Preparation of palygorskite-based phase change composites for thermal energy storage and their applications in Trombe walls

Tao Shi , Shanshan Li , Hao Zhang , Zexin Li , Min Zhu

Journal of Wuhan University of Technology Materials Science Edition ›› 2017, Vol. 32 ›› Issue (6) : 1306 -1317.

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Journal of Wuhan University of Technology Materials Science Edition ›› 2017, Vol. 32 ›› Issue (6) : 1306 -1317. DOI: 10.1007/s11595-017-1746-z
Advanced Materials

Preparation of palygorskite-based phase change composites for thermal energy storage and their applications in Trombe walls

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Abstract

Palygorskite/paraffin phase-change composites were prepared by the combination of purified palygorskite clay and sliced paraffin. Then, this composite was used in the Trombe wall to improve its energy storage ability. Further, its energy storage ability was compared to that of ordinary concrete wall through contrastive test. The experiments show that palygorskite clay is a type of clay mineral with strong adsorption ability, and the purity of natural palygorskite clay can reach up to 97.1% after certain purification processes. Paraffin is well adsorbed by palygorskite, and the test results show that the optimal adsorption ratio is palygorskite: paraffin = 2:1 (mass ratio). Palygorskite/paraffin phase change composites can be obtained by using palygorskite as the adsorbing medium to adsorb paraffin. The composite materials exhibit good heat storage (release) performance, which can store heat with increasing environment temperature and release heat with decreasing temperature. This property not only increases the inertia to environment temperature change, but also promotes the energy migration in different time and space, thus achieving a certain energy-saving effect. The application of palygorskite/paraffin phase change composite materials to the Trombe wall can significantly reduce the fluctuation of indoor temperature and enhance the thermal inertia of indoor environment. From the aspect of energy storage effect, the Trombe wall fabricated using PCMs is significantly superior to the concrete wall with the same thickness.

Keywords

phase change materials / palygorskite / attapulgite / trombe wall / thermal energy storage / paraffin

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Tao Shi, Shanshan Li, Hao Zhang, Zexin Li, Min Zhu. Preparation of palygorskite-based phase change composites for thermal energy storage and their applications in Trombe walls. Journal of Wuhan University of Technology Materials Science Edition, 2017, 32(6): 1306-1317 DOI:10.1007/s11595-017-1746-z

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References

[1]

Zalba B, Marin JM, Cabeza LF, et al. Review on Thermal Energy Storage with Phase Change: Materials, Heat Transfer Analysis and Applications[J]. Applied Thermal Engineering, 2003, 23(3): 251-283.

[2]

Farid MM, Khudhair AM, Razack SAK, et al. A Review on Phase Change Energy Storage: Materials and Applications[J]. Energy Conversion and Management, 2004, 45(9-10): 1 597-1 615.

[3]

Khudhair AM, Farid MM. A Review on Energy Conservation in Building Applications with Thermal Storage by Latent Heat Using Phase Change Materials[J]. Energy Conversion and Management, 2004, 45(2): 263-275.

[4]

Tyagi VV, Buddhi D. Pcm Thermal Storage in Buildings: A State of Art[J]. Renewable & Sustainable Energy Reviews, 2007, 11(6): 1 146-1 166.

[5]

Sharma A, Tyagi VV, Chen CR, et al. Review on Thermal Energy Storage with Phase Change Materials and Applications[J]. Renewable & Sustainable Energy Reviews, 2009, 13(2): 318-345.

[6]

Kuznik F, David D, Johannes K, et al. A Review on Phase Change Materials Integrated in Building Walls[J]. Renewable and Sustainable Energy Reviews, 2011, 15(1): 379-391.

[7]

Lane GA. Solar Heat Storage: Latent Heat Materials[M]. 1983 Boco Raton, FL: CRC Press.

[8]

Feldman D, Banu D, Hawes D, et al. Obtaining an Energy Storing Building Material by Direct Incorporation of an Organic-Phase Change Material in Gypsum Wallboard[J]. Solar Energy Materials, 1991, 22(2-3): 231-242.

[9]

Hawes DW, Banu D, Feldman D. The Stability of Phase-Change Materials in Concrete[J]. Solar Energy Materials and Solar Cells, 1992, 27(2): 103-118.

[10]

Hawes DW, Feldman D. Absorption of Phase-Change Materials in Concrete[J]. Solar Energy Materials and Solar Cells, 1992, 27(2): 91-101.

[11]

Kaasinen H. The Absorption of Phase-Change Substances into Commonly Used Building-Materials[J]. Solar Energy Materials and Solar Cells, 1992, 27(2): 173-179.

[12]

Hawes DW, Feldman D, Banu D. Latent-Heat Storage in Building- Materials[J]. Energy Build, 1993, 20(1): 77-86.

[13]

Feldman D, Banu D, Hawes D. Low Chain Esters of Stearic-Acid as Phase-Change Materials for Thermal-Energy Storage in Buildings[J]. Solar Energy Materials And Solar Cells, 1995, 36(3): 311-322.

[14]

Liu X, Liu HY, Wang SJ, et al. Preparation and Thermal Properties of Form Stable Paraffin Phase Change Material Encapsulation[J]. Energy Conversion And Management, 2006, 47(15-16): 2 515-2 522.

[15]

McCann JT, Marquez M, Xia Y. Melt Coaxial Electrospinning: A Versatile Method for the Encapsulation of Solid Materials and Fabrication of Phase Change Nanofibers[J]. Nano Letters, 2006, 6(12): 2 868-2 672.

[16]

Onder E, Sarier N, Cimen E. Encapsulation of Phase Change Materials by Complex Coacervation to Improve Thermal Performances of Woven Fabrics[J]. Thermochimica Acta, 2008, 467(1-2): 63-72.

[17]

Chang M-W, Stride E, Edirisinghe M. A Novel Process for Drug Encapsulation Using a Liquid to Vapour Phase Change Material[J]. Soft Matter, 2009, 5(24): 5 029-5 036.

[18]

Zhang H, Wang X, Wu D. Silica Encapsulation of N-Octadecane Via Sol-Gel Process: A Novel Microencapsulated Phase-Change Material with Enhanced Thermal Conductivity and Performance[J]. Journal of Colloid and Interface Science, 2010, 343(1): 246-255.

[19]

Shi T, Sun W, Yang Y. Preparation and Heat Storage/Release Behavior of Latent Heat Storage Gypsum-Based Building Materials[J]. Materials and Structures, 2014, 47(3): 533-539.

[20]

Shi T, Sun W, Yang Y. Characterization of Expanded Graphite Microstructure and Fabrication of Composite Phase-Change Material for Energy Storage[J]. Journal of Materials in Civil Engineering, 2015

[21]

Xu BW, Li ZJ. Paraffin/Diatomite Composite Phase Change Material Incorporated Cement-Based Composite for Thermal Energy Storage[J]. Applied Energy, 2013, 105: 229-237.

[22]

Xu BW, Li ZJ. Paraffin/Diatomite/Multi-Wall Carbon Nanotubes Composite Phase Change Material Tailor-Made for Thermal Energy Storage Cement-Based Composites[J]. Energy, 2014, 72: 371-380.

[23]

Xu BW, Ma HY, Lu ZY, et al. Paraffin/Expanded Vermiculite Composite Phase Change Material as Aggregate for Developing Lightweight Thermal Energy Storage Cement-Based Composites[J]. Applied Energy, 2015, 160: 358-367.

[24]

Fang X, Zhang Z, Chen Z. Study on Preparation of Montmorillonite-Based Composite Phase Change Materials and Their Applications in Thermal Storage Building Materials[J]. Energy conversion and management, 2008, 49(4): 718-723.

[25]

Murray HH. Traditional and New Applications for Kaolin, Smectite, and Palygorskite: A General Overview[J]. Appl Clay Sci, 2000, 17(5-6): 207-221.

[26]

Bradley WF. The Structural Scheme of Attapulgite[J]. American Mineralogist, 1940, 25(6): 405-410.

[27]

Galan E. Properties and Applications of Palygorskite-Sepiolite Clays[J]. Clay Min, 1996, 31(4): 443-453.

[28]

Murray HH. Applied Clay Mineralogy Today and Tomorrow[J]. Clay Min, 1999, 34(1): 39-49.

[29]

Liu P, Wang TM. Adsorption Properties of Hyperbranched Aliphatic Polyester. Grafted Attapulgite Towards Heavy Metal Ions[J]. Journal of Hazardous Materials, 2007, 149(1): 75-79.

[30]

Llovera J, Potau X, Medrano M, et al. Design and Performance of Energy-Efficient Solar Residential House in Andorra[J]. Applied Energy, 2011, 88(4): 1 343-1 353.

[31]

Koyunbaba BK, Yilmaz Z, Ulgen K. An Approach for Energy Modeling of a Building Integrated Photovoltaic (Bipv) Trombe Wall System[J]. Energy Build, 2013, 67: 680-688.

[32]

Saadatian O, Sopian K, Lim CH, et al. Trombe Walls: A Review of Opportunities and Challenges in Research and Development[J]. Renewable & Sustainable Energy Reviews, 2012, 16(8): 6 340-6 351.

[33]

Hordeski M. New Technologies for Energy Efficiency New York, 2011

[34]

Nelson V. Introduction to Renewable Energy, 2011

[35]

Liu Y, Feng W. Yang Q, Zhu L H, He J J. Integrating Passive Cooling and Solar Techniques into the Existing Building in South China. Advances in Civil Engineering and Architecture Innovation, 2012 3 717-3 720.

[36]

Prakash G, Garg H. Solar Energy: Fundamentals and Applications[M]. 2000

[37]

Al-Karaghouli A, Kazmerski LL. Optimization and Life-Cycle Cost of Health Clinic Pv System for a Rural Area in Southern Iraq Using Homer Software[J]. Solar Energy, 2010, 84(4): 710-714.

[38]

MELERO S, MORGADO I, NEILA FJ, et al. Passive Evaporative Cooling by Porous Ceramic Elements Integrated in a Trombe Wall[C]. Proceedings of the Architecture & Sustainable Development (vol 2): 27th International Conference on Passive and Low Energy Architecture, 2011

[39]

Ji J, Luo C, Chow T-T, et al. Thermal Characteristics of a Building-Integrated Dual-Function Solar Collector in Water Heating Mode with Natural Circulation[J]. Energy, 2011, 36(1): 566-574.

[40]

Marinosci C, Strachan P, Semprini G, et al. Empirical Validation and Modelling of a Naturally Ventilated Rainscreen Façade Building [J]. Energy Build, 2011, 43(4): 853-863.

[41]

Zhai X, Song Z, Wang R. A Review for the Applications of Solar Chimneys in Buildings[J]. Renewable and Sustainable Energy Reviews, 2011, 15(8): 3757-3767.

[42]

Tunç M, Uysal M. Passive Solar Heating of Buildings Using a Fluidized Bed Plus Trombe Wall System[J]. Applied Energy, 1991, 38(3): 199-213.

[43]

Sadineni SB, Madala S, Boehm RF. Passive Building Energy Savings: A Review of Building Envelope Components[J]. Renewable & Sustainable Energy Reviews, 2011, 15(8): 3 617-3 631.

[44]

Chow T, Hand J, Strachan P. Building-Integrated Photovoltaic and Thermal Applications in a Subtropical Hotel Building[J]. Applied Thermal Engineering, 2003, 23(16): 2 035-2 049.

[45]

Jie J, Hua Y, Gang P, et al. Study of Pv-Trombe Wall Assisted with Dc Fan[J]. Building and Environment, 2007, 42(10): 3 529-3 539.

[46]

Sun W, Ji J, Luo C, et al. Performance of Pv-Trombe Wall in Winter Correlated with South Façade Design[J]. Applied Energy, 2011, 88(1): 224-231.

[47]

Onishi J, Soeda H, Mizuno M. Numerical Study on a Low Energy Architecture Based Upon Distributed Heat Storage System[J]. Renewable Energy, 2001, 22(1): 61-66.

[48]

Cabeza LF, Castellon C, Nogues M, et al. Use of Microencapsulated Pcm in Concrete Walls for Energy Savings[J]. Energy Build, 2007, 39(2): 113-119.

[49]

Khalifa AJN, Abbas EF. A Comparative Performance Study of Some Thermal Storage Materials Used for Solar Space Heating[J]. Energy Build, 2009, 41(4): 407-415.

[50]

Zalewski L, Joulin A, Lassue S, et al. Experimental Study of Small- Scale Solar Wall Integrating Phase Change Material[J]. Solar Energy, 2012, 86(1): 208-219.

[51]

Jiquan X, Yesen F, Liwen L. Discovery and Significance of Attapulgite of Xiaopanshan of Liuhe in Jiangsu Province[J]. Chinese Science Bulletin, 1980, 25(11): 513-515.

[52]

Yesen F. Attapulgite in Jiangsu-Anhui Region[J]. Journal of Nanjing University, 1990, 26(1): 15

[53]

Fei X, Lin Y, Yuanfeng C, et al. Quantitative Analysis of X-Ray Diffraction for Palygorskite within Attapulgite Clay[J]. Geological Journal of China Universities, 2005, 11(3): 453-458.

[54]

Zhen L, Lin Y, Fei X. Comment on. Quantitative Analysis of X-Ray Diffraction for Palygorskite within Attapulgite Clay[J]. Geological Journal of China Universities, 2006, 12(3): 410-412.

[55]

Simpson S. Hydrogen-Isotope Exchange Behavior of Palygorskite at 22 °C[D]. 1997 Ontario: The University of Western Ontario.

[56]

Gonzalez F, Pesquera C, Blanco C, et al. Structural and Textural Evolution of Al-and Mg-Rich Palygorskites, I. Under Acid Treatment [J]. Appl Clay Sci, 1989, 4(4): 373-388.

[57]

Pasupathy A, Velraj R, Seeniraj R. Phase Change Material-Based Building Architecture for Thermal Management in Residential and Commercial Establishments[J]. Renewable and Sustainable Energy Reviews, 2008, 12(1): 39-64.

[58]

Lee T, Hawes DW, Banu D, et al. Control Aspects of Latent Heat Storage and Recovery in Concrete[J]. Solar Energy Materials And Solar Cells, 2000, 62(3): 217-237.

[59]

Sarier N, Onder E. Organic Phase Change Materials and Their Textile Applications: An Overview[J]. Thermochimica Acta, 2012, 540: 7-60.

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