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Published in: Adsorption 5-6/2014

01-08-2014

Evaluating methane storage targets: from powder samples to onboard storage systems

Authors: B. P. Prajwal, K. G. Ayappa

Published in: Adsorption | Issue 5-6/2014

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Abstract

The development of a viable adsorbed natural gas onboard fuel system involves synthesizing materials that meet specific storage target requirements. We assess the impact on natural gas storage due to intermediate processes involved in taking a laboratory powder sample to an onboard packed or adsorbent bed module. We illustrate that reporting the V/V (volume of gas/volume of container) capacities based on powder adsorption data without accounting for losses due to pelletization and bed porosity, grossly overestimates the working storage capacity for a given material. Using data typically found for adsorbent materials that are carbon and MOF based materials, we show that in order to meet the Department of Energy targets of 180 V/V (equivalent STP) loading at 3.5 MPa and 298 K at the onboard packed bed level, the volumetric capacity of the pelletized sample should be at least 245 V/V and the corresponding gravimetric loading varies from 0.175 to 0.38 kg/kg for pellet densities ranging from 461.5 to 1,000 \(\hbox {kg m}^{-3}\). With recent revision of the DOE target to 263 V/V at the onboard packed bed level, the volumetric loadings for the pelletized sample should be about 373 V/V.

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Literature
go back to reference Balathanigaimani, M.S., Lee, M.J., Shim, W.G., Lee, J.W., Moon, H.: Charge and discharge of methane on phenol-based carbon monolith. Adsorption 14(4–5), 525–532 (2008)CrossRef Balathanigaimani, M.S., Lee, M.J., Shim, W.G., Lee, J.W., Moon, H.: Charge and discharge of methane on phenol-based carbon monolith. Adsorption 14(4–5), 525–532 (2008)CrossRef
go back to reference Bastos-Neto, M., Torres, A.E.B., Azevedo, D.C.S., Cavalcante Jr, C.L.: A theoretical and experimental study of charge and discharge cycles in a storage vessel for adsorbed natural gas. Adsorption 11(2), 147–157 (2005)CrossRef Bastos-Neto, M., Torres, A.E.B., Azevedo, D.C.S., Cavalcante Jr, C.L.: A theoretical and experimental study of charge and discharge cycles in a storage vessel for adsorbed natural gas. Adsorption 11(2), 147–157 (2005)CrossRef
go back to reference Basumatary, R., Dutta, P., Prasad, M., Srinivasan, K.: Thermal modeling of activated carbon based adsorptive natural gas storage system. Carbon 43(3), 541–549 (2005)CrossRef Basumatary, R., Dutta, P., Prasad, M., Srinivasan, K.: Thermal modeling of activated carbon based adsorptive natural gas storage system. Carbon 43(3), 541–549 (2005)CrossRef
go back to reference Biloé, S., Goetz, V., Guillot, A.: Optimal design of an activated carbon for an adsorbed natural gas storage system. Carbon 40(8), 1295–1308 (2002)CrossRef Biloé, S., Goetz, V., Guillot, A.: Optimal design of an activated carbon for an adsorbed natural gas storage system. Carbon 40(8), 1295–1308 (2002)CrossRef
go back to reference Burchell, T., Rogers, M.: Low pressure storage of natural gas for vehicular applications. SAE Tech. Pap. Ser. 1, 2000–2205 (2000) Burchell, T., Rogers, M.: Low pressure storage of natural gas for vehicular applications. SAE Tech. Pap. Ser. 1, 2000–2205 (2000)
go back to reference Celzard, A., Albiniak, A., Jasienko-Halat, M., Marêché, J.F., Furdin, G.: Methane storage capacities and pore textures of active carbons undergoing mechanical densification. Carbon 43(9), 1990–1999 (2005)CrossRef Celzard, A., Albiniak, A., Jasienko-Halat, M., Marêché, J.F., Furdin, G.: Methane storage capacities and pore textures of active carbons undergoing mechanical densification. Carbon 43(9), 1990–1999 (2005)CrossRef
go back to reference Dubinin, M.M., Astakhov, V.A.: Description of adsorption equilibrium of vapours on zeolites over wide ranges of temperature and pressure. Adv. Chem. Ser. 102, 69 (1971)CrossRef Dubinin, M.M., Astakhov, V.A.: Description of adsorption equilibrium of vapours on zeolites over wide ranges of temperature and pressure. Adv. Chem. Ser. 102, 69 (1971)CrossRef
go back to reference Farha, O.K., Eryazici, I., Jeong, N.C., Hauser, B.G., Wilmer, C.E., Sarjeant, A.A., Snurr, R.Q., Nguyen, S.T., Yazaydın, A.O., Hupp, J.T.: Metal-organic framework materials with ultrahigh surface areas: Is the sky the limit? J. Am. Chem. Soc. 134(36), 15,016–15,021 (2012)CrossRef Farha, O.K., Eryazici, I., Jeong, N.C., Hauser, B.G., Wilmer, C.E., Sarjeant, A.A., Snurr, R.Q., Nguyen, S.T., Yazaydın, A.O., Hupp, J.T.: Metal-organic framework materials with ultrahigh surface areas: Is the sky the limit? J. Am. Chem. Soc. 134(36), 15,016–15,021 (2012)CrossRef
go back to reference Finsy, V., Ma, L., Alaerts, L., Vos, D.E.D., Baron, G.V., Denayer, J.F.M.: Separation of \({\rm CO }_2/{\rm CH }_4\) mixtures with the MIL-53(Al) metal-organic framework. Microporous Mesoporous Mater. 120(3), 221–227 (2009)CrossRef Finsy, V., Ma, L., Alaerts, L., Vos, D.E.D., Baron, G.V., Denayer, J.F.M.: Separation of \({\rm CO }_2/{\rm CH }_4\) mixtures with the MIL-53(Al) metal-organic framework. Microporous Mesoporous Mater. 120(3), 221–227 (2009)CrossRef
go back to reference Goetz, V., Biloé, S.: Efficient dynamic charge and discharge of an adsorbed natural gas storage system. Chem. Eng. Commun. 192(7), 876–896 (2005)CrossRef Goetz, V., Biloé, S.: Efficient dynamic charge and discharge of an adsorbed natural gas storage system. Chem. Eng. Commun. 192(7), 876–896 (2005)CrossRef
go back to reference Guan, C., Loo, L.S., Wang, K., Yang, C.: Methane storage in carbon pellets prepared via a binderless method. Energy Convers. Manage 52(2), 1258–1262 (2011)CrossRef Guan, C., Loo, L.S., Wang, K., Yang, C.: Methane storage in carbon pellets prepared via a binderless method. Energy Convers. Manage 52(2), 1258–1262 (2011)CrossRef
go back to reference Hou, P.X., Orikasa, H., Itoi, H., Nishihara, H., Kyotani, T.: Densification of ordered microporous carbons and controlling their micropore size by hot-pressing. Carbon 45(10), 2011–2016 (2007)CrossRef Hou, P.X., Orikasa, H., Itoi, H., Nishihara, H., Kyotani, T.: Densification of ordered microporous carbons and controlling their micropore size by hot-pressing. Carbon 45(10), 2011–2016 (2007)CrossRef
go back to reference Inomata, K., Kanazawa, K., Urabe, Y., Hosono, H., Araki, T.: Natural gas storage in activated carbon pellets without a binder. Carbon 40(1), 87–93 (2002)CrossRef Inomata, K., Kanazawa, K., Urabe, Y., Hosono, H., Araki, T.: Natural gas storage in activated carbon pellets without a binder. Carbon 40(1), 87–93 (2002)CrossRef
go back to reference Jordá-Beneyto, M., Lozano-Castelló, D., Suárez-García, F., Cazorla-Amorós, D., Linares-Solano, Á.: Advanced activated carbon monoliths and activated carbons for hydrogen storage. Microporous Mesoporous Mater. 112(1), 235–242 (2008)CrossRef Jordá-Beneyto, M., Lozano-Castelló, D., Suárez-García, F., Cazorla-Amorós, D., Linares-Solano, Á.: Advanced activated carbon monoliths and activated carbons for hydrogen storage. Microporous Mesoporous Mater. 112(1), 235–242 (2008)CrossRef
go back to reference Konstas, K., Osl, T., Yang, Y., Batten, M., Burke, N., Hill, A.J., Hill, M.R.: Methane storage in metal organic frameworks. J. Mater. Chem. 22(33), 16,698–16,708 (2012)CrossRef Konstas, K., Osl, T., Yang, Y., Batten, M., Burke, N., Hill, A.J., Hill, M.R.: Methane storage in metal organic frameworks. J. Mater. Chem. 22(33), 16,698–16,708 (2012)CrossRef
go back to reference Kumar, V.S., Raghunathan, K., Kumar, S.: A lumped-parameter model for cryo-adsorber hydrogen storage tank. Int. J. Hydrogen Energy 34(13), 5466–5475 (2009)CrossRef Kumar, V.S., Raghunathan, K., Kumar, S.: A lumped-parameter model for cryo-adsorber hydrogen storage tank. Int. J. Hydrogen Energy 34(13), 5466–5475 (2009)CrossRef
go back to reference Liu, J., Tian, J., Thallapally, P.K., McGrail, B.P.: Selective \({\rm CO}_2\) capture from flue gas using metal-organic frameworks-a fixed bed study. J. Phys. Chem. C 116(17), 9575–9581 (2012)CrossRef Liu, J., Tian, J., Thallapally, P.K., McGrail, B.P.: Selective \({\rm CO}_2\) capture from flue gas using metal-organic frameworks-a fixed bed study. J. Phys. Chem. C 116(17), 9575–9581 (2012)CrossRef
go back to reference Loh, W.S., Rahman, K.A., Chakraborty, A., Saha, B.B., Choo, Y.S., Khoo, B.C., Ng, K.C.: Improved isotherm data for adsorption of methane on activated carbons. J. Chem. Eng. Data 55(8), 2840–2847 (2010)CrossRef Loh, W.S., Rahman, K.A., Chakraborty, A., Saha, B.B., Choo, Y.S., Khoo, B.C., Ng, K.C.: Improved isotherm data for adsorption of methane on activated carbons. J. Chem. Eng. Data 55(8), 2840–2847 (2010)CrossRef
go back to reference Lozano-Castelló, D., Cazorla-Amorós, D., Linares-Solano, A., Quinn, D.F.: Activated carbon monoliths for methane storage: influence of binder. Carbon 40(15), 2817–2825 (2002)CrossRef Lozano-Castelló, D., Cazorla-Amorós, D., Linares-Solano, A., Quinn, D.F.: Activated carbon monoliths for methane storage: influence of binder. Carbon 40(15), 2817–2825 (2002)CrossRef
go back to reference Lozano-Castelló, D., Alcañiz Monge, J., De la Casa-Lillo, M.A., Cazorla-Amorós, D., Linares-Solano, A.: Advances in the study of methane storage in porous carbonaceous materials. Fuel 81(14), 1777–1803 (2002)CrossRef Lozano-Castelló, D., Alcañiz Monge, J., De la Casa-Lillo, M.A., Cazorla-Amorós, D., Linares-Solano, A.: Advances in the study of methane storage in porous carbonaceous materials. Fuel 81(14), 1777–1803 (2002)CrossRef
go back to reference Makal, T.A., Li, J.R., Lu, W., Zhou, H.C.: Methane storage in advanced porous materials. Chem. Soc. Rev. 41, 7761–7779 (2012)CrossRef Makal, T.A., Li, J.R., Lu, W., Zhou, H.C.: Methane storage in advanced porous materials. Chem. Soc. Rev. 41, 7761–7779 (2012)CrossRef
go back to reference Mason, J.A., Veenstra, M., Long, J.R.: Evaluating metal-organic frameworks for natural gas storage. Chem. Sci. 5(1), 32–51 (2014)CrossRef Mason, J.A., Veenstra, M., Long, J.R.: Evaluating metal-organic frameworks for natural gas storage. Chem. Sci. 5(1), 32–51 (2014)CrossRef
go back to reference Matranga, K.R., Myers, A.L., Glandt, E.D.: Storage of natural gas by adsorption on activated carbon. Chem. Eng. Sci. 47(7), 1569–1579 (1992)CrossRef Matranga, K.R., Myers, A.L., Glandt, E.D.: Storage of natural gas by adsorption on activated carbon. Chem. Eng. Sci. 47(7), 1569–1579 (1992)CrossRef
go back to reference Momen, G., Hermosilla, G., Michau, A., Pons, M., Firdaous, M., Marty, P., Hassouni, K.: Experimental and numerical investigation of the thermal effects during hydrogen charging in packed bed storage tank. Int. J. Heat Mass Transfer. 52(5), 1495–1503 (2009)CrossRef Momen, G., Hermosilla, G., Michau, A., Pons, M., Firdaous, M., Marty, P., Hassouni, K.: Experimental and numerical investigation of the thermal effects during hydrogen charging in packed bed storage tank. Int. J. Heat Mass Transfer. 52(5), 1495–1503 (2009)CrossRef
go back to reference Mota, J.P.B., Rodrigues, A.E., Saatdjian, E., Tondeur, D.: Dynamics of natural gas adsorption storage systems employing activated carbon. Carbon 35(9), 1259–1270 (1997)CrossRef Mota, J.P.B., Rodrigues, A.E., Saatdjian, E., Tondeur, D.: Dynamics of natural gas adsorption storage systems employing activated carbon. Carbon 35(9), 1259–1270 (1997)CrossRef
go back to reference Peng, Y., Krungleviciute, V., Eryazici, I., Hupp, J.T., Farha, O.K., Yildirim, T.: Methane storage in metal-organic frameworks: current records, surprise findings, and challenges. J. Am. Chem. Soc. 135(32), 11,887–11,894 (2013)CrossRef Peng, Y., Krungleviciute, V., Eryazici, I., Hupp, J.T., Farha, O.K., Yildirim, T.: Methane storage in metal-organic frameworks: current records, surprise findings, and challenges. J. Am. Chem. Soc. 135(32), 11,887–11,894 (2013)CrossRef
go back to reference Purewal, J., Liu, D., Sudik, A., Veenstra, M., Yang, J., Maurer, S., Müller, U., Siegel, D.J.: Improved hydrogen storage and thermal conductivity in high-density MOF-5 composites. J. Phys. Chem. C 116(38), 20,199–20,212 (2012)CrossRef Purewal, J., Liu, D., Sudik, A., Veenstra, M., Yang, J., Maurer, S., Müller, U., Siegel, D.J.: Improved hydrogen storage and thermal conductivity in high-density MOF-5 composites. J. Phys. Chem. C 116(38), 20,199–20,212 (2012)CrossRef
go back to reference Rahman, K.A., Loh, W.S., Chakraborty, A., Saha, B.B., Chun, W.G., Ng, K.C.: Thermal enhancement of charge and discharge cycles for adsorbed natural gas storage. Appl. Therm. Eng. 31(10), 1630–1639 (2011)CrossRef Rahman, K.A., Loh, W.S., Chakraborty, A., Saha, B.B., Chun, W.G., Ng, K.C.: Thermal enhancement of charge and discharge cycles for adsorbed natural gas storage. Appl. Therm. Eng. 31(10), 1630–1639 (2011)CrossRef
go back to reference Sahoo, P.K., John, M., Newalkar, B.L., Choudhary, N.V., Ayappa, K.G.: Filling characteristics for an activated carbon based adsorbed natural gas storage system. Ind. Eng. Chem. Res. 50(23), 13,000–13,011 (2011)CrossRef Sahoo, P.K., John, M., Newalkar, B.L., Choudhary, N.V., Ayappa, K.G.: Filling characteristics for an activated carbon based adsorbed natural gas storage system. Ind. Eng. Chem. Res. 50(23), 13,000–13,011 (2011)CrossRef
go back to reference Sahoo, P.K., John, M., Newalkar, B.L., Choudhary, N.V., Ayappa, K.G.: Corrections to filling characteristics for an activated carbon based adsorbed natural gas storage system. Ind. Eng. Chem. Res. 53(11), 4522–4523 (2014a)CrossRef Sahoo, P.K., John, M., Newalkar, B.L., Choudhary, N.V., Ayappa, K.G.: Corrections to filling characteristics for an activated carbon based adsorbed natural gas storage system. Ind. Eng. Chem. Res. 53(11), 4522–4523 (2014a)CrossRef
go back to reference Sahoo, P.K., Prajwal, B.P., Dasetty, S.K., John, M., Newalkar, B.L., Choudary, N.V., Ayappa, K.G.: Influence of exhaust gas heating and L/D ratios on the discharge efficiencies for an activated carbon natural gas storage system. Appl. Energy 119, 190–203 (2014b)CrossRef Sahoo, P.K., Prajwal, B.P., Dasetty, S.K., John, M., Newalkar, B.L., Choudary, N.V., Ayappa, K.G.: Influence of exhaust gas heating and L/D ratios on the discharge efficiencies for an activated carbon natural gas storage system. Appl. Energy 119, 190–203 (2014b)CrossRef
go back to reference Stoeckli, F., Guillot, A., Hugi-Cleary, D., Slasli, A.M.: Pore size distributions of active carbons assessed by different techniques. Carbon 38, 938–941 (2000)CrossRef Stoeckli, F., Guillot, A., Hugi-Cleary, D., Slasli, A.M.: Pore size distributions of active carbons assessed by different techniques. Carbon 38, 938–941 (2000)CrossRef
go back to reference Sun, Y., Liu, C., Su, W., Zhou, Y., Zhou, L.: Principles of methane adsorption and natural gas storage. Adsorption 15(2), 133–137 (2009)CrossRef Sun, Y., Liu, C., Su, W., Zhou, Y., Zhou, L.: Principles of methane adsorption and natural gas storage. Adsorption 15(2), 133–137 (2009)CrossRef
go back to reference Tagliabue, M., Rizzo, C., Millini, R., Dietzel, P.D.C., Blom, R., Zanardi, S.: Methane storage on CPO-27-Ni pellets. J. Porous Mater. 18(3), 289–296 (2011)CrossRef Tagliabue, M., Rizzo, C., Millini, R., Dietzel, P.D.C., Blom, R., Zanardi, S.: Methane storage on CPO-27-Ni pellets. J. Porous Mater. 18(3), 289–296 (2011)CrossRef
Metadata
Title
Evaluating methane storage targets: from powder samples to onboard storage systems
Authors
B. P. Prajwal
K. G. Ayappa
Publication date
01-08-2014
Publisher
Springer US
Published in
Adsorption / Issue 5-6/2014
Print ISSN: 0929-5607
Electronic ISSN: 1572-8757
DOI
https://doi.org/10.1007/s10450-014-9620-1

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