基板进行爆炸焊接试验;利用金相显微镜对焊接复合板进行观察,并分析多层基板同时焊接的方案可行性以及不同实验参数对界面波形的影响。试验结果和分析表明:通过观察Ti/钢复合板界面波形呈正弦微波状且无明显过渡层,验证了新方案的可行性,同时突出了阶梯型多层基板的同时爆炸焊接方案,能够在单次试验下对比分析不同基复板间距情况下的焊接效果的能力;并经分析得出在单位面积装药为1.048 g/cm~2及装药间距范围为(9~11)mm时,能得到质量较佳的Ti/钢爆炸复合板。  相似文献   

6.
爆炸焊接布药工艺与微观结合界面形貌分析   总被引:1,自引:0,他引:1  
爆炸焊接是复合材料加工的1项高新技术,不同的爆炸焊接布药工艺对复合板的质量有很大影响。通过对传统的均匀布药工艺和新不等厚度布药工艺进行爆炸焊接试验和理论分析,发现传统的均匀布药工艺所得到的焊接大波状结合界面明显、复合板质量不好,而新不等厚度布药新工艺可以使炸药产生的爆轰压力逐渐减少,并和材料本身振动产生的惯性力协调作用,得到基本一致的微小波状结合界面,同时降低震动和噪声。结论表明新工艺对工业生产和爆炸焊接试验有很好的指导作用。  相似文献   

7.
Ni-Ti形状记忆合金是一种新型的功能材料,采用传统的高温熔融焊接后,常常改变焊接热影响区的形状记忆功能,严重影响了这一功能材料的应用领域。对于冲击韧性值较低的形状记忆舍金,能否实现同种材料的爆炸焊接与异种材料的爆炸复合,并达到其冶金结合,是人们积极探索的一种新方法。采用下限法对形状记忆合金爆炸焊接与复合技术进行了试验研究,并通过增加缓冲板改变常规平行法布药结构,以降低复板运动速度,实现了Ni-Ti合金直接结合的最佳爆炸焊接界面和Ni-Ti合金与0Cr18Ni9及黄铜H62板复合界面的波状结合。  相似文献   

8.
为了保证金属复合材料的爆炸焊接质量,对爆炸焊接过程中的爆轰荷载大小起着决定性作用的炸药量及布药方式进行了探索。应用AUTODYN非线性显式动力学分析软件,模拟了基、复板爆炸焊接复合过程,得到了不同炸药量下爆炸焊接过程中的压力时程,结合理论公式,分析炸药量、爆轰荷载、碰撞速度和界面波状之间的关系,及炸药量对爆炸焊接界面波的影响。并在复板上、下表面等间距各设置了8个关键点,比较了炸药厚度均匀布药方式和厚度递减布药方式产生的波状形态。结果表明,在可焊性窗口内,炸药量多的会产生较大波状结合界面;厚度递减布药方式能够消除均匀布药方式下界面波的不均匀现象,其中方案2的速度波动效果最好。并且已经结合的界面受到后续压力的振动破坏明显降低。  相似文献   

9.
为了保证金属复合材料的爆炸焊接质量,对爆炸焊接过程中的爆轰荷载大小起着决定性作用的炸药量及布药方式进行了探索。应用AUTODYN非线性显式动力学分析软件,模拟了基、复板爆炸焊接复合过程,得到了不同炸药量下爆炸焊接过程中的压力时程,结合理论公式,分析炸药量、爆轰荷载、碰撞速度和界面波状之间的关系,及炸药量对爆炸焊接界面波的影响。并在复板上、下表面等间距各设置了8个关键点,比较了炸药厚度均匀布药方式和厚度递减布药方式产生的波状形态。结果表明,在可焊性窗口内,炸药量多的会产生较大波状结合界面;厚度递减布药方式能够消除均匀布药方式下界面波的不均匀现象,其中方案2的速度波动效果最好。并且已经结合的界面受到后续压力的振动破坏明显降低。  相似文献   

10.
SA266-304爆炸复合板的三种结合界面   总被引:13,自引:3,他引:10  
运用JXA-8800M超大型电子探针对SA266—304爆炸复合板的结合界面进行了全面的分析测试,发现结合界面有大波状、小波状、微波状三类结合形式,其中以微波状为最佳.  相似文献   

11.
The aim of this study was to investigate the strength of explosive welded metals with the same chemical compositions. Different welding interfaces (straight, wavy and continuous solidified-melted) were used with changing explosive welding parameters [stand-off distance (s), explosive loading (R) and anvils]. Joined metals were investigated under heat-treated and untreated conditions. Results on the microstructure, microhardness, tensile shear strength and bending tests are reported. According to the experimental results, the effect of the anvil on the explosive welding process was only the joining or not-joining performance. It was shown that the bonding interface changed from a straight to a wavy structure when the explosive loading and stand-off distance were increased. For wavy interfaces, when the explosive loading was increased the wavy length and amplitude increased. Results of tensile shear and bending tests showed that heat-treated specimens have more strength than untreated samples. According to tensile shear test results, straight and wavy interfaces had similar strength. In addition, in bending tests of untreated specimens it was shown that the bending zone had some cracks.  相似文献   

12.
钛/钢双立式爆炸焊接参数优化   总被引:1,自引:1,他引:0  
为解决大面积钛/钢爆炸焊接窗口窄,在结合区易出现"过熔"和"射流堆积"等微观缺陷的问题,开展了双立爆炸+轧制综合制造技术,进行了低爆速爆炸焊接用炸药试验优化,发明了一种最低临界爆速爆炸焊接用炸药,设计确定了刚性防护板和柔性防护墙构成的双立综合防护结构及参数,研究了钛/钢爆炸焊接装药厚度窗口.结果表明,双立钛/钢复合板结合界面成波状结合,几乎不存在金属熔化、漩涡等微观缺陷.  相似文献   

13.
Explosive welding is a solid state process in which controlled explosive detonations force two or more metals together at high pressures. The resultant arrangement is joined with a high quality metallurgical bond. The aim of this study was to investigate of strength of explosive welding metals which had same chemical compositions. In this study, it was taken different welding interfaces (straight, wavy and continuous solidified-melted) with changing explosive welding parameters (stand-off distance (s), explosive loading (R) and anvils). Joined metals were investigated in heat treatment and non heat treatment conditions. Microstructures, microhardness, tensile shear strength and bending test results were reported. Effect of anvil on explosive welding process was evaluated in joining/no joining performance. It was shown that bonding interface changed from straight to wavy structure when explosive loading and stand-off distance were increased. On wavy interface, when explosive loading was increased wavy length and amplitude increased. Results of tensile shear and bending tests showed that heat treated specimens have more strength than which of unheat-treated ones. According to tensile shear test results, straight and wavy interfaces had similar strength. Also, bending zone has shown some cracks after the bending test of unheated specimens.  相似文献   

14.
《Materials & Design》2005,26(6):497-507
In this study, bonding ability of copper and steel with explosion welding was investigated using different ratios of explosive and different stand-off distance. Experimental studies showed out that, copper and stainless steel could be bonded with a good quality of bonding properties with explosion welding. In the bonding interface, intermetallics were not formed. It was observed that, when explosive ratio and stand-off distance were increased smooth bonding interface was transformed to a wavy bonding interface. As the ratio of explosive and stand-off distance increase, the amplitude and wavelength of wave were increased. It was found that, hardness of bonding interface and outer face of plates were increased because of deformation that was originating from impact the effect. Total interface area increased as a result of wavy interface, which was caused by increased explosive ratio and stand-off distance. In addition, wavy interfaces did not separate after tensile-shearing test. Bending tests applied on bonded samples had different diameters indicated that interfaces of the bonded samples have not any defect. EDS analyses in SEM showed that diffusion did not take place between bonding plates, however, diffusion was observed after annealing of the bonded samples for different times.  相似文献   

15.
Explosive welding was used to produce scarf joint between aluminum and copper plates. This process is known as explosive scarf welding (ESW). In a scarf joint, the final bond interface is oblique. In this study, chamfered end of aluminum and copper plates were joined explosively and named scarf joint, employing changes in chamfered angle at different stand‐off distance and explosive loading. The geometry of scarf joint enables consideration of both flyer and base plate thickness and explosive loading and the effects on mechanical properties of interface such as bond shear strength and micro‐hardness can be investigated. Mathematical models developed on the interface properties of scarf joint to make relationship between the bond shear strength and explosive loading ratio. To check the adequacy of developed models, mechanical properties of interface, such as bond shear strength was predicted and compared with actual values in explosive cladding process. The results show reasonable agreement with theoretical predictions. Consequently, mathematical model which is based on scarf joints, can predict bond shear strength of cladding metals under desired explosive loading and flyer plate thickness.  相似文献   

16.
为研究铜铝异种金属爆炸焊接头界面形成机理,采用爆炸焊对T2纯铜和2024铝合金进行了焊接.通过光学显微镜、扫描电镜、X射线衍射、万能材料试验机和纳米压痕仪,对T2/2024复合板结合界面的显微组织、成分分布和力学性能进行了测试分析.结果表明:T2/2024合金爆炸复合板结合界面呈波状结合,结合界面主要由平直界面、波状界面和局部熔化层界面构成;靠近结合界面处,基体金属发生塑性变形,晶粒细化;反应层主要成分为AlCu和Al_2Cu的混合物.复合板拉剪试验表明,T2/2024合金爆炸复合板平均结合强度为67 MPa,纳米压痕测试反应层平均硬度可达8 GPa.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号