发表在|News|Biomaterials

小麦可以用作生物复合材料吗?

正在探索生物复合材料在材料欧洲杯足球竞彩科学和工程中的潜在应用。欧洲杯线上买球一项于2021年发表在《期刊》上的研究Polymershas demonstrated the development of biocomposite materials from one of the most widely grown crops in the world: wheat.

学习:Wheat Biocomposite Extraction, Structure, Properties and Characterization. Image Credit: YRABOTA/Shutterstock.com

What are Biocomposite Materials?

Biocomposite materials are produced from natural instead of synthesized materials such as carbon fiber and glass or epoxy resins. Biocomposites are more sustainable than their synthetic counterparts; they do not require fossil-fuel intensive manufacturing processes or harsh chemical reagents and are disposable. Their biodegradability allows them to be composted at the end of their life. They have comparable mechanical properties to synthetic alternatives.

Biocomposite materials can be fabricated from many natural sources. Hemp, wool, silk, bamboo, hair, and flax fibers can be obtained from different plant and animal sources. Rubber and polyester are commonly used naturally sourced matrix materials.

Plants are the most useful source of biopolymers due to quality, quantity, and availability. However, physical properties of plant materials vary, such as thickness, water solubility, and density. Furthermore, variations in the chemical and physical properties of plant-derived materials such as their degree of crystallization and polymerization make them suitable for biocomposite materials research.

由于其卓越的可持续性,生物复合材料也称为绿色复合材料。

生物复合材料的潜在用途欧洲杯足球竞彩

由于它们的生物相容性,无毒性和性能,生物复合材料显示出对多个行业的潜力。

They are a focus of research exploring their use as materials for medical devices, furniture, construction materials, packaging, and insulation. These organic-derived materials create vast opportunities for environmental sustainability by replacing artificial plastics and other ecologically damaging materials in common use around the world.

为什么小麦是生物复合材料的有吸引力的替代品欧洲杯足球竞彩

Wheat is a cheap, widely cultivated crop. There are many elements that make wheat an attractive target for biocomposite materials research: wheat gluten, starch, and fiber all have mechanical and physical properties that make them crucial to the global biopolymer industry.

本地小麦淀粉的形态。图片来源:Mohammed,A.A.B.A等人,聚合物

Wheat fiber develops thermal and mechanical properties as a result of different matrices, and gluten is biodegradable, non-toxic, elastic, and water-insoluble.

Glycerol increases the water vapor permeability and elongation of wheat films. Wheat starch is used as a biopolymer film, either with or without additional fillers. Wheat fiber is used as a reinforcement filler for the material matrix.

The abundance of wheat and its utilization in the food and biofuel industries also creates a lot of waste. This makes the wheat byproducts a cheap, non-toxic, sustainable, and endlessly renewable source of important composite materials.

小麦生物复合材料的制造

Biocomposite materials are fabricated by reinforcing natural lignocellulosic fibers with polymer composites. The mechanical properties of reinforced fiber composites depend on four factors: fiber type, content/loading, orientation and dispersion, and adhesion between fibers and the polymer matrix. This results in good levels of adhesion, ensuring stress transfer from matrix to filler.

基于小麦面筋的产品是通过挤出,压缩成型或铸造产生的。包含亲水性增塑剂对于膜的柔韧性和热处理至关重要,并导致机械性能变化。

Furthermore, adding protein to the biocomposite also improves mechanical properties.

基于生物聚合物的麦淀粉(AC)的形态分别代表麦甘油的0%,20%和50%的麦淀粉生物聚合物表面,而(D – F)代表小麦淀粉生物聚合物横截面,为0、20和50%甘油分别。图片来源:Mohammed,A.A.B.A等人,聚合物

Many studies have been carried out on wheat biocomposites. Techniques such as mixing and compression molding, solution-casting, and extrusion and injection molding have been explored for the fabrication of these important biomaterials. Various polymers have been explored to strengthen wheat biocomposites including natural rubber, modified potato starch, polylactic acid (PLA), and polyester resin.

Using PLA produced the highest tensile strength and tensile modulus.

Furthermore, incorporating wheat fibers into wheat gluten has been explored by Monta et al. The fibers were prepared by impact milling, ball milling, and cut milling. Incorporating 11.1% of impact or cut milled wheat fiber, and 1.2% ball-milled fiber, increased the biocomposite’s mechanical properties.

There have been numerous research studies that have all demonstrated mechanical property increases that attest to the suitability of wheat biocomposites to create strong, sustainable, naturally-derived materials. The results of these studies are extremely promising.

The Future

The abundance of plastic and synthetic materials presents a huge challenge to humankind. They cause environmental damage on a massive scale, clogging our oceans and landfills. Furthermore, the emissions created by their manufacture contribute significantly to global warming.

Biocomposite materials provide an alternative, creating truly sustainable packaging, construction materials, and other commercially and industrially important products.

Due to the abundance of crops and non-toxic byproducts from the food and bioethanol industries, wheat biocomposites present an opportunity for the materials industry. However, more research is needed into these materials if they are to become truly commercially viable in the near future.

参考

Mohammed,A.A.B.A等。(2021)Wheat Biocomposite Extraction, Structure, Properties and Characterization: A Review[online]Polymers13(21) 3624 | mdpi.com. Available at:

https://www.mdpi.com/2073-4360/13/21/3624/htm

Disclaimer: The views expressed here are those of the author expressed in their private capacity and do not necessarily represent the views of AZoM.com Limited T/A AZoNetwork the owner and operator of this website. This disclaimer forms part of theTerms and conditionsof use of this website.

雷金纳德·戴维(Reginald Davey)

Written by

雷金纳德·戴维(Reginald Davey)

Reg Davey is a freelance copywriter and editor based in Nottingham in the United Kingdom. Writing for AZoNetwork represents the coming together of various interests and fields he has been interested and involved in over the years, including Microbiology, Biomedical Sciences, and Environmental Science.

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