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Technical Paper

Biodegradable Green Composite Boards for Industrial Application

2008-10-07
2008-01-2625
Western Canada has large acreage of oilseed flax, but unfortunately a small percentage of total crop residue (flax straw) produced annually is being commercially used. Therefore, farmers are still burning the flax straw. Flax fiber and straw has highest strength amongst the different natural fibers, therefore, the prospect of using them as biorenewable reinforcement in recycled/ virgin polymer matrices has gained attention in recent years. Flax strawboard has a potential to replace the currently used wood and other crop like wheat/barley straw boards for different industrial application. In this research Oilseed flax straw reinforced composite boards were developed using flax shives with biopolymer binder made out of recycled/ pure thermo plastic and flax fiber. Some advantages of such materials are high strength, low density, good insulation capacity against heat and moisture transfer, and biodegradability.
Journal Article

Development of Flax Fibre Reinforced Biocomposites for Potential Application for Automotive Industries

2009-10-06
2009-01-2867
{ Natural fibre-reinforced composite has the potential to replace current materials used for automotive industrial applications. Oilseed flax fibre could be used as reinforcement for composites because it is readily available, environmentally friendly and possesses good mechanical properties. In this research, oilseed flax fibre reinforced-LLDPE and -HDPE biocomposites were developed through extrusion and injection molding. The flax fibre was chemically treated to improve the bond between the fibre and polymer. Flax fibre was mixed with low linear density polyethylene (LLDPE) and high density polyethylene (HDPE) with fibre content varying from 10 to 30% by mass and processed by extrusion and injection molding to biocomposites. The mechanical properties, surface properties, and thermal properties of biocomposites were measured to analyze the treatment and processing effect and to compare the effect of different flax fibre concentrations on the biocomposites.
Journal Article

Development of Rubber and Agricultural Fiber based Biocomposite for Industrial Application

2008-10-07
2008-01-2626
Flax, which is known for its linens and oils that are used for industrial products, can also be utilized as a cost effective and environmentally acceptable approach to the creation of a partially biodegradable biocomposite. Biocomposite material is investigated by combining recycled tire rubber, flax and linear low density polyethylene (LLDPE). The manufacturing process which be used to fabricate the biocomposite product included Extrusion and Compression Molding. Optimizing and studying the composition percentages of the compounds were studied in this paper. Moreover, the properties of the product were observed by using tensile test, tearing test, water absorption test, hardness test and Differential Scanning Calorimetry.
Technical Paper

Development of a Durability Tester for Pelleted and Cubed Animal Feed

1999-09-14
1999-01-2830
Pelleted animal feeds are processed from ground and mixed feedstocks. The ingredients are pressed through an array of dies at pressures exceeding 35 MPa. Cubing is a related process, producing larger, more fibrous blocks from chopped materials. The end product is a hardened agglomerated mass that needs to be capable of withstanding subsequent handling operations. The measurement of the durability of the product is very important to the processors and feed handlers. The existing ASAE durability tester (S267) is not adequately sensitive to compare the hardness of pellets and cubes. A new tester, with a working principle based on impact and shear, has been developed and refined for usability. The unit can accommodate pelleted and cubed material varying in size and hardness. The paper discusses the development history of the unit and presents some experimental data from its application.
Technical Paper

Seedling Emergence Simulation Using Mechanical Probes

1992-09-01
921618
Understanding the Relationships between plants and soil is important in the development of methods of crop production. Although physical properties of soil conducive to plant growth can be recognized by experienced observers, many of these properties have not been defined satisfactorily in mathematical or physical terms. A method of measuring penetration resistance and energy exerted by a mechanical seedling (a steel probe simulating a seedling) as it moved upward through the soil surface under different levels of surface compaction and soil moisture was examined. Mechanical seedlings with 2.06, 3.19 and 4.65 mm tip diameters were tested at soil moisture levels of 13, 17, and 20%. The penetration rate of the mechanical seedling while moving through the soil was held constant at 10 mm/min. Results showed that the emergence energy increased directly with soil surface compaction pressure, initial soil moisture content, and mechanical seedling diameters.
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