The kinetics of a moving metal hydride layer

被引:29
作者
Bloch, J [1 ]
机构
[1] Nucl Res Ctr Negev, IL-84190 Beer Sheva, Israel
关键词
hydrogen storage materials; interstitial alloys; gas-solid reactions; diffusion; kinetics;
D O I
10.1016/S0925-8388(00)01102-6
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The reaction of gaseous hydrogen with hydride-forming metals and alloys often involves a hydride layer formed on the metallic surface. Under proper steady state conditions, this layer is moving into the bulk metal, retaining constant thickness and velocity. In this work, the kinetics of the moving hydride layer is analyzed, using a model combining the four main sequential steps: adsorption (chemisorption), penetration, diffusion and reaction, in which the hydrogen is transferred from the gas phase into the reaction site. The model yields the rate of absorption during the steady state hydriding process (proportional to the hydride layer velocity) as a function of the pressure, the rate constants of the system (adsorption, desorption, penetration, decomposition, diffusion and interface emission) and the critical concentrations of hydrogen in the hydride, C-max, C-p and C-min (the last is associated with the equilibrium absorption pressure P-eq). According to the model, for sufficiently high pressures, the rate is pressure-independent. A simple expression for the pressure independent rate is derived. The conditions leading to rates limited by one of the four sequential steps are analyzed and demonstrated. Relatively simple expressions are derived for the rate's pressure dependence. It is shown that for the interface and diffusion controlled cases the general pressure dependence is of the form: Rate(-1) proportional to [(P/P-eq)(1/2) - 1](-1). For the adsorption controlled case the pressure dependence is Rate proportional to (P - P-eq). Based on the model, a numerical procedure is proposed for a system, removed from an initial steady state, describing the time-dependent approach to the new steady state determined by the applied change. The model is successfully tested for a real case, the uranium-hydrogen system, which is shown to obey the interface control rate equations. (C) 2000 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:135 / 153
页数:19
相关论文
共 19 条
[1]   Kinetics and mechanisms of metal hydrides formation - A review [J].
Bloch, J ;
Mintz, MH .
JOURNAL OF ALLOYS AND COMPOUNDS, 1997, 253 :529-541
[2]  
BLOCH J, 1994, P INT 123 ANN M MIN, P121
[3]  
COHEN D, 1991, J ALLOY COMPD, V184, P77
[4]   THERMODYNAMICS OF METAL-HYDROGEN SYSTEMS [J].
FLANAGAN, TB ;
OATES, WA .
BERICHTE DER BUNSEN-GESELLSCHAFT FUR PHYSIKALISCHE CHEMIE, 1972, 76 (08) :706-&
[5]   HYSTERESIS IN METAL-HYDRIDES [J].
FLANAGAN, TB ;
CLEWLEY, JD .
JOURNAL OF THE LESS-COMMON METALS, 1982, 83 (01) :127-141
[6]   Proposal for new indexes describing the degree of hysteresis and those applications to the ZrMn2-H2 systems [J].
Kodama, T .
JOURNAL OF ALLOYS AND COMPOUNDS, 1998, 278 (1-2) :194-200
[7]  
MANCHESTER FD, 1995, J PHASE EQUILIB, V16, P264
[8]   Absorption and desorption kinetics of hydrogen storage alloys [J].
Martin, M ;
Gommel, C ;
Borkhart, C ;
Fromm, E .
JOURNAL OF ALLOYS AND COMPOUNDS, 1996, 238 (1-2) :193-201
[9]   EVALUATION OF THE KINETICS AND MECHANISMS OF HYBRIDING REACTIONS [J].
MINTZ, MH ;
BLOCH, J .
PROGRESS IN SOLID STATE CHEMISTRY, 1985, 16 (03) :163-194
[10]   MIXED MECHANISMS CONTROLLING HYDROGEN METAL REACTIONS UNDER STEADY-STATE CONDITIONS - THE DIFFUSION INTERFACE MECHANISM [J].
MINTZ, MH .
JOURNAL OF ALLOYS AND COMPOUNDS, 1991, 176 (01) :77-87