Experimental validation of a pilot membrane reactor for hydrogen production by solar steam reforming of methane at maximum 550 ° C using molten salts as heat transfer fluid

被引:34
作者
Giaconia, Alberto [1 ]
Iaquaniello, Gaetano [2 ]
Caputo, Giampaolo [1 ]
Morico, Barbara [3 ]
Salladini, Annarita [3 ]
Turchetti, Luca [1 ]
Monteleone, Giulia [1 ]
Giannini, Antonella [1 ]
Palo, Emma [2 ]
机构
[1] ENEA Italian Natl Agcy New Technol Energy & Susta, Via Anguillarese 301, I-00123 Rome, Italy
[2] KT Kinet Technol SpA, Viale Castello Magliana 27, I-00148 Rome, Italy
[3] NextChem SpA, Via Vannina 88, I-00156 Rome, Italy
关键词
Hydrogen production; Steam methane reforming; Solar reforming; Membrane reactor; Pd-based membrane; Molten salt; CONVERTING NATURAL-GAS; CATALYSTS;
D O I
10.1016/j.ijhydene.2020.09.070
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
An innovative steam reformer for hydrogen production at temperatures lower than 550 degrees C has been developed in the EU project CoMETHy (Compact Multifuel-Energy To Hydrogen converter). The steam reforming process has been specifically tailored and re-designed to be combined with Concentrating Solar plants using "solar salts": a low-temperature steam reforming reactor was developed, operating at temperatures up to 550 degrees C, much lower than the traditional process (usually 850 degrees C). This result was obtained after extensive research, going from the development of basic components (catalysts and membranes) to their integration in an innovative membrane reformer heated with molten salts, where both hydrogen production and purification occur in a single stage. The reduction of process temperatures is achieved by applying advanced catalyst systems and hydrogen selective Pd-based membranes. Process heat is supplied by using a low-cost and environmentally friendly binary NaNO3/KNO3 liquid mixture (60/40 w/w) as heat transfer fluid; such mixture is commonly used for the same purpose in the concentrating solar industry, so that the process can easily be coupled with concentrating solar power (CSP) plants for the supply of renewable process heat. This paper deals with the successful operation and validation of a pilot scale reactor with a nominal capacity of 2 Nm3/h of pure hydrogen from methane. The plant was operated with molten salt circulation for about 700 h, while continuous operation of the reactor was achieved for about 150 h with several switches of operating conditions such as molten salts inlet temperature, sweep steam flow rate and steam-to-carbon feed ratio. The results obtained show that the membrane reformer allows to achieve twice as high a conversion compared to a conventional reformer operating at thermodynamic equilibrium under the same conditions considered in this paper. A highly pure hydrogen permeate stream was obtained (>99.8%), while the outlet retentate stream had low CO concentration (<2%). No macroscopic signs of reactor performance loss were observed over the experimental operation period. (c) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:33088 / 33101
页数:14
相关论文
共 34 条
  • [21] On the activity of bimetallic catalysts for ethanol steam reforming
    Palma, Vincenzo
    Castaldo, Filomena
    Ciambelli, Paolo
    Iaquaniello, Gaetano
    Capitani, Giancarlo
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2013, 38 (16) : 6633 - 6645
  • [22] Application of Pd-Based Membrane Reactors: An Industrial Perspective
    Palo, Emma
    Salladini, Annarita
    Morico, Barbara
    Palma, Vincenzo
    Ricca, Antonio
    Iaquaniello, Gaetano
    [J]. MEMBRANES, 2018, 8 (04)
  • [23] On-site pure hydrogen production by methane steam reforming in high flux membrane reactor: Experimental validation, model predictions and membrane inhibition
    Patrascu, Michael
    Sheintuch, Moshe
    [J]. CHEMICAL ENGINEERING JOURNAL, 2015, 262 : 862 - 874
  • [24] Life Cycle Assessment of a high temperature molten salt concentrated solar power plant
    Piemonte, Vincenzo
    De Falco, Marcello
    Tarquini, Pietro
    Giaconia, Alberto
    [J]. SOLAR ENERGY, 2011, 85 (05) : 1101 - 1108
  • [25] Manufacture of hydrogen
    Rostrup-Nielsen, T
    [J]. CATALYSIS TODAY, 2005, 106 (1-4) : 293 - 296
  • [26] Solar molten salt heated membrane reformer for natural gas upgrading and hydrogen generation: A CFD model
    Said, Syed A. M.
    Simakov, David S. A.
    Waseeuddin, Mohammed
    Roman-Leshkov, Yuriy
    [J]. SOLAR ENERGY, 2016, 124 : 163 - 176
  • [27] Salladini A., 2016, MEMBRANE REFORMING P
  • [28] Tarquini P, Italian patent, Patent No. [RM 2006. 2006A000709., 2006000709]
  • [29] The Future of Hydrogen, 2019, REP PREP IEA G20
  • [30] Wall heat transfer coefficient and effective radial conductivity of ceramic foam catalyst supports
    Turchetti, L.
    Murmura, M. A.
    Monteleone, G.
    Annesini, M. C.
    [J]. CHEMICAL ENGINEERING RESEARCH & DESIGN, 2020, 156 (156) : 146 - 155