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2021 | OriginalPaper | Buchkapitel

4. Kinetics of Solid Composite Sorbents

verfasst von : Liwei Wang, Guoliang An, Jiao Gao, Ruzhu Wang

Erschienen in: Property and Energy Conversion Technology of Solid Composite Sorbents

Verlag: Springer Singapore

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Abstract

In this chapter, the typical equilibrium principles and phenomena in halide-ammonia based composite sorbents are introduced. Advantages and shortcomings of several classical non-equilibrium models are analyzed. After that several recently discovered sorption phenomena are discussed, and finally, several new directions for the development of kinetic models for halide-ammonia based composite sorbents are proposed.

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Literatur
1.
Zurück zum Zitat Critoph RE, Metcalf SJ (2004) Specific cooling power intensification limits in ammonia-carbon adsorption refrigeration systems. Appl Therm Eng 24:661–678CrossRef Critoph RE, Metcalf SJ (2004) Specific cooling power intensification limits in ammonia-carbon adsorption refrigeration systems. Appl Therm Eng 24:661–678CrossRef
2.
Zurück zum Zitat Wang LW, Wu JY, Wang RZ, Xu YX, Wang SG (2003) Experimental study of a solidified activated carbon-methanol adsorption ice maker. Appl Therm Eng 23:1453–1462CrossRef Wang LW, Wu JY, Wang RZ, Xu YX, Wang SG (2003) Experimental study of a solidified activated carbon-methanol adsorption ice maker. Appl Therm Eng 23:1453–1462CrossRef
3.
Zurück zum Zitat Rezk ARM, Al-Dadah RK (2012) Physical and operating conditions effects on silica gel/water adsorption chiller performance. Appl Energy 89:142–149CrossRef Rezk ARM, Al-Dadah RK (2012) Physical and operating conditions effects on silica gel/water adsorption chiller performance. Appl Energy 89:142–149CrossRef
4.
Zurück zum Zitat Iloeje OC, Ndili AN, Enibe SO (1995) Computer simulation of a CaCl2 solid-adsorption solar refrigerator. Energy 20:1141–1151CrossRef Iloeje OC, Ndili AN, Enibe SO (1995) Computer simulation of a CaCl2 solid-adsorption solar refrigerator. Energy 20:1141–1151CrossRef
5.
Zurück zum Zitat Goetz V, Spinner B, Lepinasse E (1997) A solid-gas thermochemical cooling system using BaCl2 and NiCl2. Energy 22:49–58CrossRef Goetz V, Spinner B, Lepinasse E (1997) A solid-gas thermochemical cooling system using BaCl2 and NiCl2. Energy 22:49–58CrossRef
6.
Zurück zum Zitat Libowitz GG, Feldman KT, Stein C (1997) Thermodynamic properties of metal hydrides for a novel heat pump configuration. J Alloy Compd 253:673–676CrossRef Libowitz GG, Feldman KT, Stein C (1997) Thermodynamic properties of metal hydrides for a novel heat pump configuration. J Alloy Compd 253:673–676CrossRef
7.
Zurück zum Zitat Ponec V, Knor Z, Černý S, Smith D, Adams NG (1974) Adsorption on solids Ponec V, Knor Z, Černý S, Smith D, Adams NG (1974) Adsorption on solids
8.
Zurück zum Zitat Lin S, Vannice MA (1991) Gold dispersed on TiO2 and SiO2: adsorption properties and catalytic behavior in hydrogenation reactions. Catal Lett 10:47–61CrossRef Lin S, Vannice MA (1991) Gold dispersed on TiO2 and SiO2: adsorption properties and catalytic behavior in hydrogenation reactions. Catal Lett 10:47–61CrossRef
9.
Zurück zum Zitat Lebrun M, Neveu P (1992) Conception, simulation, dimensioning, and testing of an experimental chemical heat pump. Ashrae Trans 98:420–429 Lebrun M, Neveu P (1992) Conception, simulation, dimensioning, and testing of an experimental chemical heat pump. Ashrae Trans 98:420–429
10.
Zurück zum Zitat Mauran S, Prades P, L’Haridon F (1993) Heat and mass transfer in consolidated reacting beds for thermochemical systems. Heat Recovery Syst CHP 13:315–319CrossRef Mauran S, Prades P, L’Haridon F (1993) Heat and mass transfer in consolidated reacting beds for thermochemical systems. Heat Recovery Syst CHP 13:315–319CrossRef
11.
Zurück zum Zitat Vasiliev LL, Mishkinis DA, Antukh AA, Kulakov AG, Vasiliev LL (2004) Resorption heat pump. Appl Therm Eng 24:1893–1903CrossRef Vasiliev LL, Mishkinis DA, Antukh AA, Kulakov AG, Vasiliev LL (2004) Resorption heat pump. Appl Therm Eng 24:1893–1903CrossRef
12.
Zurück zum Zitat Wang K, Wu JY, Wang RZ, Wang LW (2006) Composite adsorbent of CaCl2 and expanded graphite for adsorption ice maker on fishing boats. Int J Refrig 29:199–210CrossRef Wang K, Wu JY, Wang RZ, Wang LW (2006) Composite adsorbent of CaCl2 and expanded graphite for adsorption ice maker on fishing boats. Int J Refrig 29:199–210CrossRef
13.
Zurück zum Zitat Wang LW, Metcalf SJ, Critoph RE, Thorpe R, Tamainot-Telto Z (2011) Thermal conductivity and permeability of consolidated expanded natural graphite treated with sulphuric acid. Carbon 49:4812–4819CrossRef Wang LW, Metcalf SJ, Critoph RE, Thorpe R, Tamainot-Telto Z (2011) Thermal conductivity and permeability of consolidated expanded natural graphite treated with sulphuric acid. Carbon 49:4812–4819CrossRef
14.
Zurück zum Zitat Jiang L, Wang LW, Jin ZQ, Wang RZ, Dai YJ (2013) Effective thermal conductivity and permeability of compact compound ammoniated salts in the adsorption/desorption process. Int J Therm Sci 71:103–110CrossRef Jiang L, Wang LW, Jin ZQ, Wang RZ, Dai YJ (2013) Effective thermal conductivity and permeability of compact compound ammoniated salts in the adsorption/desorption process. Int J Therm Sci 71:103–110CrossRef
15.
Zurück zum Zitat Saha BB, Chakraborty A, Koyama S, Yu IA (2009) A new generation cooling device employing CaCl2-in-silica gel-water system. Int J Heat Mass Transf 52:516–524MATHCrossRef Saha BB, Chakraborty A, Koyama S, Yu IA (2009) A new generation cooling device employing CaCl2-in-silica gel-water system. Int J Heat Mass Transf 52:516–524MATHCrossRef
16.
Zurück zum Zitat Okunev BN, Aristov Yu (2014) Making adsorptive chillers faster by a proper choice of adsorption isobar shape: comparison of optimal and real adsorbents. Energy 76:400–405CrossRef Okunev BN, Aristov Yu (2014) Making adsorptive chillers faster by a proper choice of adsorption isobar shape: comparison of optimal and real adsorbents. Energy 76:400–405CrossRef
17.
Zurück zum Zitat Langmuir I (1917) The constitution and fundamental properties of solids and liquids. Park I. solids. J Am Chem Soc 38:102–105 Langmuir I (1917) The constitution and fundamental properties of solids and liquids. Park I. solids. J Am Chem Soc 38:102–105
18.
Zurück zum Zitat Gibbs JW (1957) The collected works of J. Willard Gibbs 1. Thermodynamics 6–591 Gibbs JW (1957) The collected works of J. Willard Gibbs 1. Thermodynamics 6–591
19.
Zurück zum Zitat Polanyi M (1932) Theories of the adsorption of gases: a general survey and some additional remarks 28 Polanyi M (1932) Theories of the adsorption of gases: a general survey and some additional remarks 28
20.
Zurück zum Zitat Dubinin MM (1960) The potential theory of adsorption of gases and vapors for adsorbents with energetically nonuniform surfaces. Chem Rev 60:235–241CrossRef Dubinin MM (1960) The potential theory of adsorption of gases and vapors for adsorbents with energetically nonuniform surfaces. Chem Rev 60:235–241CrossRef
21.
Zurück zum Zitat Dubinin MM (1975) Physical adsorption of gases and vapors in micropores. Progress Surf Membrane Ence 9:1–70CrossRef Dubinin MM (1975) Physical adsorption of gases and vapors in micropores. Progress Surf Membrane Ence 9:1–70CrossRef
22.
Zurück zum Zitat Brunauer S, Emmett PH, Teller E (1938) Adsorption of Gases in Multimolecular Layers. J Am Chem Soc 60:309–319CrossRef Brunauer S, Emmett PH, Teller E (1938) Adsorption of Gases in Multimolecular Layers. J Am Chem Soc 60:309–319CrossRef
23.
Zurück zum Zitat Thu K, Chakraborty A, Saha BB, Ng KC (2013) Thermo-physical properties of silica gel for adsorption desalination cycle. Appl Therm Eng 50:1596–1602CrossRef Thu K, Chakraborty A, Saha BB, Ng KC (2013) Thermo-physical properties of silica gel for adsorption desalination cycle. Appl Therm Eng 50:1596–1602CrossRef
24.
Zurück zum Zitat Dubinin MM, Radushkevich LV, Dubinin MM, Radushkevich LV (1946) The equation of the characteristic curve of activated charcoal. Zhurnal Nevropatologii I Psikhiatrii Imeni Sskorsakova 79:843–848 Dubinin MM, Radushkevich LV, Dubinin MM, Radushkevich LV (1946) The equation of the characteristic curve of activated charcoal. Zhurnal Nevropatologii I Psikhiatrii Imeni Sskorsakova 79:843–848
25.
Zurück zum Zitat Dubinin MM, Zolotarev PP, Nikolaev KM, Polyakov NS, Petrova LI, Radushkevich LV (1973) Investigation of the dynamics of adsorption in a broad range of breakthrough concentrations. Russ Chem Bull 21:1432–1437 Dubinin MM, Zolotarev PP, Nikolaev KM, Polyakov NS, Petrova LI, Radushkevich LV (1973) Investigation of the dynamics of adsorption in a broad range of breakthrough concentrations. Russ Chem Bull 21:1432–1437
26.
Zurück zum Zitat Sellaoui L, Saha BB, Wjihi S, Lamine AB (2016) Physicochemical parameters interpretation for adsorption equilibrium of ethanol on metal organic framework: application of the multilayer model with saturation. J Mol Liq 233:537–542CrossRef Sellaoui L, Saha BB, Wjihi S, Lamine AB (2016) Physicochemical parameters interpretation for adsorption equilibrium of ethanol on metal organic framework: application of the multilayer model with saturation. J Mol Liq 233:537–542CrossRef
27.
Zurück zum Zitat Veselovskaya JV, Critoph RE, Thorpe RN, Metcalf S, Tokarev MM, Aristov Yu (2010) Novel ammonia sorbents “porous matrix modified by active salt” for adsorptive heat transformation: 3. Testing of “BaCl2 /vermiculite” composite in a lab-scale adsorption chiller. Appl Therm Eng 30:1188–1192CrossRef Veselovskaya JV, Critoph RE, Thorpe RN, Metcalf S, Tokarev MM, Aristov Yu (2010) Novel ammonia sorbents “porous matrix modified by active salt” for adsorptive heat transformation: 3. Testing of “BaCl2 /vermiculite” composite in a lab-scale adsorption chiller. Appl Therm Eng 30:1188–1192CrossRef
28.
Zurück zum Zitat Aristov Yu, Dawoud B, Glaznev IS, Elyas A (2008) A new methodology of studying the dynamics of water sorption/desorption under real operating conditions of adsorption heat pumps: experiment. Int J Heat Mass Transf 51:4966–4972CrossRef Aristov Yu, Dawoud B, Glaznev IS, Elyas A (2008) A new methodology of studying the dynamics of water sorption/desorption under real operating conditions of adsorption heat pumps: experiment. Int J Heat Mass Transf 51:4966–4972CrossRef
29.
Zurück zum Zitat Stitou D, Crozat G (1997) Dimensioning nomograms for the design of fixed-bed solid-gas thermochemical reactors with various geometrical configurations. Chem Eng Process 36:45–58CrossRef Stitou D, Crozat G (1997) Dimensioning nomograms for the design of fixed-bed solid-gas thermochemical reactors with various geometrical configurations. Chem Eng Process 36:45–58CrossRef
30.
Zurück zum Zitat Mazet N, Amouroux M, Spinner B (1991) Analysis and experimental study of the transformation of a non-isothermal solid/gas reacting medium. Chem Eng Commun 99:155–174CrossRef Mazet N, Amouroux M, Spinner B (1991) Analysis and experimental study of the transformation of a non-isothermal solid/gas reacting medium. Chem Eng Commun 99:155–174CrossRef
31.
Zurück zum Zitat Sun LM, Meunier F (1991) An improved finite difference method for fixed-bed multicomponent sorption. AIChE J 37:244–254CrossRef Sun LM, Meunier F (1991) An improved finite difference method for fixed-bed multicomponent sorption. AIChE J 37:244–254CrossRef
32.
Zurück zum Zitat Goetz V, Marty A (1992) A model for reversible solid-gas reactions submitted to temperature and pressure constraints: simulation of the rate of reaction in solid-gas reactor used as chemical heat pump. Chem Eng Sci 47:4445–4454CrossRef Goetz V, Marty A (1992) A model for reversible solid-gas reactions submitted to temperature and pressure constraints: simulation of the rate of reaction in solid-gas reactor used as chemical heat pump. Chem Eng Sci 47:4445–4454CrossRef
33.
Zurück zum Zitat Lebrun M, Spinner B (1990) Simulation for the development of solid—gas chemical heat pump pilot plants Part I. simulation and dimensioning. Chem Eng Process 28:55–66CrossRef Lebrun M, Spinner B (1990) Simulation for the development of solid—gas chemical heat pump pilot plants Part I. simulation and dimensioning. Chem Eng Process 28:55–66CrossRef
34.
Zurück zum Zitat Lebrun M (1990) Simulation for the development of solid—gas chemical heat pump pilot plants Part II. simulation and optimization of Discontinuous and pseudo-continuous operating cycles. Chem Eng Process 28:67–77CrossRef Lebrun M (1990) Simulation for the development of solid—gas chemical heat pump pilot plants Part II. simulation and optimization of Discontinuous and pseudo-continuous operating cycles. Chem Eng Process 28:67–77CrossRef
35.
Zurück zum Zitat Bjurström H, Suda S (1989) The metal hydride heat pump: Dynamics of hydrogen transfer. Int J Hydrogen Energy 14:19–28CrossRef Bjurström H, Suda S (1989) The metal hydride heat pump: Dynamics of hydrogen transfer. Int J Hydrogen Energy 14:19–28CrossRef
36.
Zurück zum Zitat Neveu P, Castaing-Lasvignottes J (1997) Development of a numerical sizing tool for a solid-gas thermochemical transformer—I. Impact of the microscopic process on the dynamic behaviour of a solid-gas reactor. Appl Therm Eng 17:501–518CrossRef Neveu P, Castaing-Lasvignottes J (1997) Development of a numerical sizing tool for a solid-gas thermochemical transformer—I. Impact of the microscopic process on the dynamic behaviour of a solid-gas reactor. Appl Therm Eng 17:501–518CrossRef
37.
Zurück zum Zitat Castaing-Lasvignottes J, Neveu P (1997) Development of a numerical sizing tool applied to a solid-gas thermochemical transformer—II. Influence of external couplings on the dynamic behaviour of a solid-gas thermochemical transformer. Appl Therm Eng 17:519–536CrossRef Castaing-Lasvignottes J, Neveu P (1997) Development of a numerical sizing tool applied to a solid-gas thermochemical transformer—II. Influence of external couplings on the dynamic behaviour of a solid-gas thermochemical transformer. Appl Therm Eng 17:519–536CrossRef
38.
Zurück zum Zitat Stitou D, Goetz V, Spinner B (1997) A new analytical model for solid-gas thermochemical reactors based on thermophysical properties of the reactive medium. Chem Eng Process 36:29–43CrossRef Stitou D, Goetz V, Spinner B (1997) A new analytical model for solid-gas thermochemical reactors based on thermophysical properties of the reactive medium. Chem Eng Process 36:29–43CrossRef
39.
Zurück zum Zitat Lebrun M, Spinner B (1990) Models of heat and mass transfers in solid—gas reactors used as chemical heat pumps. Chem Eng Sci 45:1743–1753CrossRef Lebrun M, Spinner B (1990) Models of heat and mass transfers in solid—gas reactors used as chemical heat pumps. Chem Eng Sci 45:1743–1753CrossRef
40.
Zurück zum Zitat Lu HB, Mazet N, Coudevylle O, Mauran S (1997) Comparison of a general model with a simplified approach for the transformation of solid-gas media used in chemical heat transformers. Chem Eng Sci 52:311–327CrossRef Lu HB, Mazet N, Coudevylle O, Mauran S (1997) Comparison of a general model with a simplified approach for the transformation of solid-gas media used in chemical heat transformers. Chem Eng Sci 52:311–327CrossRef
41.
Zurück zum Zitat Fan Y, Luo L, Souyri B (2007) Review of solar sorption refrigeration technologies: Development and applications. Renew Sustain Energy Rev 11:1758–1775CrossRef Fan Y, Luo L, Souyri B (2007) Review of solar sorption refrigeration technologies: Development and applications. Renew Sustain Energy Rev 11:1758–1775CrossRef
42.
Zurück zum Zitat Fernandes MS, Brites GJVN, Costa JJ, Gaspar AR, Costa VAF (2014) Review and future trends of solar adsorption refrigeration systems. Renew Sustain Energy Rev 39:102–123CrossRef Fernandes MS, Brites GJVN, Costa JJ, Gaspar AR, Costa VAF (2014) Review and future trends of solar adsorption refrigeration systems. Renew Sustain Energy Rev 39:102–123CrossRef
43.
Zurück zum Zitat Sarbu I, Sebarchievici C (2015) General review of solar-powered closed sorption refrigeration systems. Energy Convers Manage 105:403–422CrossRef Sarbu I, Sebarchievici C (2015) General review of solar-powered closed sorption refrigeration systems. Energy Convers Manage 105:403–422CrossRef
44.
Zurück zum Zitat Chen C (2008) Review of solar adsorption refrigeration system for air conditioning. J Refrig 2008(4):1–7 Chen C (2008) Review of solar adsorption refrigeration system for air conditioning. J Refrig 2008(4):1–7
45.
Zurück zum Zitat Mas D, Randip K (2015) Review on solar adsorption refrigeration cycle. Int J Mech Eng Technol 6340:190–226 Mas D, Randip K (2015) Review on solar adsorption refrigeration cycle. Int J Mech Eng Technol 6340:190–226
46.
Zurück zum Zitat Anyanwu EE (2004) Review of solid adsorption solar refrigeration II: An overview of the principles and theory. Energy Convers Manage 45:1279–1295CrossRef Anyanwu EE (2004) Review of solid adsorption solar refrigeration II: An overview of the principles and theory. Energy Convers Manage 45:1279–1295CrossRef
47.
Zurück zum Zitat Jiang B, Guo H (2014) Prediction of mode specificity, bond selectivity, normal scaling, and surface lattice effects in water dissociative chemisorption on several metal surfaces using the sudden vector projection model. J Phys Chem C 118(46):26851–26858CrossRef Jiang B, Guo H (2014) Prediction of mode specificity, bond selectivity, normal scaling, and surface lattice effects in water dissociative chemisorption on several metal surfaces using the sudden vector projection model. J Phys Chem C 118(46):26851–26858CrossRef
48.
Zurück zum Zitat Jiang B, Guo H (2015) Quantum and classical dynamics of water dissociation on Ni(111): A test of the site-averaging model in dissociative chemisorption of polyatomic molecules. J Chem Phys 143:1CrossRef Jiang B, Guo H (2015) Quantum and classical dynamics of water dissociation on Ni(111): A test of the site-averaging model in dissociative chemisorption of polyatomic molecules. J Chem Phys 143:1CrossRef
49.
Zurück zum Zitat Jackson B, Nattino F, Kroes GJ (2014) Dissociative chemisorption of methane on metal surfaces: tests of dynamical assumptions using quantum models and ab initio molecular dynamics. J Chem Phys 141:163CrossRef Jackson B, Nattino F, Kroes GJ (2014) Dissociative chemisorption of methane on metal surfaces: tests of dynamical assumptions using quantum models and ab initio molecular dynamics. J Chem Phys 141:163CrossRef
50.
Zurück zum Zitat Liu T, Fu B, Zhang DH (2014) Validity of the site-averaging approximation for modeling the dissociative chemisorption of H2 on Cu(111) surface: a quantum dynamics study on two potential energy surfaces. J Chem Phys 141:184705CrossRef Liu T, Fu B, Zhang DH (2014) Validity of the site-averaging approximation for modeling the dissociative chemisorption of H2 on Cu(111) surface: a quantum dynamics study on two potential energy surfaces. J Chem Phys 141:184705CrossRef
51.
Zurück zum Zitat Touzain P (1999) Thermodynamic values of ammonia-salts reactions for chemical sorption heat pumps. In: Proceedings of international sorption heat pump conference, Munich, Germany, pp 24–26 Touzain P (1999) Thermodynamic values of ammonia-salts reactions for chemical sorption heat pumps. In: Proceedings of international sorption heat pump conference, Munich, Germany, pp 24–26
52.
Zurück zum Zitat Neveu P, Castaing J (1993) Solid-gas chemical heat pumps: Field of application and performance of the internal heat of reaction recovery process. Heat Recovery Syst CHP 13:233–251CrossRef Neveu P, Castaing J (1993) Solid-gas chemical heat pumps: Field of application and performance of the internal heat of reaction recovery process. Heat Recovery Syst CHP 13:233–251CrossRef
53.
Zurück zum Zitat Mbaye M, Aidoun Z, Valkov V, Legault A (1998) Analysis of chemical heat pumps (CHPS): basic concepts and numerical model description. Appl Therm Eng 18:131–146CrossRef Mbaye M, Aidoun Z, Valkov V, Legault A (1998) Analysis of chemical heat pumps (CHPS): basic concepts and numerical model description. Appl Therm Eng 18:131–146CrossRef
54.
Zurück zum Zitat Zhang YH (1989) Adsorption, scientific and technical documents publishing house (in Chinese) Zhang YH (1989) Adsorption, scientific and technical documents publishing house (in Chinese)
55.
Zurück zum Zitat Wang LW (2005) Study on chemical adsorption precursor of CaCl2-NH3 in adsorption refrigeration. Sci China Technol (in Chinese) 35:31–42 Wang LW (2005) Study on chemical adsorption precursor of CaCl2-NH3 in adsorption refrigeration. Sci China Technol (in Chinese) 35:31–42
56.
Zurück zum Zitat Wang LW, Wang RZ, Wu JY, Wang K (2004) Adsorption performances and refrigeration application of adsorption working pair of CaCl2-NH3. Sci China Ser E 47(2):173–185 Wang LW, Wang RZ, Wu JY, Wang K (2004) Adsorption performances and refrigeration application of adsorption working pair of CaCl2-NH3. Sci China Ser E 47(2):173–185
57.
Zurück zum Zitat Wang LW, Wang RZ, Wu JY, Wang K (2005) Research on the chemical adsorption precursor state of CaCl2-NH3 for adsorption refrigeration. Sci China Ser E 48(1):70–82 Wang LW, Wang RZ, Wu JY, Wang K (2005) Research on the chemical adsorption precursor state of CaCl2-NH3 for adsorption refrigeration. Sci China Ser E 48(1):70–82
58.
Zurück zum Zitat Ci YX, Zhou TZ (1999) The multiple complex compounds in the analytical chemistry (in Chinese, ISBN 7-03-007128-X/O·1069). Sci Press, Beijing, China Ci YX, Zhou TZ (1999) The multiple complex compounds in the analytical chemistry (in Chinese, ISBN 7-03-007128-X/O·1069). Sci Press, Beijing, China
59.
Zurück zum Zitat Gasser RPH (1987) An introduction to chemisorption & catalysis by metals. Clarendon Press, Oxford, UKCrossRef Gasser RPH (1987) An introduction to chemisorption & catalysis by metals. Clarendon Press, Oxford, UKCrossRef
60.
Zurück zum Zitat Biltz W, Huttig GF (1920) Uber die auswertung von dissoziationsmessungen bei ammoniakaten nach dem theorem von nernst mit hilfe von nomogrammen. Z Anorg Allg Chem 109:111–125CrossRef Biltz W, Huttig GF (1920) Uber die auswertung von dissoziationsmessungen bei ammoniakaten nach dem theorem von nernst mit hilfe von nomogrammen. Z Anorg Allg Chem 109:111–125CrossRef
61.
Zurück zum Zitat Xia SW (1993) Activated energy and its calculation (in Chinese, ISBN 7040036312). High Education Press of Beijing, Beijing, China Xia SW (1993) Activated energy and its calculation (in Chinese, ISBN 7040036312). High Education Press of Beijing, Beijing, China
62.
Zurück zum Zitat Zhang YH (1989) Adsorption action (in Chinese, ISBN 7805134979, 9787805134970). Shanghai Press of Science and Technology, Shanghai, China Zhang YH (1989) Adsorption action (in Chinese, ISBN 7805134979, 9787805134970). Shanghai Press of Science and Technology, Shanghai, China
63.
Zurück zum Zitat Peng SP, Wang B, Luo ZJ (1984) Structure of atoms and molecules, complex compounds, colloid chemistry (in Chinese, ISBN 7118.814). People’s Press of Sichuan Province. Chengdu, China Peng SP, Wang B, Luo ZJ (1984) Structure of atoms and molecules, complex compounds, colloid chemistry (in Chinese, ISBN 7118.814). People’s Press of Sichuan Province. Chengdu, China
64.
Zurück zum Zitat Wang LW, Wang RZ, Wu JY, Wang K (2004) Study on adsorption characteristics of calcium chloride ammonia and its application in refrigeration. Sci China Technol (in Chinese) 34:268–279 Wang LW, Wang RZ, Wu JY, Wang K (2004) Study on adsorption characteristics of calcium chloride ammonia and its application in refrigeration. Sci China Technol (in Chinese) 34:268–279
65.
Zurück zum Zitat Peng SF (1984) Inorganic chemistry atomic structure complex colloid chemistry. Sichuan People’s Publishing House (in Chinese) Peng SF (1984) Inorganic chemistry atomic structure complex colloid chemistry. Sichuan People’s Publishing House (in Chinese)
66.
Zurück zum Zitat Zhong Y, Critoph RE, Thorpe RN, Tamainot-Telto Z, Aristov Yu (2007) Isothermal sorption characteristics of the BaCl2 -NH3 pair in a vermiculite host matrix. Appl Therm Eng 27:2455–2462CrossRef Zhong Y, Critoph RE, Thorpe RN, Tamainot-Telto Z, Aristov Yu (2007) Isothermal sorption characteristics of the BaCl2 -NH3 pair in a vermiculite host matrix. Appl Therm Eng 27:2455–2462CrossRef
67.
Zurück zum Zitat Wang LW (2005) Adsorption characteristics and mechanism of a new type of composite adsorbent and its application in high efficiency heat pipe waste heat refrigeration (in Chinese). Shanghai Jiao Tong University, Shang hai Wang LW (2005) Adsorption characteristics and mechanism of a new type of composite adsorbent and its application in high efficiency heat pipe waste heat refrigeration (in Chinese). Shanghai Jiao Tong University, Shang hai
68.
Zurück zum Zitat Cengel, YunusA (2002) Thermodynamics: an engineering approach, 4th ed. Cengel, YunusA (2002) Thermodynamics: an engineering approach, 4th ed.
69.
Zurück zum Zitat Trudel J, Hosatte S, Ternan M (1999) Solid-gas equilibrium in chemical heat pumps: the NH3-CoCl2 system. Appl Therm Eng 19:495–511CrossRef Trudel J, Hosatte S, Ternan M (1999) Solid-gas equilibrium in chemical heat pumps: the NH3-CoCl2 system. Appl Therm Eng 19:495–511CrossRef
70.
Zurück zum Zitat Aidoun Z, Ternan M (2001) Pseudo-stable transitions and instability in chemical heat pumps: the NH3-CoCl2 system. Appl Therm Eng 21:1019–1034CrossRef Aidoun Z, Ternan M (2001) Pseudo-stable transitions and instability in chemical heat pumps: the NH3-CoCl2 system. Appl Therm Eng 21:1019–1034CrossRef
71.
Zurück zum Zitat Zhou ZS, Wang LW, Jiang L et al (2016) Non-equilibrium sorption performances for composite sorbents of chlorides—ammonia working pairs for refrigeration. Int J Refrig 65:60–68CrossRef Zhou ZS, Wang LW, Jiang L et al (2016) Non-equilibrium sorption performances for composite sorbents of chlorides—ammonia working pairs for refrigeration. Int J Refrig 65:60–68CrossRef
72.
Zurück zum Zitat Simonova IA, Aristov Yu (2005) Sorption properties of calcium nitrate dispersed in silica gel: the effect of pore size. Russ J Phys Chem 79:1307–1311 Simonova IA, Aristov Yu (2005) Sorption properties of calcium nitrate dispersed in silica gel: the effect of pore size. Russ J Phys Chem 79:1307–1311
73.
Zurück zum Zitat Wang LW, Wang RZ, Oliveira RG (2009) A review on adsorption working pairs for refrigeration. Renew Sust Energy Rev 13:518–534CrossRef Wang LW, Wang RZ, Oliveira RG (2009) A review on adsorption working pairs for refrigeration. Renew Sust Energy Rev 13:518–534CrossRef
74.
Zurück zum Zitat Critoph RE (1998) Performance limitations of adsorption cycles for solar cooling. Sol Energy 41:21–31CrossRef Critoph RE (1998) Performance limitations of adsorption cycles for solar cooling. Sol Energy 41:21–31CrossRef
75.
Zurück zum Zitat Marcio S, Jose CP (2007) Optimum reference temperature for reparameterization of the Arrhenius equation. Part 1: problems involving one kinetic constant. Chem Eng Sci 62:2750–2764CrossRef Marcio S, Jose CP (2007) Optimum reference temperature for reparameterization of the Arrhenius equation. Part 1: problems involving one kinetic constant. Chem Eng Sci 62:2750–2764CrossRef
76.
Zurück zum Zitat Gao J, Wang LW, Wang RZ, Zhou ZS (2017) Solution to the sorption hysteresis by novel compact composite multi-salt sorbents. Appl Therm Eng 111:580–585CrossRef Gao J, Wang LW, Wang RZ, Zhou ZS (2017) Solution to the sorption hysteresis by novel compact composite multi-salt sorbents. Appl Therm Eng 111:580–585CrossRef
77.
Zurück zum Zitat An GL, Wang LW, Gao J, Wang RZ (2019) Mechanism of hysteresis for composite multi-halide and its superior performance for low grade energy recovery. Sci Reports 9(1):1563 An GL, Wang LW, Gao J, Wang RZ (2019) Mechanism of hysteresis for composite multi-halide and its superior performance for low grade energy recovery. Sci Reports 9(1):1563
78.
Zurück zum Zitat Daou K, Wang RZ, Xia ZZ (2006) Development of a new synthesized adsorbent for refrigeration and air conditioning applications. Appl Therm Eng 26:56–65CrossRef Daou K, Wang RZ, Xia ZZ (2006) Development of a new synthesized adsorbent for refrigeration and air conditioning applications. Appl Therm Eng 26:56–65CrossRef
79.
Zurück zum Zitat Maggio G, Gordeeva LG, Freni A, Aristov Yu, Santori G, Polonara F et al (2009) Simulation of a solid sorption ice-maker based on the novel composite sorbent lithium chloride in silica gel pores. Appl Therm Eng 29:1714–1720CrossRef Maggio G, Gordeeva LG, Freni A, Aristov Yu, Santori G, Polonara F et al (2009) Simulation of a solid sorption ice-maker based on the novel composite sorbent lithium chloride in silica gel pores. Appl Therm Eng 29:1714–1720CrossRef
80.
Zurück zum Zitat Dawoud B (2007) A hybrid solar-assisted adsorption cooling unit for vaccine storage. Renew Energy 32:947–964CrossRef Dawoud B (2007) A hybrid solar-assisted adsorption cooling unit for vaccine storage. Renew Energy 32:947–964CrossRef
81.
Zurück zum Zitat Santamaria S, Sapienza A, Frazzica A, Freni A, Girnik IS, Aristov Yu (2014) Water adsorption dynamics on representative pieces of real adsorbers for adsorptive chillers. Appl Energy 134:11–19CrossRef Santamaria S, Sapienza A, Frazzica A, Freni A, Girnik IS, Aristov Yu (2014) Water adsorption dynamics on representative pieces of real adsorbers for adsorptive chillers. Appl Energy 134:11–19CrossRef
82.
Zurück zum Zitat Sapienza A, Santamaria S, Frazzica A, Freni A, Aristov Yu (2014) Dynamic study of adsorbers by a new gravimetric version of the Large Temperature Jump method. Appl Energy 113:1244–1251CrossRef Sapienza A, Santamaria S, Frazzica A, Freni A, Aristov Yu (2014) Dynamic study of adsorbers by a new gravimetric version of the Large Temperature Jump method. Appl Energy 113:1244–1251CrossRef
83.
Zurück zum Zitat Veselovskaya JV, Tokarev MM (2011) Novel ammonia sorbents “porous matrix modified by active salt” for adsorptive heat transformation: 4. Dynamics of quasi-isobaric ammonia sorption and desorption on BaCl2 /vermiculite. Appl Therm Eng 31:566–572CrossRef Veselovskaya JV, Tokarev MM (2011) Novel ammonia sorbents “porous matrix modified by active salt” for adsorptive heat transformation: 4. Dynamics of quasi-isobaric ammonia sorption and desorption on BaCl2 /vermiculite. Appl Therm Eng 31:566–572CrossRef
84.
Zurück zum Zitat Veselovskaya JV, Tokarev MM, Grekova AD, Gordeeva LG (2010) Novel ammonia sorbents porous matrix modified by active salt for adsorptive heat transformation: 6. The ways of adsorption dynamics enhancement. Appl Therm Eng 30:584–589CrossRef Veselovskaya JV, Tokarev MM, Grekova AD, Gordeeva LG (2010) Novel ammonia sorbents porous matrix modified by active salt for adsorptive heat transformation: 6. The ways of adsorption dynamics enhancement. Appl Therm Eng 30:584–589CrossRef
85.
Zurück zum Zitat Chakraborty A, Saha BB, Ng KC, Koyama S, Srinivasan K (2009) Theoretical insight of physical adsorption for a single-component adsorbent+adsorbate system: I. Thermodynamic property surfaces. Langmuir Acs J Surf Colloids 25:2204 Chakraborty A, Saha BB, Ng KC, Koyama S, Srinivasan K (2009) Theoretical insight of physical adsorption for a single-component adsorbent+adsorbate system: I. Thermodynamic property surfaces. Langmuir Acs J Surf Colloids 25:2204
86.
Zurück zum Zitat Chakraborty A, Saha BB, Ng KC, Koyama S, Srinivasan K (2009) Theoretical insight of physical adsorption for a single component adsorbent+ adsorbate system: II. Henry Region. Langmuir 25(13):7359–7367 Chakraborty A, Saha BB, Ng KC, Koyama S, Srinivasan K (2009) Theoretical insight of physical adsorption for a single component adsorbent+ adsorbate system: II. Henry Region. Langmuir 25(13):7359–7367
Metadaten
Titel
Kinetics of Solid Composite Sorbents
verfasst von
Liwei Wang
Guoliang An
Jiao Gao
Ruzhu Wang
Copyright-Jahr
2021
Verlag
Springer Singapore
DOI
https://doi.org/10.1007/978-981-33-6088-4_4