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Year 2024, Volume: 7 Issue: 2, 55 - 65, 18.12.2024
https://doi.org/10.54565/jphcfum.1502052

Abstract

References

  • Subasi, S. (2009). Production of structural lightweight concrete with expanded clay aggregate. J. Fac. Arch. Gazi Univ., 24(3), 559-567.
  • Othman, M.L.B, Alsarayreh, A.I.M., Abdullah, R.B., Sarbini, N.N.B., Yassin, M.S.B., Ahmad, H.B. (2020). Experimental study on lightweight concrete using lightweight expanded clay aggregate (LECA) and expanded perlıte aggregate (EPA). Journal of Engineering Science and Technology. 15(2), 1186 – 1201.
  • Nahhab, A., Ketab, A.K.(2020). Influence of content and maximum size of light expanded clay aggregate on the fresh, strenght, and durability properties of self-compacting lightweight concrete reinforced with micro steel fibers. Construction and Building Materials, 233, 117922
  • Fakhfakh, E., Hajjaji, W., Medhioub, M., Rocha, F., Lopez-Galindo, A., Settim, M. (2007). Effects of sand addition on production of lightweight aggregates from Tunisian smectitr-rich clayey rocks. Applied Clay Science, 35, 228-237.
  • Rossignolo, J.A., Marcos, V.C., Jerusa, A. (2003). Properties of high-performance LWAC for precast structures with Brazilian lightweight aggregates. Cement and Concrete Composites. 25, 77-82.
  • Biçer, A. (2021). Effect of fly ash and pine tree resin on thermo-mechanical properties of concretes with expanded clay aggregates, Case Studies in Construction Materials, 15 (2021) e00624
  • Bouvard, D., Chaix, J.M., Dendievel, R., Fazekas, A., Létang, J.M., Peix, G., Quenard, D. (2007). Characterization and simulation of microstructure and properties of EC lightweight concrete, Cement and Concrete Research, 37, 1666 -1673.
  • Chen, B., Liu, J. (2004). Properties of lightweight Expanded clay concrete reinforced with steel fiber, Cement and Concrete Research, 34, 1259 — 1263.
  • Miled, K., Sab, K., Roy, R.L. (2007). Particle size effect on EC lightweight concrete compressive strength: Experimental investigation and modeling, Mechanics of Materials, 39, 222-240.
  • Xue, F., Takeda, D., Kimura, T., Minabe, M. (2004). Effect of organic peroxides on the thermal decomposition of Expanded clay with the addition of c-methyl styrene, Polymer Degradation and Stability, 83, 461-466.
  • Gnip, I., Vejelis, S., Vaitkus, S. (2012). Thermal conductivity of Expanded clay (EC) at 10 oC and its conversion to temperatures within interval from 0 to 50 oC, Energy and Buildings, 52, 107-111.
  • Bajdur, W., Pajaczkoeska, J., Makarucha, B., Sulkowski, A., Sulkowski, WW. (2002). Effective polyelectrolytes synthesized from expanded clay waste, European Polymer Journal, 38, 299-304.
  • Choi, N.W., Ohama, Y. (2004). Development and testing of polystyrene mortars using waste EC solution-based binders, Construction and Building Materials, 18, 235-241.
  • Denko, S. (1990). Shotherm Operation Manual No 125-2. K.K. Instrument products department, 13-9, Shiba Daimon, Tokyo, 105, Japan.
  • TS 699. (2009). The test and experiment methods of natural building stones, TSE, Ankara.
  • ASTM C 109-80. (1983). Standards ASTM Designation. Standard test method for compressive strength of hydraulic cement mortars.
  • Bicer, A., Celik, N. (2020). Influence of pine tree resin on thermo-mechanical properties of pumice-cement composites, Cement and Concrete Composites, 112, September, 103668.
  • BS 812-109 (1990). Standards. Testing aggregates-part 109: methods for determination of moisture content. British Standards Institution.
  • Kaya, A., Kar, F. (2016). Properties of concrete containing waste expanded polystyrene and natural resin, Construction and Building Materials, 105, 572-578.
  • Bicer, A., Kar, F. (2017). The effects of apricot resin addition to the light weight concrete with expanded polystyrene, Journal of Adhesion Science and technology, 31(21), 2335-2348.
  • Bicer, A. (2019). Influence of tragacanth resin on the thermal and mechanical properties of fly ash-cement composites”, Journal of Adhesion Science and Technology, 33(10), 1019-1032.
  • Bicer, A., Celik, N., Ozgen, F., Kistak, C., Taskiran, A. (2024). Thermomechanical properties of a concrete composed of cherry tree resin and expanded clay (exclay) aggregate, Applied Sciences, 14(1), 336.

INVESTIGATION OF EXPANDED CLAY AGGREGATE AND PINE RESIN ADDED PLASTER WITH CEMENT IN BIOMEDICAL MATERIAL STORAGE INSULATION

Year 2024, Volume: 7 Issue: 2, 55 - 65, 18.12.2024
https://doi.org/10.54565/jphcfum.1502052

Abstract

In this study, the aim was to produce cement-plaster with expanded clay aggregate and pine resin as additives to enhance the strength for the preservation of medical and biomedical materials in storage facilities, without being affected by heat and humidity, instead of traditional aggregates. In the prepared samples for the experimental study, expanded clay aggregate with particle sizes of 0-2 mm and 2-4 mm was mixed with cement binder in weight percentages of 20%, 40%, 60%, and 80%. Additionally, resin was added to the mixtures in weight percentages of 0%, 0.5%, 1%, and 2%. A total of 32 samples were produced. In the study, resin-enhanced CEM IV/B 32.5 R type pozzolanic cement were used. As the amount of resin added to the samples increased, the thermal conductivity and compressive strength decreased. The lowest thermal conductivity was observed in samples with 2-4 mm particle size, 80% expanded clay aggregate, and 2% resin content in cement-based samples at 0.152 W/mK.
The highest compressive strength was observed in cement-based samples, with 22.5 MPa for the resin-free sample containing 0-2 mm particle size and 20% expanded clay aggregate. The water absorption rate of the samples remained below the critical value of 30% in cement-based samples.

References

  • Subasi, S. (2009). Production of structural lightweight concrete with expanded clay aggregate. J. Fac. Arch. Gazi Univ., 24(3), 559-567.
  • Othman, M.L.B, Alsarayreh, A.I.M., Abdullah, R.B., Sarbini, N.N.B., Yassin, M.S.B., Ahmad, H.B. (2020). Experimental study on lightweight concrete using lightweight expanded clay aggregate (LECA) and expanded perlıte aggregate (EPA). Journal of Engineering Science and Technology. 15(2), 1186 – 1201.
  • Nahhab, A., Ketab, A.K.(2020). Influence of content and maximum size of light expanded clay aggregate on the fresh, strenght, and durability properties of self-compacting lightweight concrete reinforced with micro steel fibers. Construction and Building Materials, 233, 117922
  • Fakhfakh, E., Hajjaji, W., Medhioub, M., Rocha, F., Lopez-Galindo, A., Settim, M. (2007). Effects of sand addition on production of lightweight aggregates from Tunisian smectitr-rich clayey rocks. Applied Clay Science, 35, 228-237.
  • Rossignolo, J.A., Marcos, V.C., Jerusa, A. (2003). Properties of high-performance LWAC for precast structures with Brazilian lightweight aggregates. Cement and Concrete Composites. 25, 77-82.
  • Biçer, A. (2021). Effect of fly ash and pine tree resin on thermo-mechanical properties of concretes with expanded clay aggregates, Case Studies in Construction Materials, 15 (2021) e00624
  • Bouvard, D., Chaix, J.M., Dendievel, R., Fazekas, A., Létang, J.M., Peix, G., Quenard, D. (2007). Characterization and simulation of microstructure and properties of EC lightweight concrete, Cement and Concrete Research, 37, 1666 -1673.
  • Chen, B., Liu, J. (2004). Properties of lightweight Expanded clay concrete reinforced with steel fiber, Cement and Concrete Research, 34, 1259 — 1263.
  • Miled, K., Sab, K., Roy, R.L. (2007). Particle size effect on EC lightweight concrete compressive strength: Experimental investigation and modeling, Mechanics of Materials, 39, 222-240.
  • Xue, F., Takeda, D., Kimura, T., Minabe, M. (2004). Effect of organic peroxides on the thermal decomposition of Expanded clay with the addition of c-methyl styrene, Polymer Degradation and Stability, 83, 461-466.
  • Gnip, I., Vejelis, S., Vaitkus, S. (2012). Thermal conductivity of Expanded clay (EC) at 10 oC and its conversion to temperatures within interval from 0 to 50 oC, Energy and Buildings, 52, 107-111.
  • Bajdur, W., Pajaczkoeska, J., Makarucha, B., Sulkowski, A., Sulkowski, WW. (2002). Effective polyelectrolytes synthesized from expanded clay waste, European Polymer Journal, 38, 299-304.
  • Choi, N.W., Ohama, Y. (2004). Development and testing of polystyrene mortars using waste EC solution-based binders, Construction and Building Materials, 18, 235-241.
  • Denko, S. (1990). Shotherm Operation Manual No 125-2. K.K. Instrument products department, 13-9, Shiba Daimon, Tokyo, 105, Japan.
  • TS 699. (2009). The test and experiment methods of natural building stones, TSE, Ankara.
  • ASTM C 109-80. (1983). Standards ASTM Designation. Standard test method for compressive strength of hydraulic cement mortars.
  • Bicer, A., Celik, N. (2020). Influence of pine tree resin on thermo-mechanical properties of pumice-cement composites, Cement and Concrete Composites, 112, September, 103668.
  • BS 812-109 (1990). Standards. Testing aggregates-part 109: methods for determination of moisture content. British Standards Institution.
  • Kaya, A., Kar, F. (2016). Properties of concrete containing waste expanded polystyrene and natural resin, Construction and Building Materials, 105, 572-578.
  • Bicer, A., Kar, F. (2017). The effects of apricot resin addition to the light weight concrete with expanded polystyrene, Journal of Adhesion Science and technology, 31(21), 2335-2348.
  • Bicer, A. (2019). Influence of tragacanth resin on the thermal and mechanical properties of fly ash-cement composites”, Journal of Adhesion Science and Technology, 33(10), 1019-1032.
  • Bicer, A., Celik, N., Ozgen, F., Kistak, C., Taskiran, A. (2024). Thermomechanical properties of a concrete composed of cherry tree resin and expanded clay (exclay) aggregate, Applied Sciences, 14(1), 336.
There are 22 citations in total.

Details

Primary Language English
Subjects Materials Engineering (Other)
Journal Section Articles
Authors

Ayşe Biçer 0000-0003-4514-5644

Publication Date December 18, 2024
Submission Date June 16, 2024
Acceptance Date September 11, 2024
Published in Issue Year 2024 Volume: 7 Issue: 2

Cite

APA Biçer, A. (2024). INVESTIGATION OF EXPANDED CLAY AGGREGATE AND PINE RESIN ADDED PLASTER WITH CEMENT IN BIOMEDICAL MATERIAL STORAGE INSULATION. Journal of Physical Chemistry and Functional Materials, 7(2), 55-65. https://doi.org/10.54565/jphcfum.1502052
AMA Biçer A. INVESTIGATION OF EXPANDED CLAY AGGREGATE AND PINE RESIN ADDED PLASTER WITH CEMENT IN BIOMEDICAL MATERIAL STORAGE INSULATION. Journal of Physical Chemistry and Functional Materials. December 2024;7(2):55-65. doi:10.54565/jphcfum.1502052
Chicago Biçer, Ayşe. “INVESTIGATION OF EXPANDED CLAY AGGREGATE AND PINE RESIN ADDED PLASTER WITH CEMENT IN BIOMEDICAL MATERIAL STORAGE INSULATION”. Journal of Physical Chemistry and Functional Materials 7, no. 2 (December 2024): 55-65. https://doi.org/10.54565/jphcfum.1502052.
EndNote Biçer A (December 1, 2024) INVESTIGATION OF EXPANDED CLAY AGGREGATE AND PINE RESIN ADDED PLASTER WITH CEMENT IN BIOMEDICAL MATERIAL STORAGE INSULATION. Journal of Physical Chemistry and Functional Materials 7 2 55–65.
IEEE A. Biçer, “INVESTIGATION OF EXPANDED CLAY AGGREGATE AND PINE RESIN ADDED PLASTER WITH CEMENT IN BIOMEDICAL MATERIAL STORAGE INSULATION”, Journal of Physical Chemistry and Functional Materials, vol. 7, no. 2, pp. 55–65, 2024, doi: 10.54565/jphcfum.1502052.
ISNAD Biçer, Ayşe. “INVESTIGATION OF EXPANDED CLAY AGGREGATE AND PINE RESIN ADDED PLASTER WITH CEMENT IN BIOMEDICAL MATERIAL STORAGE INSULATION”. Journal of Physical Chemistry and Functional Materials 7/2 (December 2024), 55-65. https://doi.org/10.54565/jphcfum.1502052.
JAMA Biçer A. INVESTIGATION OF EXPANDED CLAY AGGREGATE AND PINE RESIN ADDED PLASTER WITH CEMENT IN BIOMEDICAL MATERIAL STORAGE INSULATION. Journal of Physical Chemistry and Functional Materials. 2024;7:55–65.
MLA Biçer, Ayşe. “INVESTIGATION OF EXPANDED CLAY AGGREGATE AND PINE RESIN ADDED PLASTER WITH CEMENT IN BIOMEDICAL MATERIAL STORAGE INSULATION”. Journal of Physical Chemistry and Functional Materials, vol. 7, no. 2, 2024, pp. 55-65, doi:10.54565/jphcfum.1502052.
Vancouver Biçer A. INVESTIGATION OF EXPANDED CLAY AGGREGATE AND PINE RESIN ADDED PLASTER WITH CEMENT IN BIOMEDICAL MATERIAL STORAGE INSULATION. Journal of Physical Chemistry and Functional Materials. 2024;7(2):55-6.