Evaluation of the Effects of Hemp Fiber Addition on Fracture Strength, Acrylic Tooth Bonding and Water Absorption of Polymethyl Methacrylate
Year 2025,
Volume: 12 Issue: 1, 14 - 19, 21.04.2025
Fatma Dilara Baysan
,
Süha Kuşçu
,
Nesrin Korkmaz
,
Nilüfer Çelebi
Abstract
ABSTRACT
Background: In this study, it was aimed to evaluate the effect of adding hemp fiber to polymethyl methacrylate (PMMA), the most commonly used heat-polymerized base material for dental prosthesis, on the fracture strength of the denture, its connection to the acrylic tooth and water absorption.
Methods: Three main working groups were formed in this study: PMMA (group-A) with the addition of raw hemp fiber, PMMA (group-B) with the addition of lignin and pectin removed hemp fiber, and PMMA without added fiber (group-C). Shear bond strength test was performed to evaluate how the addition of hemp fiber to PMMA affects the connection to the acrylic tooth. Three-point bending test was applied to measure the breaking strength of the base material. The effect of adding hemp fiber to PMMA on water absorption was evaluated.
Results: There was no statistically significant difference between the study groups in terms of shear bond strength test mean values (p=0.122). There was no statistically significant difference between the study groups in terms of three-point bending test mean values (p=0.140). In this study, it was determined that the addition of raw and chemically treated hemp fiber significantly reduced the water absorption of the acrylic base material (p<0.001).
Conclusions: It has been observed that the addition of hemp fiber in two different forms (raw and processed) to the PMMA reduces the water absorption of this material. It was determined that the addition of hemp fiber did not have a significant effect on the connection of the base to the acrylic tooth and its fracture strength.
Keywords: denture prosthesis, hemp, PMMA
Supporting Institution
Yozgat Bozok University Scientific Research Projects Coordination Unit
Project Number
THD-2022-983
Thanks
I would like to thank Yozgat Bozok University Scientific Research Projects Coordination Unit for supporting funding for this project.
References
- 1. Thomas TC, K AK, Mohamed S, Krishnan V, Mathew A, V M. The effect on the flexural strength, flexural modulus and compressive strength of fibre reinforced acrylic with that of plain unfilled acrylic resin - an in vitro study. Journal of clinical and diagnostic research : JCDR. 2015;9(3):Zc12-14.
- 2. Frazer RQ, Byron RT, Osborne PB, West KP. PMMA: an essential material in medicine and dentistry. Journal of long-term effects of medical implants. 2005;15(6).
- 3. Faot F, Costa MA, Cury AADB, Garcia RCR. Impact strength and fracture morphology of denture acrylic resins. The Journal of prosthetic dentistry. 2006;96(5):367-373.
- 4. Sukumaran K, Ravindran S. Comparative Evaluation of the Flexural Strength of Heat-Activated Polymethyl Methacrylate Denture Base Resin With and Without 0.2% by the Weight of Silver Nanoparticles Cured by Conventional and Autoclave Methods: An In Vitro Study. Cureus. 2024 Jun 19;16(6):e62675.
- 5. Tomar P, Chandra Gope P. Effect of glass fiber and nylon fiber reinforcement on the mechanical and thermal properties of styrene butadiene rubber mixed PMMA denture base material. Journal of the Mechanical Behavior of Biomedical Materials. 2024 Feb;150:106308.
- 6. Yerliyurt K, Taşdelen TB, Eğri Ö, Eğri S. Flexural Properties of Heat-Polymerized PMMA Denture Base Resins Reinforced with Fibers with Different Characteristics. Polymers (Basel). 2023 Jul 28;15(15):3211.
- 7. Soygun K, Bolayir G, Boztug A. Mechanical and thermal properties of polyamide versus reinforced PMMA denture base materials. The journal of advanced prosthodontics. 2013;5(2):153.
- 8. Farina AP, Cecchin D, Soares RG, et al. Evaluation of Vickers hardness of different types of acrylic denture base resins with and without glass fiber reinforcement. Gerodontology. 2012;29(2):e155-e160.
- 9. Vallittu PK. Comparison of the in vitro fatigue resistance of an acrylic resin removable partial denture reinforced with continuous glass fibers or metal wires. Journal of Prosthodontics. 1996;5(2):115-121.
- 10. Vijaysinh Mori H, Jadhav R, Sabane A, Patil A, Gachake A, Gurunath Kalsekar B. An In Vitro Study Comparing the Impact and Flexural Strength of Leucitone 199 Denture Base Resin and Conventional Denture Base Resin Enhanced With Glass Fibre Mesh and Polyethylene Fibre Mesh. Cureus. 2023 Sep 25;15(9):e45935.
- 11. Okeke KN, Vahed A, Singh S. Improving the strength properties of denture base acrylic resins using hibiscus sabdariffa natural fiber. Journal of International Dental and Medical Research. 2018;11(1):248-254.
- 12. Ahmed S, Salih W. Mechanical properties of acrylic laminations resin (PMMA) reinforced by natural nanoparticles and hemp fibers. Paper presented at: IOP Conference Series: Materials Science and Engineering2021.
- 13. Andre CM, Hausman J-F, Guerriero G. Cannabis sativa: the plant of the thousand and one molecules. Frontiers in plant science. 2016;7:19.
- 14. Lacasse H, Kolodinsky J. Consumer trends and the consumption of industrial hemp-based products. In: Industrial Hemp. Elsevier; 2022:367-381.
- 15. Faruk O, Bledzki AK, Fink H-P, Sain M. Biocomposites reinforced with natural fibers: 2000–2010. Progress in polymer science. 2012;37(11):1552-1596.
- 16. Shahzad A. Hemp fiber and its composites–a review. Journal of composite materials. 2012;46(8):973-986.
- 17. Zhao J, Xu Y, Wang W, Griffin J, Roozeboom K, Wang D. Bioconversion of industrial hemp biomass for bioethanol production: A review. Fuel. 2020;281:118725.
- 18. Ji A, Jia L, Kumar D, Yoo CG. Recent advancements in biological conversion of industrial hemp for biofuel and value-added products. Fermentation. 2021;7(1):6.
- 19. Gunnarsson IB, Kuglarz M, Karakashev D, Angelidaki I. Thermochemical pretreatments for enhancing succinic acid production from industrial hemp (Cannabis sativa L.). Bioresource Technology. 2015;182:58-66.
- 20. Rajkumar S, Tjong J, Nayak S, Sain M. Wetting behavior of soy-based resin and unsaturated polyester on surface-modified sisal fiber mat. Journal of Reinforced Plastics and Composites. 2015;34(10):807-818.
- 21. Chen SY, Liang WM, Yen PS. Reinforcement of acrylic denture base resin by incorporation of various fibers. Journal of Biomedical Materials Research: An Official Journal of The Society for Biomaterials, The Japanese Society for Biomaterials, and The Australian Society for Biomaterials and the Korean Society for Biomaterials. 2001;58(2):203-208.
- 22. Monteiro DR, Gorup LF, Takamiya AS, de Camargo ER, Filho ACR, Barbosa DB. Silver distribution and release from an antimicrobial denture base resin containing silver colloidal nanoparticles. Journal of Prosthodontics: Implant, Esthetic and Reconstructive Dentistry. 2012;21(1):7-15.
- 23. John J, Ann Mani S, Palaniswamy K, Ramanathan A, Razak AAA. Flexural properties of poly (Methyl Methacrylate) resin reinforced with oil palm empty fruit bunch fibers: a preliminary finding. Journal of Prosthodontics. 2015;24(3):233-238.
- 24. Xu J, Li Y, Yu T, Cong L. Reinforcement of denture base resin with short vegetable fiber. Dental materials. 2013;29(12):1273-1279.
Kenevir Lifi İlavesinin Polimetil Metakrilatın Kırılma Dayanımı, Akrilik Dişe Bağlantısı ve Su Emilimi Üzerindeki Etkilerinin Değerlendirilmesi
Year 2025,
Volume: 12 Issue: 1, 14 - 19, 21.04.2025
Fatma Dilara Baysan
,
Süha Kuşçu
,
Nesrin Korkmaz
,
Nilüfer Çelebi
Abstract
ÖZ
Amaç: Bu çalışmada kenevir lifinin diş hekimliğinde protez yapımında en sık kullanılan ısıyla polimerize olan kaide materyali polimetil metakrilata (PMMA) ilave edilmesinin protezin kırılma dayanımı, akrilik dişe bağlantısı ve su emilimi üzerine etkisinin değerlendirilmesi amaçlanmıştır.
Gereç ve yöntem: Bu çalışmada; işlem görmemiş ham kenevir lif ilave edilen PMMA (grup-A), lignin ve pektin uzaklaştırılmış (kimyasal ön işlem görmüş) kenevir lifi ilave edilen PMMA (grup-B) ve lif ilave edilmeyen PMMA (grup-C) olmak üzere üç ana çalışma grubu oluşturulmuştur. PMMA’ya kenevir lif ilavesinin akrilik diş materyaline bağlantıyı nasıl etkilediğini değerlendirmek için makaslama testi yapılmıştır. Kaide materyalinin kırılma dayanımını ölçmek için 3 nokta bükme testi uygulanmıştır. PMMA’ya kenevir lif ilavesinin su emilimi üzerindeki etkisi değerlendirilmiştir.
Bulgular: Çalışma grupları arasında makaslama testi ortalama değerleri açısından istatistiksel olarak anlamlı bir fark bulunmamıştır (p=0,122). Çalışma grupları arasında 3 nokta bükme testi ortalama değerleri açısından istatistiksel olarak anlamlı bir fark bulunmamıştır (p=0,140). Bu çalışmada ham ve kimyasal işlem görmüş kenevir lifi ilavesinin akrilik kaide materyalinin su emilimini istatistiksel olarak anlamlı derecede azalttığı tespit edilmiştir (p<0,001).
Sonuçlar: Dental protez yapımında kaide materyali olarak kullanılan PMMA’ya kenevir lifinin iki farklı formda (saf ve işlem görmüş) ilavesinin kaide materyalinin su emilimini azalttığı görülmüştür. Kenevir lif ilavesinin kaidenin akrilik dişe bağlantısı ve kırılma dayanımı üzerine anlamlı etkisi bulunmadığı tespit edilmiştir.
Anahtar Kelimeler: dental protez, kenevir, PMMA
Project Number
THD-2022-983
References
- 1. Thomas TC, K AK, Mohamed S, Krishnan V, Mathew A, V M. The effect on the flexural strength, flexural modulus and compressive strength of fibre reinforced acrylic with that of plain unfilled acrylic resin - an in vitro study. Journal of clinical and diagnostic research : JCDR. 2015;9(3):Zc12-14.
- 2. Frazer RQ, Byron RT, Osborne PB, West KP. PMMA: an essential material in medicine and dentistry. Journal of long-term effects of medical implants. 2005;15(6).
- 3. Faot F, Costa MA, Cury AADB, Garcia RCR. Impact strength and fracture morphology of denture acrylic resins. The Journal of prosthetic dentistry. 2006;96(5):367-373.
- 4. Sukumaran K, Ravindran S. Comparative Evaluation of the Flexural Strength of Heat-Activated Polymethyl Methacrylate Denture Base Resin With and Without 0.2% by the Weight of Silver Nanoparticles Cured by Conventional and Autoclave Methods: An In Vitro Study. Cureus. 2024 Jun 19;16(6):e62675.
- 5. Tomar P, Chandra Gope P. Effect of glass fiber and nylon fiber reinforcement on the mechanical and thermal properties of styrene butadiene rubber mixed PMMA denture base material. Journal of the Mechanical Behavior of Biomedical Materials. 2024 Feb;150:106308.
- 6. Yerliyurt K, Taşdelen TB, Eğri Ö, Eğri S. Flexural Properties of Heat-Polymerized PMMA Denture Base Resins Reinforced with Fibers with Different Characteristics. Polymers (Basel). 2023 Jul 28;15(15):3211.
- 7. Soygun K, Bolayir G, Boztug A. Mechanical and thermal properties of polyamide versus reinforced PMMA denture base materials. The journal of advanced prosthodontics. 2013;5(2):153.
- 8. Farina AP, Cecchin D, Soares RG, et al. Evaluation of Vickers hardness of different types of acrylic denture base resins with and without glass fiber reinforcement. Gerodontology. 2012;29(2):e155-e160.
- 9. Vallittu PK. Comparison of the in vitro fatigue resistance of an acrylic resin removable partial denture reinforced with continuous glass fibers or metal wires. Journal of Prosthodontics. 1996;5(2):115-121.
- 10. Vijaysinh Mori H, Jadhav R, Sabane A, Patil A, Gachake A, Gurunath Kalsekar B. An In Vitro Study Comparing the Impact and Flexural Strength of Leucitone 199 Denture Base Resin and Conventional Denture Base Resin Enhanced With Glass Fibre Mesh and Polyethylene Fibre Mesh. Cureus. 2023 Sep 25;15(9):e45935.
- 11. Okeke KN, Vahed A, Singh S. Improving the strength properties of denture base acrylic resins using hibiscus sabdariffa natural fiber. Journal of International Dental and Medical Research. 2018;11(1):248-254.
- 12. Ahmed S, Salih W. Mechanical properties of acrylic laminations resin (PMMA) reinforced by natural nanoparticles and hemp fibers. Paper presented at: IOP Conference Series: Materials Science and Engineering2021.
- 13. Andre CM, Hausman J-F, Guerriero G. Cannabis sativa: the plant of the thousand and one molecules. Frontiers in plant science. 2016;7:19.
- 14. Lacasse H, Kolodinsky J. Consumer trends and the consumption of industrial hemp-based products. In: Industrial Hemp. Elsevier; 2022:367-381.
- 15. Faruk O, Bledzki AK, Fink H-P, Sain M. Biocomposites reinforced with natural fibers: 2000–2010. Progress in polymer science. 2012;37(11):1552-1596.
- 16. Shahzad A. Hemp fiber and its composites–a review. Journal of composite materials. 2012;46(8):973-986.
- 17. Zhao J, Xu Y, Wang W, Griffin J, Roozeboom K, Wang D. Bioconversion of industrial hemp biomass for bioethanol production: A review. Fuel. 2020;281:118725.
- 18. Ji A, Jia L, Kumar D, Yoo CG. Recent advancements in biological conversion of industrial hemp for biofuel and value-added products. Fermentation. 2021;7(1):6.
- 19. Gunnarsson IB, Kuglarz M, Karakashev D, Angelidaki I. Thermochemical pretreatments for enhancing succinic acid production from industrial hemp (Cannabis sativa L.). Bioresource Technology. 2015;182:58-66.
- 20. Rajkumar S, Tjong J, Nayak S, Sain M. Wetting behavior of soy-based resin and unsaturated polyester on surface-modified sisal fiber mat. Journal of Reinforced Plastics and Composites. 2015;34(10):807-818.
- 21. Chen SY, Liang WM, Yen PS. Reinforcement of acrylic denture base resin by incorporation of various fibers. Journal of Biomedical Materials Research: An Official Journal of The Society for Biomaterials, The Japanese Society for Biomaterials, and The Australian Society for Biomaterials and the Korean Society for Biomaterials. 2001;58(2):203-208.
- 22. Monteiro DR, Gorup LF, Takamiya AS, de Camargo ER, Filho ACR, Barbosa DB. Silver distribution and release from an antimicrobial denture base resin containing silver colloidal nanoparticles. Journal of Prosthodontics: Implant, Esthetic and Reconstructive Dentistry. 2012;21(1):7-15.
- 23. John J, Ann Mani S, Palaniswamy K, Ramanathan A, Razak AAA. Flexural properties of poly (Methyl Methacrylate) resin reinforced with oil palm empty fruit bunch fibers: a preliminary finding. Journal of Prosthodontics. 2015;24(3):233-238.
- 24. Xu J, Li Y, Yu T, Cong L. Reinforcement of denture base resin with short vegetable fiber. Dental materials. 2013;29(12):1273-1279.