scholarly journals Application of the modified Dubinin-Astakhov equation for a better understanding of high-pressure hydrogen adsorption on activated carbons

2020 ◽  
Vol 45 (48) ◽  
pp. 25912-25926 ◽  
Author(s):  
G. Sdanghi ◽  
S. Schaefer ◽  
G. Maranzana ◽  
A. Celzard ◽  
V. Fierro
2021 ◽  
Vol 23 (7) ◽  
pp. 4277-4286
Author(s):  
S. V. Chuvikov ◽  
E. A. Berdonosova ◽  
A. Krautsou ◽  
J. V. Kostina ◽  
V. V. Minin ◽  
...  

Pt-Catalyst plays a key role in hydrogen adsorption by Cu-BTC at high pressures.


ACS Omega ◽  
2019 ◽  
Vol 4 (1) ◽  
pp. 444-448 ◽  
Author(s):  
Maxwell Murialdo ◽  
Nicholas J. Weadock ◽  
Yiqun Liu ◽  
Channing C. Ahn ◽  
Sarah E. Baker ◽  
...  

2012 ◽  
Vol 487 ◽  
pp. 719-723
Author(s):  
Xiao Ming Du

we give the analytic solution of Ono-Kondo equation based on lattice theory to describe the supercritical high-pressure hydrogen adsorption inside cylindric pores of adsorbents, and predict adsorption isotherms for hydrogen on A and X type zeolite at 77K. It is shown that the model reflects the peculiar features in adsorption isotherms of supercritical hydrogen in particular, a maximum in the adsorption with increasing pressure) .The results from prediction are compared with the experimental data. It shows that the model can elucidate the peculiar features in adsorption isotherms of supercritical hydrogen which are fundamentally different from those of standard (IUPAC) classification, and the results from the equation also qualitatively reflect the experimental results.


2011 ◽  
Vol 391-392 ◽  
pp. 732-736
Author(s):  
Xiao Ming Du

We give the analytic solution of Ono-Kondo equation based on lattice theory to describe the supercritical high-pressure hydrogen adsorption inside slit pores of adsorbents, and predict adsorption isotherms for hydrogen on microporous ZSM-5 zeolite at 77K,195K and 293K. The results from prediction are compared with the experimental data. It shows that the model can elucidate the peculiar features in adsorption isotherms of supercritical hydrogen which are fundamentally different from those of standard (IUPAC) classification, and the results from the equation also qualitatively reflect the experimental results.


2012 ◽  
Vol 37 (11) ◽  
pp. 9123-9136 ◽  
Author(s):  
Ali Qajar ◽  
Maryam Peer ◽  
Ramakrishnan Rajagopalan ◽  
Henry C. Foley

2019 ◽  
Vol 40 (7) ◽  
pp. 1092-1095 ◽  
Author(s):  
Seungyeol Oh ◽  
Jeonghwan Song ◽  
In Kyeong Yoo ◽  
Hyunsang Hwang

Author(s):  
Hideki Nakagawa

Practical application of fuel cell vehicle has started in the world, and high-pressure hydrogen tanks are currently considered to be the mainstream hydrogen storage system for commercially implemented fuel cell vehicle. Application of metallic materials to the components of high-pressure hydrogen storage system: hydrogen tanks, valves, measuring instructions and so on, have been discussed. In this work, tensile properties of four types of stainless steels were evaluated in 45MPa (6527psig) and 75MPa (10878psig) high-pressure gaseous hydrogen at a slow strain rate of 3×10−6 s−1 at ambient temperature. Type 316L (UNS S31603) stainless steel hardly showed ductility loss in gaseous hydrogen, since it had stable austenitic structure. On the other hand, Type 304 (UNS S30400) metastable austenitic stainless steel showed remarkable ductility loss in gaseous hydrogen, which was caused by the hydrogen embrittlement of strain induced martensitic phase. Likewise, Type 205 (UNS S20500) nitrogen-strengthened austenitic stainless steel showed remarkable ductility loss in gaseous hydrogen, though it had stable austenitic structure in the same manner as Type 316L. The ductility loss of Type 205 was due to the hydrogen embrittlement of austenitic phase resulting from the formation of planar dislocation array. Furthermore, Type 329J4L (UNS S31260) duplex stainless steel showed extreme ductility loss in gaseous hydrogen, which was caused by the hydrogen embrittlement of ferritic phase.


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