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Zielone kompozyty hybrydowe na osnowie polietylenu do zastosowań biomedycznych
Języki publikacji
Abstrakty
The aim of the research was to study green polyethylene hybrid composites reinforced with natural fillers. In our study the green high-density polyethylene produced from sugarcane-based ethanol was used as a matrix. The basalt fibers, corncob granules, coffee, hazelnut shells and tuff were added to the matrix. The influence of the temperature on the mechanical properties were investigated. Scanning electron microscopy was used to assess the quality of adhesion of the natural fillers to the polymer matrix.
Celem badań było wytworzenie hybrydowych kompozytów na osnowie zielonego polietylenu wzmocnionych naturalnymi napełniaczami. Polietylen o dużej gęstości wyprodukowany z trzciny cukrowej został użyty jako matryca polimerowa. Do matrycy dodawano włókna bazaltowe, śrutę kukurydzianą, kawę, łupiny orzechów laskowych i tuf. Zbadano wpływ temperatury na właściwości mechaniczne. Skaningowy mikroskop elektronowy został użyty, aby ocenić jakość adhezji naturalnych napełniaczy do polimerowej osnowy.
Wydawca
Czasopismo
Rocznik
Tom
Strony
5--9
Opis fizyczny
Bibliogr. 20 poz., rys., tab.
Twórcy
autor
- Faculty of Materials Engineering and Physics, Institute of Materials Engineering, Tadeusz Kościuszko Cracow University of Technology
autor
- Faculty of Materials Engineering and Physics, Institute of Materials Engineering, Tadeusz Kościuszko Cracow University of Technology
Bibliografia
- [1] Pilip N., Kuciel S., Kuźniar P.: Biopolymer composites for parts of rehabilitation. Engineering of Biomaterials 14 (2011) 120-123.
- [2] Szczęsny G., Kopec M., Politis D.J., Kowalewski Z.L., Łazarski A., Szolc T.A.: Review on biomaterials for orthopaedic surgery and traumatology. From past to present. Materials 15 (2022) 1-20.
- [3] Chethan K.N., Satish Shenoy B., Shyamasunder Bhat N.: Role of different orthopedic biomaterials on wear of hip joint prosthesis. A review. Materials Today Proceedings 5 (2018) 20827–20836.
- [4] Kuciel S., Jakubowska P., Kuźniar P.: A study on the mechanical properties and the influence of water uptake and temperature on biocomposites based on polyethylene from renewable sources. Composites Part B: Engineering 64 (2014) 72-77.
- [5] Kędziora G., Steller R., Czycz D., Chojnacka M., Fiłon K., Kundys A., Szewczyk M.: Otrzymywanie i właściwości poliolefin napełnianych wyekstrahowanym przemiałem kawy. Przetwórstwo Tworzyw 5 (2016) 438-444.
- [6] Boronat T., Fombuena V., Garcia-Sanoguera D., Sanchez-Nacher L., Balart R.: Development of a biocomposite based on green poly-ethylene biopolymer and eggshell. Matererials Design 68 (2015) 177-185.
- [7] Guilhen A., Gadioli R., Fernandes F.C., Waldman W.R., Aurelio De Paoli M.: High-density green polyethylene biocomposite reinforced with cellulose fibers and using lignin as antioxidant. Journal of Applied Polymer Science 134 (2017) 45219.
- [8] de Vasconcelos G.C.M.S., Carvalho L.H., Barbosa R., Alves T.S.: Evaluation of the morphology, mechanical and thermal properties of cork and green polyethylene ecocomposites. Materials Research Express 6 (2019) 095331.
- [9] Mohammed A.J.: Study the effect of adding powder walnut shells on the mechanical properties and the flame resistance for low-density polyethylene (LDPE). International Journal of Science and Technology 3 (2014) 18-22.
- [10] Fouly A., Abdo H.S., Seikh A.H., Alluhydan K., Alkhammash H.I., Alnaser I.A., Abdo M.S.: Evaluation of mechanical and tribological properties of corn cob-reinforced epoxy-based composites. Theoretical and experimental study. Polymers 13 (2021) 1-15.
- [11] Serra-Parareda F., Tarrés Q., Delgado-Aguilar M., Espinach F.X., Mutjé P., Vilaseca F.: Biobased composites from biobased-polyethylene and barley thermomechanical fibers. Micromechanics of composites. Materials 12 (2019) 1-13.
- [12] Vikas G., Sudheer M.A.: Review on properties of basalt fiber reinforced polymer composites. American Journal of Materials Science 7 (2017) 156-165.
- [13] Yu M., Mao H., Huang R., Ge Z., Tian P., Sun L., Wu Q., Sun K.: Mechanical and thermal properties of r-high density polyethylene composites reinforced with wheat straw particleboard dust and basalt fiber. International Journal of Polymer Science 2018 (2018) 1-10.
- [14] Huang R., Teng Z.: Non-isothermal crystallization and thermal degradation properties of three phase composites from wood flour, high-density polyethylene and basalt fibers. Wood Science and Technology 56 (2022) 1103-1125.
- [15] Liu W., Wu X., Liang J., Ding P., Lv Y., Zhang C.: Preparation of antibacterial and strengthened high-density polyethylene composites via compounding with silver ion glass microbead-loaded basalt fiber. Journal of Materials Engineering and Performance 31 (2022) 1493-1502.
- [16] Kakou C.A., Essabir H., Bensalah M.O., Bouhfid R., Rodrigue D., Qaiss A.: Hybrid composites based on polyethylene and coir/oil palm fibers. Journal of Reinforced Plastics and Composites 34 (2015) 1684-1697.
- [17] Yallew T.B., Kumar P., Singh I.: Mechanical behavior of nettle/wool fabric reinforced polyethylene composites. Journal of Natural Fibers 13 (2016) 610-618.
- [18] Huang R., Xu X., Lee S., Zhang Y., Kim B.J., Wu Q.: High density polyethylene composites reinforced with hybrid inorganic fillers. Morphology, mechanical and thermal expansion performance. Materials 6 (2013) 4122-4138.
- [19] Song W., Guo K., Li Z., Zhao Y., Zhu K., Yuan X.: Enhancing mechanical properties of high-density polyethylene/polydopamine-modified basalt fiber composites via synergistic compatibilizers. Polymer Composites 43 (2022) 1136-1146.
- [20] Sergi C., Tirillò J., Seghini M.C., Sarasini F., Fiore V., Scalici T.: Durability of basalt/hemp hybrid thermoplastic composites. Polymers 11 (2019) 1-17.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-61d848d5-dc44-47e5-81cd-6b97a9fb6aa1