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1.
A组分变化对AB2型储氢合金组织结构及电化学性能的影响   总被引:1,自引:0,他引:1  
刘红  李荣德 《铸造技术》2007,28(2):179-183
设计了两种成分AB2型合金,(Zr1-XTiX)(NiVMnCo)2+α,采用XRD、SEM、TEM以及电化学性能测试方法分别对它们的铸态、快淬态及快淬态经过773 K、973 K和1 173 K退火处理的合金进行研究,结果表明,在AB2型储氢合金中加入少量Ti,可以增加电极的放电容量,提高循环寿命。熔体旋转快淬制备的非晶态合金电极的电化学性能差。快淬样品经过退火后,可获得纳米晶结构,能够大幅度提高电极材料的放电容量(370 mAh/g)和循环寿命(300次循环后容量衰减3%)。  相似文献   

2.
La0.7Mg0.3Ni2.55-xCo0.45Alx(x=0~0.4)贮氢合金的循环稳定性   总被引:1,自引:0,他引:1  
为了提高La-Mg-Ni系贮氢合金的循环稳定性,以Al部分替代Ni,采铸造及快淬工艺制备了La0.7Mg0.3Ni2.55-xCo0.45Alx(x=0,0.1,0.2,0.3,0.4)电极合金,研究了Al替代量及快淬工艺对合金微观结构及电化学循环稳定性的影响。X射线衍射分析结果表明:铸态及快淬态合金具有多相结构,包括(La,Mg)Ni3相、LaNi5相和一定量的LaNi2相;Al替代使铸态合金中LaNi2相的量显著增加,但对快淬态合金中LaNi2相的相丰度影响不显著。电化学测试结果表明:随Al替代量的增加,合金的循环寿命大幅度提高;快淬处理可以提高合金的循环寿命,但随Al替代量的增加,淬速对循环寿命的影响减小。  相似文献   

3.
Fe替代Co对AB5型贮氢合金循环稳定性的影响   总被引:2,自引:0,他引:2  
用铸造及快淬的方法制备了稀土基AB5型Mm(NiMnSiAl)4.3Co0.6-xFex(x=0,0.1,0.2,0.3,0.4,0.5,0.6)贮氢合金,用XRD。TEM及SEM观测了铸态及快淬态的微观结构,测试了合金在铸态及快淬态下的电化学循环稳定性。研究了Fe替代Co对铸态及快淬态贮氢合金微观结构及循环稳定性的影响。研究结果表明,Fe替代Co对铸态及快淬态合金的相结构没有明显影响,但对合金的循环稳定性产生显著影响。Fe替代Co能不同程度地改善铸态及快淬态合金的循环稳定性,但对快淬态合金循环寿命的改善更加显著,导致这一结果的主要原因是Fe替代Co使快淬态合金的微观组织显著细化。  相似文献   

4.
为了提高低钴AB5型贮氢合金的电化学循环稳定性,在低钴AB5型贮氢合金中加入微量的硼,用真空快淬工艺制备了稀土系低钴AB5型MmNi3.8Co0.4Mn0.6Al0.2Bx(x=0,0.1,0.2,0.3,0.4)贮氢合金,分析测试了铸态及快淬态合金的电化学性能及微观结构,研究了硼对铸态及快淬态合金微观结构及循环寿命的影响。结果表明,硼能大幅度提高铸态及快淬态低钴AB5型贮氢合金的电化学循环稳定性,但其作用机理是完全不同的。  相似文献   

5.
铸态及快淬态La-Mg-Ni系(PuNi3型)贮氢合金的循环稳定性   总被引:8,自引:0,他引:8  
用铸造及快淬工艺制备了La-Mg-Ni系(PuNi3型)La2Mg(Ni0.85Co0.15)9Bx(x=0~0.2)贮氢合金,分析测试了铸态及快淬态合金的微观结构与循环稳定性,研究了硼及快淬工艺对合金微观结构及电化学循环稳定性的影响.结果表明,铸态合金具有多相结构,包括(La,Mg)Ni3相和LaNi5相,一定量的LaNi2相及微量的Ni2B相,经大于15 m/s淬速快淬处理后Ni2B相消失,并且其它相的相对量随淬速的变化而变化.硼的加入提高了铸态及快淬态合金的循环稳定性,但其作用机理完全不同.合金的循环寿命随淬速的增加而增加,但快淬工艺对La-Mg-Ni系贮氢合金循环寿命的改善非常有限.  相似文献   

6.
用熔体快淬工艺制备了La-Mg-Ni系A2B7型La0.75-xZrxMg0.25Ni3.2Co0.2Al0.1(x=0,0.05,0.1,0.15,0.2)电极合金。用XRD、SEM、TEM分析了铸态及快淬态合金的微观结构,用程控电池测试设备测试了铸态及快淬态合金电极的电化学循环稳定性,研究了快淬工艺对合金结构及电化学循环稳定性的影响,探讨了电极合金的失效机理。结果表明,快淬态合金均具有多相结构,包括两个主相(La,Mg)Ni3及LaNi5和一个残余相LaNi2。快淬处理可以显著改善合金的电化学循环稳定性。导致合金失效的主要原因是电极表面被电解液剧烈腐蚀以及合金电极在电化学循环过程中的粉化。  相似文献   

7.
为了提高La-Mg-Ni系(PuNi3)型贮氢合金的电化学循环稳定性,在La2Mg(Ni0.85Co0.15)9合金中加入微量Cr,用铸造及快淬工艺制备了La2Mg(Ni0.85Co0.15)9Crx(x=0,0.1,0.2)贮氢合金.分析测试了铸态及快淬态合金的电化学性能及微观结构,研究了Cr对铸态及快淬态合金微观结构及电化学性能的影响.结果表明,铸态及快淬态合金具有多相结构,包括(La,Mg)Ni3相(PuNi3结构)),LaNi5相和一定量的LaNi2相.快淬对合金的相组成没有影响,但使合金的相丰度产生变化.Cr的加入提高了铸态及快淬态合金的循环稳定性,但使合金的容量下降.合金的循环寿命随淬速的增加而增加,铸态及快淬态合金均有优良的活化性能.  相似文献   

8.
铸态和快淬态Mm(NiCoMnAl)5合金的电化学性能及相结构   总被引:3,自引:0,他引:3  
本文研究了铸态和快淬态MmNi3.7Co0.6Mn0.4Al0.3贮氢合金的电化学性能和相结构。电化学测试结果表明:快淬态合金的活化性能比铸态合金差,淬速为10m/s和16m/s的快淬态合金的最大放电容量高于铸态合金,放电电压平台更为平坦。淬速为22m/s和28m/s的快淬态合金的最大放电容量低于铸态合金。随着淬速的增加,合金电极的循环稳定性提高。X射线衍射结果表明:铸态和快淬态合金均由CaCu5型主相和一个第二相组成,快淬使得第二相衍射峰减弱。合金成分更为均匀。快淬态合金的晶格参数大于铸态合金。晶格参数的增加是快淬合金具有良好循环稳定性的一个重要原因。  相似文献   

9.
为了改善 La-Mg-Ni 系 A2B7型电极合金的电化学循环稳定性,用 Pr 部分替代合金中的 La,并用熔体快淬工艺制备了La0.75-xPrxMg0.25Ni3.2Co0.2Al0.1(x = 0, 0.1, 0.2, 0.3, 0.4)电极合金。用 XRD、SEM、TEM 分析了铸态及快淬态合金的微观结构。结果表明,铸态及快淬态合金均具有多相结构,包括 2 个主相(La,Mg)Ni3及 LaNi5和 1 个残余相 LaNi2。熔体快淬导致 LaNi5相增加而(La,Mg)Ni3相减少。电化学测试结果表明,熔体快淬显著地提高合金的电化学循环稳定性。当淬速从 0 m/s (铸态被定义为淬速 0 m/s)增加到 20 m/s 时,x=0 合金 100 次充放循环后的容量保持率从 65.32%增加到 73.97%,x=0.4 合金的容量保持率从 79.36%增加到 93.08%。  相似文献   

10.
测试分析了稀土系AB5型贮氢合金MmNi3.8Co0.4Mn0.6Al0.2Bx(x=0, 0.1, 0.2, 0.3, 0.4)的微观结构及电化学性能, 研究了硼含量x对贮氢合金电化学性能及微观结构的影响.结果表明, 铸态贮氢合金具有双相组织, 主相为CaCu5型相, 还有少量CeCo4B第二相, 第二相的相丰度随x的增加而增大.对合金进行了不同淬速的快淬处理, 合金中第二相的量随淬速的增加而减少.硼的加入使合金的电化学容量下降, 但活化性能及循环寿命明显提高.特别是对于快淬态合金, 硼对因促进非晶的形成而显著提高循环寿命.  相似文献   

11.
In order to improve the electrochemical cycle stability of La-Mg-Ni system (PuNi3-type) hydrogen storage alloy, Ni in the alloys was partially substituted by M (M=Cu, Al, Mn). A new La-Mg-Ni system electrode alloys La0.7Mg0.3Ni2.55-xCo0.45Mx (M=Cu, Al, Mn;x =0,0.1) were prepared by casting and rapid quenching. The effects of element substitution and rapid quenching on the microstructures and electrochemical performances of the alloys were investigated. The results by XRD, SEM and TEM show that the alloys havea multiphase structure, including the (La, Mg)Ni3 phase, the LaNi5 phase and the LaNi2 phase. The rapid quenching and element substitution have an imperceptible influence on the phase compositions of the alloys, but both change the phase abundance of the alloys. The rapid quenching significantly improves the composition homogeneity of the alloys and markedly decreases the grain size of the alloys. The Cu substitution promotes the formation of an amorphous phase in the as-quenched alloy, and a reversal result by the Al substitution. The electrochemical measurement indicates that the element substitution decreases the discharge capacity of the alloys, whereas it obviously improves the cycle stability of the alloys. The positive influence of element substitution on the cycle life of the alloys is in sequence Al>Cu>Mn, and negative influence on the discharge capacity is in sequence Al>Mn>Cu. The rapid quenching significantly enhances the cycle stability of the alloys, but it leads to a different extent decrease of thedischarge capacity of the alloys.  相似文献   

12.
为改善低钴贮氢合金的综合电化学性能,对其进行不同速度的快淬处理。结果表明:合适的快淬速度不仅可以大幅度的提高放电容量,而且明显的改善合金的循环稳定性和放电电压特性。18m/s快淬低钴合金具有较好的综合电化学性能。但快淬使得合金的活化性能有所降低。利用X射线衍射、扫描电镜对铸态及快淬合金进行微观分析,讨论了快淬对低钴贮氢合金电化学性能的影响机理。  相似文献   

13.
In order to improve the cycle stability of La-Mg-Ni-Co type alloy electrode, rapid quenching technology was employed. The effects of rapid quenching on the microstructure and cycle stability of the alloy were investigated. The obtained results show that the La2Mg(Ni0.85Co0.15)9M0.1 (M=B, Cr) alloy electrodes are composed of (La, Mg)Ni3 phase, LaNi5 phase and a small amount of the LaNi2 phase. A trace of the Ni2B phase exists in the as-cast MB alloy, and the Ni2B phase in the alloy nearly disappears after rapid quenching. Rapid quenching technology can slightly improve the cycling life of the alloy. When the quenching rate increases from 0 m·s -1 (As-cast is defined as quenching rate of 0 m·s-1 ) to 30 m·s -1 , the cycle lives of the MB, M Cr alloys enhance from 86 and 87 cycles to 106 and 119 cycles, respectively. On the other hand, the average capacity decay rates of the MB, M Cr alloys decrease from 1.7172 and 1.7178 mAh·g-1·cycle-1 to 1.5751 and 1.3060 mAh·g-1·cycle-1 after 86 charge-discharges cycling, respectively.  相似文献   

14.
1 Introduction Ni-MH batteries have been used widely by virtue of several of their advantages, such as high capacity, capable of performing a high rate charge/discharge, high resistance to overcharging and over-discharging, a long cycle life, environment…  相似文献   

15.
AB2型Laves相贮氢合金的研究进展   总被引:3,自引:0,他引:3  
文章主要综述了AB2型Laves相贮氢合金的种类及性能特点以及合金化及制备工艺对合金电化学性能的影响。介绍了AB2型Laves相贮氢合金研究的国内外动态及目前达到的水平,对AB2型Laves相贮氢合金未来的研究重点及发展方向提出了看法。  相似文献   

16.
为改善低钴贮氢合金的综合电化学性能,对其进行不同速度的快淬处理。结果表明,合适的快淬速度不仅可以大幅度的提高放电容量,而且明显的改善合金的循环稳定性和放电电压特性。18 m/s快淬低钴合金具有较好的综合电化学性能,但快淬使合金的活化性能有所降低。利用X射线、扫描电镜对铸态及快淬合金进行微观分析。分析了快淬对低钴贮氢合金电化学性能的影响机理。  相似文献   

17.
In order to improve the electrochemical performances of La-Mg-Ni based electrode alloys with PuNi3-type structure, a trace of boron was added in La0.7Mg0.3Ni2.55Co0.45 alloy. The La0.7Mg0.3Ni2.55Co0.45Bx(a=0, 0.05, 0.1, 0.15 and 0.2) alloys were prepared by casting and rapid quenching. The electrochemical performances and microstructures of the as-cast and quenched alloys were investigated. The effects of rapid quenching on the microstructures and electrochemical performances of the above alloys were investigated. The results show that the as-cast and quenched alloys are composed of (La, Mg)Ni3 phase, LaNi5 phase and LaNi2 phase. A trace of the Ni2B phase exists in the as-cast alloys containing boron, and the Ni2B phase in the B-contained alloys nearly disappears after rapid quenching. Rapid quenching increases the amount of the LaNi2 phase in the B-free alloy, but it decreases the amount of the LaNi2 phase in the boron-containing alloys. The effects of rapid quenching on the capacities of the boron-containing and boron-free alloys are different. The capacity of the B-free alloy monotonously decreases with increasing quenching rate, whereas the capacities of the B-contained alloys have a maximum value with the change of the quenching rate. The rapid quenching can improve the stability of La-Mg-Ni based electrode alloy but lowers the discharge plateau voltage and decreases the plateau length. The effect of rapid quenching on the activation capabilities of the alloys was complicated.  相似文献   

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