The Effects of Processing Parameters and AC Foaming Agent on the Mechanical Properties and Morphology of Foamed Wood-Polylactic Acid (PLA) Composites

被引:4
作者
Ge, Zhenghao [1 ]
Qi, Zhi [1 ]
Si, Dange [1 ]
Yu, Min [1 ]
机构
[1] Shaanxi Univ Sci & Technol, Mech & Elect Engn Inst, Xian 710021, Shaanxi, Peoples R China
关键词
Biodegradable; Processing parameters; Foaming agent; Mechanical properties; Morphology; POLY(LACTIC ACID)/STARCH; BIODEGRADABLE FOAMS; SIZE; BIOCOMPOSITES;
D O I
10.15376/biores.13.1.1605-1618
中图分类号
TB3 [工程材料学]; TS [轻工业、手工业、生活服务业];
学科分类号
0805 ; 080502 ; 0822 ;
摘要
Wood flour, PLA, and other additives were mixed evenly in a high speed mixing machine. The granules were prepared by melt blending and extrusion granulating with a twin-screw extruder, and test specimens were molded by a plate curing machine. By changing the heating temperature, the molding pressure, the holding pressure time, and azodicarbonamide (AC foaming agent) contents, the influences of four factors on the apparent density, the mechanical properties, and the morphology of the biodegradable foamed WPCs were investigated. The best processing parameters and the optimum AC foaming agent content were obtained. When heating temperature was 178 degrees C, heating time was 10 min, holding pressure time was 25 s, and molding pressure was 7 MPa, the test specimen was lighter in color, with a smooth surface and dense, uniform cross section. The mechanical properties (flexural strength and impact strength) of the foamed WPCs were relatively good. When adding 1% AC foaming agent, the foamed WPCs showed uniformly distributed microcellular structure, and the average pore diameter was about 67 mu m. The density was reduced by 18.6%, and the flexural strength and impact strength were increased by 128.6% and 40%, respectively, compared with non-foamed WPCs.
引用
收藏
页码:1605 / 1618
页数:14
相关论文
共 25 条
[1]  
[Anonymous], 2010, ASTM D256-10
[2]  
[Anonymous], 2008, THESIS
[3]  
ASTM, 2010, D79010 ASTM
[4]   Biocomposites based on Alfa fibers and starch-based biopolymer [J].
Belhassen, R. ;
Boufi, S. ;
Vilaseca, F. ;
Lopez, J. P. ;
Mendez, J. A. ;
Franco, E. ;
Pelach, M. A. ;
Mutje, P. .
POLYMERS FOR ADVANCED TECHNOLOGIES, 2009, 20 (12) :1068-1075
[5]   Effects of the chemical foaming agents, injection parameters, and melt-flow index on the microstructure and mechanical properties of microcellular injection-molded wood-fiber/polypropylene composites [J].
Bledzki, AK ;
Faruk, O .
JOURNAL OF APPLIED POLYMER SCIENCE, 2005, 97 (03) :1090-1096
[6]   Cellular biocomposites from polylactide and microfibrillated cellulose [J].
Boissard, Carole I. R. ;
Bourban, Pierre-Etienne ;
Plummer, Christopher John G. ;
Neagu, Razvan Cristian ;
Manson, Jan-Anders E. .
JOURNAL OF CELLULAR PLASTICS, 2012, 48 (05) :445-458
[7]  
Farsheh AT, 2011, BIORESOURCES, V6, P841
[8]   Microstructure and thermal stability of polypropylene/bagasse composite foams: Design of optimum void fraction using response surface methodology [J].
Ghanbar, Sadegh ;
Yousefzade, Omid ;
Hemmati, Farkhondeh ;
Garmabi, Hamid .
JOURNAL OF THERMOPLASTIC COMPOSITE MATERIALS, 2016, 29 (06) :799-816
[9]   Critical processing temperature in the manufacture of fine-celled plastic/wood-fiber composite foams [J].
Guo, G ;
Rizvi, GM ;
Park, CB ;
Lin, WS .
JOURNAL OF APPLIED POLYMER SCIENCE, 2004, 91 (01) :621-629
[10]  
Iannace S, 2007, JOURNAL OF APPLIED P, V79, P1084, DOI [10.1002/1097-4628(20010207)79:61084::AID-APP1203.0.00,2-J, DOI 10.1002/1097-4628(20010207)79:6<1084::AID-APP120>3.0.CO