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1.
采用M(M=Sm,Nd,Pr)部分替代La,用合金熔炼及退火的方法制备La0.8–xMxMg0.2Ni3.35Al0.1Si0.05(M=Sm,Nd,Pr;x=0–0.4)电极合金,以提高RE–Mg–Ni系A2B7型贮氢合金的电化学性能。用X射线衍射(XRD)及扫描电子显微镜(SEM)分析合金的相组成和显微结构。结果表明,合金由六方结构Ce2Ni7型的(La,Mg)2Ni7相与六方结构Ca Cu5型的La Ni5相组成。随着M替换量的增加,铸态及退火态合金的放电容量均出现最大值。铸态及退火态合金的循环稳定性均随着M替换量的增加而增加。此外,合金的电化学动力学性能(包括高倍率放电性能、电荷传递速率、极限电流密度、氢扩散系数)均随着M替换量的增加呈现先上升后下降的趋势。  相似文献   

2.
为改善La–Mg–Ni系A2B7型合金的电化学贮氢性能,在合金中添加一定量的Si元素,通过真空熔炼及退火处理的方法制备La0.8Mg0.2Ni3.3Co0.2Six(x=0-0.2)电极合金。研究Si元素的添加对合金结构及电化学贮氢性能的影响。结果表明,铸态及退火态合金均为多相结构,分别为Ce2Ni7型的(La,Mg)2Ni7相和CaCu5型的LaNi5相以及少量的残余相LaNi3。Si元素的添加没有改变合金的主相,但使得合金中的(La,Mg)2Ni7相减少而LaNi5相增加。添加Si显著地影响了合金的电化学性能。随着Si含量的增加,铸态及退火态合金的放电容量逐步降低,但循环稳定性却随着Si含量的增加而增强。此外,合金电极的高倍率放电性能、极限电流密度、氢扩散系数以及电化学交流阻抗谱的测试均表明合金的电化学动力学性能随着Si含量的增加先增加而后减小。  相似文献   

3.
系统研究了Co替代Ni对LaNi3.8型LaNi3.8-xCox(x=0.0,0.2,0.4,0.6)贮氢合金组织结构和电化学性能的影响。研究表明,所有合金都由LaNi5、Ce5Co19和Pr5Co19相组成。随着Co含量的增加,3个相的相丰度发生变化,而且单胞体积也相应的增加,这使得合金的放氢平台压降低到镍氢电池需要的范围(0.01~0.1 MPa)。与LaNi3.8相比,含Co合金的循环性能得到改善。LaNi3.4Co0.4具有最大的放电容量,这一点与固态放氢量一致。LaNi3.6Co0.2倍率放电性能最好,具有最大的交换电流密度(Io)和最小的电荷转移电阻(Rct)。  相似文献   

4.
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   

5.
The La-Mg–Ni–based A2B7-type La0.8-xNdxMg0.2Ni3.15Co0.2Al0.15 (x=0, 0.1, 0.2, 0.3, 0.4) electrode alloys were prepared by casting and annealing. The influences of partial substitution of Nd for La on the structure and electrochemical performance of the as-cast and annealed alloys were investigated. It was found that the experimental alloys consist of two major phases, (La, Mg)2Ni7 phase with the hexagonal Ce2Ni7-type structure and LaNi5 phase with the hexagonal CaCu5-type structure, as well as some residual phase LaNi3 and NdNi5. The discharge capacity and high rate discharge ability (HRD) of the as-cast and annealed alloys first increase and then decrease with Nd content growing. The as-cast and annealed alloys (x=0.3) yield the largest discharge capacities of 380.3 and 384.3 mA·h/g, respectively. The electrochemical cycle stability of the as-cast and annealed alloys markedly grows with Nd content rising. As the Nd content increase from 0 to 0.4. The capacity retaining rate (S100) at the 100th charging and discharging cycle increases from 64.98% to 85.17% for the as-cast alloy, and from 76.60% to 96.84% for the as-annealed alloy.  相似文献   

6.
采用铸造及快淬工艺制备了La—Mg-Ni系(PuNi3型)贮氢合金La0.7Mg0.3Ni2.55-Co0.45Cux(x=0~0.4),分析测试了铸态及快淬态合金的电化学性能与微观结构,研究了Cu替代Ni及快淬工艺对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相和LaNi5相和一定量的LaNi2相。快淬处理对合金的相组成没有影响,但使合会的衍射峰趋于均匀一致。Cu替代Ni使合金的电化学容量下降,但使合金的循环稳定性及放电电压特性得到改善。快淬可提高合金的循环稳定性,但使合金的容量下降。  相似文献   

7.
合金的电化学贮氢动力学性能是其应用于动力电池的重要因素。为了提高RE-Mg-Ni系A2B7型贮氢合金的动力学性能,用M(M=Pr,Zr)部分替代La,并采用快淬处理制备了La0.65M0.1Mg0.25Ni3.2Co0.2Al0.1(M=Pr,Zr)电极合金。研究了元素替代和快淬处理对合金结构及电化学贮氢动力学性能的影响。XRD及TEM结果显示,铸态及快淬态合金均为多相结构,包含(La,Mg)2Ni7和LaNi5主相以及少量的残余相LaNi2。Pr替代快淬态合金为纳米晶结构,而Zr替代快淬态合金为类非晶结构,说明Zr部分替代La促进了非晶的形成。电化学测试表明合金的高倍率放电性能(HRD)随着快淬速度的增加先增大后减小。此外,电化学阻抗谱(EIS),塔菲尔极化曲线以及电势阶跃测试均表明合金的电化学动力学性能随着快淬速度的增加先增大后减小。  相似文献   

8.
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   

9.
The La-Mg-Ni system PuNi3-type La0.5Ce0.2Mg0.3Co0.4Ni2.6-xMnx (x=0, 0.1, 0.2, 0.3, 0.4) hydrogen storage alloys were prepared by casting and rapid quenching. The effects of the rapid quenching on the structure and electrochemical characteristics of the alloys were studied. The results obtained by XRD, SEM and TEM indicate that the as-cast and quenched alloys mainly consist of two major phases, (La,Mg)Ni3 and LaNi5, as well as a residual phase LaNi. The rapid quenching does not exert an obvious influence on the phase composition of the alloys, but it leads to an increase of the LaNi5 phase and a decrease of the (La, Mg)Ni3 phase. The as-quenched alloys have a nano-crystalline structure, and the grain sizes of the alloys are in the range of 20-30 nm. The results by the electrochemical measurements indicate that both the discharge capacity and the high rate discharge(HRD) ability of the alloy first increase and then decrease with the variety of quenching rate and obtain the maximum values at the special quenching rate which is changeable with the variety of Mn content. The rapid quenching significantly improves the cycle stabilities of the alloys, but it slightly impairs the activation capabilities of the alloys.  相似文献   

10.
为了改善铸态La3MgNi14合金的电化学性能,在0.3MPa氩气气氛下对La3MgNi14合金进行了10h退火处理,退火温度分别为1123,1223和1323K。采用x射线衍射(XRD)、扫描电镜(SEM)和电化学实验研究了合金的微观结构和电化学性能。结果表明,铸态及1123K温度退火后的合金由LaNi5相、(La,Mg)2Ni7相以及少量的LaNi2相组成。1223K温度退火后合金含有LaNis,(La,Mg)2Ni7和(La。Mg)Ni3相。1323K温度退火后合金的主相为LaNi5和(La,Mg)Ni3相。与铸态合金相比,退火后合金组织更加均匀,晶粒长大。随着退火温度的增加,合金的一些电化学性能(如最大放电容量、放电效率、循环稳定性)以及动力学参数(如高倍率放电性能)增强,而电位差和电荷迁移电阻降低。在本研究范围内,为了放电容量和循环稳定性之问的平衡,铸态La3MgNi14合金的适宜退火温度为1323K。  相似文献   

11.
用铸造及快淬工艺制备了A2B7型电极合金,合金的名义成分为La0.75-xZrxMg0.25Ni3.2Co0.2Al0.1 (x = 0, 0.05, 0.1, 0.15, 0.2)。深入研究了Zr替代La对合金微观结构及电化学性能的影响。用XRD、SEM、TEM分析了合金的结构。结果表明,铸态及快淬态合金均具有多相结构,含有两个主相(La,Mg)Ni3和LaNi5以及一个残余相LaNi2。Zr替代La使合金中LaNi5相明显增加,并促进快淬态合金中形成非晶相。电化学测试的结果表明,Zr替代La明显降低合金的放电容量,但显著改善合金的电化学循环稳定性。当Zr含量小于0.1时,合金的放电容量随淬速的增加而先增加后减小,合金的循环稳定性随淬速的增加而单调增加。  相似文献   

12.
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   

13.
为了改善La<,3>MgNi<,14>合金的循环寿命,在0.3 MPa氩气气氛及1123、1223、1323 K温度下分别对合金进行了退火处理,处理时间为10 h,同时研究了退火温度对La<,3>MgNi<,14>电极合金的相结构、显微组织及电化学行为的影响.结果表明,退火温度影响合金的相结构,铸态及1123 K温度退火后合金包含LaNi<,5>、(La,Mg)<,2>Ni<,7>主相和少量的LaNi<,2>相,1223 K温度退火有利于合金中(La,MS)Ni<,3>相的形成,1323 K温度退火后合金主相为LaNi<,3>和(La,MS)Ni,相.退火后合金的显微组织比铸态合金更加均匀,晶粒尺寸增大.随着退火温度升高,合金的最大放电容量和循环寿命单调增加,高倍率放电性能、损耗角以及极限电流密度增大,充放电电位差和电荷迁移电阻减小.  相似文献   

14.
采用X射线衍射、电子探针和电化学测试研究了La0.67Mg0.33Ni3.0-xAlx(x=0.0-0.35)合金的相结构和电化学性能。XRD结果和EPMA观察表明:La0.67Mg0.33Ni3.0合金由LaNi3相和La2Ni7相组成。然而La0.67Mg0.33Ni3.0-xAlx(x=0.1,0.2,0.35)合金不含LaNi3相。研究结果表明Al替代Ni改变了La0.67Mg0.33Ni3.0合金的相结构,Al替代Ni不利于La0.67Mg0.33Ni3.0合金中LaNi3相的形成。此外,随Al含量的增加,La0.67Mg0.33Ni3.0-xAlx(x=0.1,0.2,0.35)合金的相结构也发生了变化。WDS分析表明:随La0.67Mg0.33Ni3.0-xAlx合金中X的增加,Al在LaNis相中的含量增加,但Al在LaNi2相的含量很少并且几乎不随X变化。电化学性能测试表明:Al替代Ni提高了La0.67Mg0.33Ni3.0合金电极的循环稳定性。但La0.67Mg0.33Ni3.0-xAlx合金电极的放电容量却随Al含量的增加而明显降低。  相似文献   

15.
研究了退火温度对A287型La1.5Mg0.5Ni7.0合金的相结构和电化学性能的影响。结果表明:铸态合金由LaNi,相、LaMgNi4相、(La,Mg)Ni3相以及Gd2Co7型相组成,退火处理后,合金由Gd2Co7型相、Ce2Ni7型相和PuNi3型(La,Mg)Ni3相组成:随着退火温度升高,PuNi3型相的丰度减小,ce2Ni7型相的丰度增加,(La,Mg)Ni3相的a轴参数、c轴参数和晶胞体积均增大;经1073K保温24h退火后,合金电极具有最高的放电容量(391.2mAh/g),退火温度升高,合金的最大放电容量略有降低:合金电极的循环稳定性随着退火温度的升高不断提高,在1173K时合金电极经150次循环后其电极容量保持率C150/Cmax=82%;合金的高倍率放电性能(HRD)随退火温度升高略有增加,在1173K时,合金电极的HRD最好(HRD900=89.0%);交换电流密度I0、极限电流密度I1及氢扩散系数D随着退火温度的升高而增大。  相似文献   

16.
In order to investigate the influences of the stoichiometric ratio of B/A (A: gross A-site elements, B: gross B-site elements) and the substitution of Co for Ni on the structures and electrochemical performances of the AB3.5-4.1-type electrode alloys, the La-Mg-Ni-Co system La0.75Mg0.25Ni3.5Mx (M=Ni, Co; x= 0, 0.2, 0.4, 0.6) alloys were prepared by induction melting in a helium atmosphere. The structures and electrochemical performances of the alloys were systemically measured. The results show that the structures and electrochemical performances of the alloys are closely relevant to the B/A ratio. All the alloys exhibit a multiphase structure, including two major phases, (La, Mg)2Ni7 and LaNi5, and a residual phase LaNi2, and with rising ratio B/A, the (La,Mg)2Ni7 phase decreases and the LaNi5 phase increases significantly. When ratio B/A=3.7, the alloys obtain the maximum discharge capacities. The high rate discharge(HRD) capability of the alloy (M=Ni) monotonously rises with growing B/A ratio, but that of the alloy (M=Co) first mounts up then declines. The cycle stability of the alloy (M=Co) monotonously increases with rising B/A ratio, but it first decreases slightly then increases for the alloy (M=Ni). The discharge potential of the alloy (M=Ni) declines with increasing B/A ratio (x>0.2), but for the alloy (M=Co), the result is contrary. The substitution of Co for Ni significantly ameliorates the electrochemical performances. For a fixed ratio B/A=3.7, the Co substitution enhances the discharge capacity from 365.7 to 401.8 mA-h/g, the capacity retention ratio (S100) after 100 charging-discharging cycles from 50.32% to 53.26% and the HRD from 88.65% to 90.69%.  相似文献   

17.
采用磁悬浮感应熔炼及退火处理的方法,制备La1.9Ti0.1MgNi9合金。对合金样品的XRD、PCT和电化学测试表明,所有样品均由多相组成,LaNi5相为主相。当退火温度达到1173 K时,合金中LaMg2Ni9相消失,Ti2Ni相出现。退火处理能提高合金的晶化程度、降低吸放氢平台压。退火1073 K合金的有效吸氢量较高,在303 K时达到1.25% (质量分数)。La1.9Ti0.1MgNi9合金退火后,放电容量、循环稳定性以及高倍率放电性能得到极大改善,以1173 K退火合金电化学性能较好,其最大放电容量为377 mAh/g,1100 mA/g电流密度下的高倍率放电性能为0.839,经112次充放电循环后放电容量保持率为60%。  相似文献   

18.
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   

19.
The La-Mg-Ni system A2B7-type electrode alloys with nominal composition La0.75-xZrxMg0.25Ni3.2Co0.2Al0.1(x=0,0.05, 0.1,0.15,0.2)were prepared by casting and melt-spinning.The influences of melt spinning on the electrochemical performances as well as the structures of the alloys were investigated.The results obtained by XRD,SEM and TEM show that the as-cast and spun alloys have a multiphase structure,consisting of two main phases(La,Mg)Ni3 and LaNi5 as well as a residual phase LaNi2.The melt spinning leads to an obvious increase of the LaNi5 phase and a decrease of the(La,Mg)Ni3 phase in the alloys.The results of the electrochemical measurement indicate that the discharge capacity of the alloys(x≤0.1)first increases and then decreases with the increase of spinning rate,whereas for x0.1,the discharge capacity of the alloys monotonously falls.The melt spinning slightly impairs the activation capability of the alloys,but it significantly enhances the cycle stability of the alloys.  相似文献   

20.
用快淬工艺制备了纳米晶和非晶Mg2Ni型Mg2 -xLaxNi (x=0,0.2,0.4,0.6)贮氢电极合金,获得长度连续,厚度约为30μm,宽度约为25 mm的薄带.用XRD、SEM和HRTEM分析了快淬合金薄带的微观结构,测试了合金薄带的电化学性能及电化学交流阻抗谱(EIS).快淬无La合金具有典型的纳米晶结构,...  相似文献   

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