TY - GEN
T1 - Mechanical properties of untreated and alkaline treated fibers from zalacca midrib wastes
AU - Raharjo, Wahyu Purwo
AU - Soenoko, Rudy
AU - Purnowidodo, Anindito
AU - Choiron, Mochammad Agus
AU - Triyono,
N1 - Publisher Copyright:
© 2016 AIP Publishing LLC.
PY - 2016/3/29
Y1 - 2016/3/29
N2 - The environmental concern has been raised due to the abundance of waste from synthetic materials which cannot be biodegraded after their life-Time. It provides opportunity to exploit natural resources which are neglected. For example, midrib wastes from zalacca plants after cutting are able to utilize as composite reinforcement. The aim of this research was to characterize the mechanical properties of zalacca midrib fibers. As other ones, zalacca midrib fibers consisted of cellulose, hemicellulose and lignin, which their compositions were 42.54, 34.35 and 28.01 % respectively. To raise their cellulose content, the zalacca fibers were alkaline treated by immersion in the sodium hydroxide for 2 hours and rinsing in the distilled water. The concentration of sodium hydroxide was varied 1 and 5%. To investigate the influence of alkaline treatment, the mechanical testing and morphological analysis was performed. The tensile testing was done to obtain ultimate strength, elastic modulus and strain to fracture. The surface morphology of fibers was observed by SEM. The average ultimate tensile strength of zalacca fibers ranged from 182.12MPa (untreated) to 417.94MPa (5%NaOH treated). The diameter measurement showed that the alkaline treatment reduce the average fiber diameters due to the decline of the hemicellulose and lignin content as fiber matrix. This caused the increase of the tensile strength and elastic modulus due to the reduction of diameters as divider meanwhile the cellulose content as structural supporter of the fibers was relatively constant. From the SEM analysis, it was shown that the alkaline treatment reduced the fiber matrix so that its surface morphology became rougher due to the microfibrils appearance.
AB - The environmental concern has been raised due to the abundance of waste from synthetic materials which cannot be biodegraded after their life-Time. It provides opportunity to exploit natural resources which are neglected. For example, midrib wastes from zalacca plants after cutting are able to utilize as composite reinforcement. The aim of this research was to characterize the mechanical properties of zalacca midrib fibers. As other ones, zalacca midrib fibers consisted of cellulose, hemicellulose and lignin, which their compositions were 42.54, 34.35 and 28.01 % respectively. To raise their cellulose content, the zalacca fibers were alkaline treated by immersion in the sodium hydroxide for 2 hours and rinsing in the distilled water. The concentration of sodium hydroxide was varied 1 and 5%. To investigate the influence of alkaline treatment, the mechanical testing and morphological analysis was performed. The tensile testing was done to obtain ultimate strength, elastic modulus and strain to fracture. The surface morphology of fibers was observed by SEM. The average ultimate tensile strength of zalacca fibers ranged from 182.12MPa (untreated) to 417.94MPa (5%NaOH treated). The diameter measurement showed that the alkaline treatment reduce the average fiber diameters due to the decline of the hemicellulose and lignin content as fiber matrix. This caused the increase of the tensile strength and elastic modulus due to the reduction of diameters as divider meanwhile the cellulose content as structural supporter of the fibers was relatively constant. From the SEM analysis, it was shown that the alkaline treatment reduced the fiber matrix so that its surface morphology became rougher due to the microfibrils appearance.
UR - https://www.scopus.com/pages/publications/84984573548
U2 - 10.1063/1.4943461
DO - 10.1063/1.4943461
M3 - Conference contribution
AN - SCOPUS:84984573548
T3 - AIP Conference Proceedings
BT - Sustainable Energy and Advanced Materials
A2 - Triyono, null
A2 - Rivai, Ahmad
A2 - Wijayanta, Agung Tri
PB - American Institute of Physics Inc.
T2 - 4th International Conference and Exhibition on Sustainable Energy and Advanced Materials 2015, ICE-SEAM 2015
Y2 - 11 November 2015 through 12 November 2015
ER -