Contact Us
Contact Us
English

Progress Of Recovery And Industrialization Of PET By Physical, Chemical And Biological Methods

Table of Content [Hide]

    Plastic waste is an important component of solid waste. According to statistics, the annual production of plastic packaging worldwide is 130 million tons, and 50% of plastic products are disposable items, accounting for about 36% of the total plastic production. However, 79% of recycled plastic waste is buried or directly dumped into the sea, and only 9% is recycled. However, plastic is difficult to degrade in nature due to its unique structural properties. With the widespread application of plastic, the problem of "white pollution" has gradually emerged, and plastic products that are difficult to naturally degrade pose a great threat to the natural environment.


    Progress Of Recovery And Industrialization Of PET By Physical, Chemical And Biological Methods


    PET is an important component of recyclable waste plastics, accounting for approximately one-third of the total amount of recyclable plastics. However, PET is difficult to completely degrade in nature, and can easily degrade into more harmful "microplastics" under external conditions such as ultraviolet light, biological free radicals, and seawater.


    Progress Of Recovery And Industrialization Of PET By Physical, Chemical And Biological Methods


    In 2014, Richard Thompson from Plymouth University first reported on the issue of microplastics in the ocean and their potential hazards. With the increasing severity of white pollution, countries around the world have successively introduced a series of laws and regulations to restrict the arbitrary disposal of plastic waste and regulate the recycling and utilization of plastic waste. Researchers, government officials, and business owners from around the world have also actively participated in this' environmental defense war '.

    In recent years, a large number of advanced technologies and large-scale projects for recycling PET have emerged. At present, the main recycling methods for waste PET plastics include physical methods, chemical methods, and biological methods (enzymatic hydrolysis).


    Progress Of Recovery And Industrialization Of PET By Physical, Chemical And Biological Methods


    Physical method

    Physical recycling of PET is an effective recycling method, which involves collecting and sorting waste PET for cleaning. Separate impurities such as PP bottle caps, PVC bottle labels (some of which are made of aluminum or paper), and adhesives from PET bottles, and then crush, wash, dry, and pelletize the cleaned waste PET to obtain clean PET bottle flakes.


    Progress Of Recovery And Industrialization Of PET By Physical, Chemical And Biological Methods


    This method of recycling is relatively simple, requiring only physical means to separate and crush waste PET. And this recycling method does not involve chemical reactions, does not produce additional harmful substances, and is environmentally friendly. And the recycling process is relatively inexpensive, which can be used for secondary processing to produce plastic products, as well as modified granulation spinning for fabric production.

    German engineering company BB Engineering (BBE) has combined its VacuFil recycling process with the VarioFil direct spinning system to create a one-step recycling inline direct spinning process, which recycles post consumer PET waste and PET industrial production waste and spins them online into pre oriented yarn (POY) or fully stretched yarn (FDY).


    Progress Of Recovery And Industrialization Of PET By Physical, Chemical And Biological Methods


    However, physical methods also have certain limitations: physical recycling methods can only perform simple separation and granulation of waste PET polyester. During the melting process of waste PET, harmful substances such as acetaldehyde may remain, and as the number of PET recycling cycles increases, the molecular weight, viscosity, and other physical and chemical properties of the recycled PET will significantly decrease. Therefore, the recycled materials can often only be used to manufacture lower end products.

    Chemical method

    Chemical recycling of PET refers to the complete or partial degradation of waste PET materials into raw chemical materials (usually reactive monomers or oligomers) through chemical methods, achieving recycling. Usually including hydrolysis, amine hydrolysis, alcoholysis, etc., chemical recovery methods can obtain a wide variety of depolymerization products due to their various depolymerization agents combined with different reaction conditions. They can be used as chemical raw materials to re-enter the industrial cycle, thereby reducing the consumption of fossil materials and promoting energy conservation and emission reduction.


    Progress Of Recovery And Industrialization Of PET By Physical, Chemical And Biological Methods


    Hydrolysis method

    Under normal temperature and pressure, PET is difficult to hydrolyze. Hydrolysis degradation of PET usually refers to the degradation of PET to produce terephthalic acid (TPA) and ethylene glycol (EG) at a certain temperature and pressure. This method can effectively avoid the use of organic solvents, and the operation is relatively simple, making the separation and purification of products more convenient. According to different hydrolysis environments, it can be divided into acidic hydrolysis method, alkaline hydrolysis method, and neutral hydrolysis method.


    Progress Of Recovery And Industrialization Of PET By Physical, Chemical And Biological Methods


    Biological method

    Biological degradation of PET is the use of PET degrading enzymes isolated and identified from microorganisms to hydrolyze PET macromolecules into chemical raw materials such as mono (2-hydroxyethyl) phthalate, TPA, EG, etc. This not only solves the environmental pressure caused by waste PET, but also optimizes resources and is more environmentally friendly. The biodegradation method is currently not mature, and the activity and stability of PET degrading enzymes need to be improved. However, the bio-degradation of PET is more environmentally friendly, and these studies provide research ideas for the efficient bio-degradation of PET in the future.


    Progress Of Recovery And Industrialization Of PET By Physical, Chemical And Biological Methods


    The recycling and utilization of waste plastics has become a key link in energy conservation, carbon reduction, and environmental ecological governance. Through in-depth research on PET recycling technology, it can be found that technological innovation and industrialization have greatly improved the efficiency and benefits of PET recycling. Not only does it help reduce the environmental pollution caused by waste PET, but it also promotes energy conservation and carbon reduction through resource utilization.


    References



    Plastic Extrusion Insights & Updates
    Jwell Machinery And Several Colleges Jointly Established Jwell Classes
    2024-12-06
    In this new era full of hope and challenges, there are a group of young people with dreams, with a beautiful vision for the future, breaking out of the ocean of knowledge, and officially stepping into...
    Jwell Machinery And Several Colleges Jointly Established Jwell Classes
    Jwell Machinery High-Speed Polypropylene Sheet Production Line Helps Customers Improve Production Efficiency
    2025-03-13
    In the context of a sluggish economic environment and increasingly fierce market competition, intelligent, energy-saving, efficient and high-yield plastic Extrusion machinery has received more and mor...
    Jwell Machinery High-Speed Polypropylene Sheet Production Line Helps Customers Improve Production Efficiency
    What Does The Extrusion Part Of The Extruder Affect? Grasp The Screw Clearance And Metal Materials To Ensure Product Quality!
    2024-10-16
    If the twin-screw extruder is divided into two key parts of "Extrusion" and "transmission", then the "extrusion part" is the key part of "ensuring quality", and...
    What Does The Extrusion Part Of The Extruder Affect? Grasp The Screw Clearance And Metal Materials To Ensure Product Quality!
    Jwell Machinery's High-Speed Pipe Production Line Helps Customers Improve Production Efficiency
    2024-12-30
    In the new economic situation, according to the demand of customers and orders, there must be enough capacity to meet the strict requirements of customers on product quality and efficiency.JWELL MACHI...
    Jwell Machinery's High-Speed Pipe Production Line Helps Customers Improve Production Efficiency
    Decision On The Production Status Of The Meshing Contract
    2024-02-23
    The meshing co rotating Twin Screw Extruder we use in our production process has six key parameters: temperature peak, pressure peak, viscosity dissipation, mixing index, average residence time, and t...
    Decision On The Production Status Of The Meshing Contract
    Global Plastics Pact Talks Fail To Reach Deal
    2024-12-16
    The landmark fifth session of the Intergovernmental Negotiating Committee for the United Nations Plastics Convention (INC-5) ended in Busan, South Korea on December 1.More than 1,400 negotiators from ...
    Global Plastics Pact Talks Fail To Reach Deal

    Jwell started manufacturing screws and barrels in 1978, making it one of the earliest screw and barrel manufacturers in China. Its brand, "Jinhailuo", has become well recognized in the industry. In 1997, Jwell was established to begin the production of extrusion machinery. Today, Jwell is the vice president unit of the China Plastics Machinery Industry Association and one of the technology leaders in the extrusion machinery industry.

    Contact Us
    Contact Us
    Tel:+8618851211065 E-mail:salcwb@jwell.cn Whatsapp:+8618851211065
    Address:No.218 Tongling west Road, Chuzhou City, Anhui Province. P.R.China
    No.218 Tongling west Road, Chuzhou City, Anhui Province. P.R.China
    salcwb@jwell.cn +8618851211065
    We use cookies on this site, including third party cookies, to delivery experiennce for you.
    Reject Cookies
    Accept Cookies
    Read Privacy Policy