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Treated plastic waste good at grabbing carbon dioxide

Treated plastic waste good at grabbing carbon dioxide

Here’s another thing to do with that mountain of used plastic: make it soak up excess carbon dioxide. What seems like a win-win for a pair of pressing environmental problems describes a Rice University lab’s newly discovered chemical technique to turn waste plastic into an effective carbon dioxide (CO2) sorbent for industry.
Rice chemist James Tour and co-lead authors Rice alumnus Wala Algozeeb, graduate student Paul Savas and postdoctoral researcher Zhe Yuan reported in the American Chemical Society journal ACS Nano that heating plastic waste in the presence of potassium acetate produced particles with nanometer-scale pores that trap carbon dioxide molecules.

These particles can be used to remove CO2 from flue gas streams, they reported.

“Point sources of CO2 emissions like power plant exhaust stacks can be fitted with this waste-plastic-derived material to remove enormous amounts of CO2 that would normally fill the atmosphere,” Tour said. “It is a great way to have one problem, plastic waste, address another problem, CO2 emissions.”

A current process to pyrolyze plastic known as chemical recycling produces oils, gases and waxes, but the carbon byproduct is nearly useless, he said. However, pyrolyzing plastic in the presence of potassium acetate produces porous particles able to hold up to 18% of their own weight in CO2 at room temperature.

In addition, while typical chemical recycling doesn’t work for polymer wastes with low fixed carbon content in order to generate CO2 sorbent, including polypropylene and high- and low-density polyethylene, the main constituents in municipal waste, those plastics work especially well for capturing CO2 when treated with potassium acetate.

The lab estimates the cost of carbon dioxide capture from a point source like post-combustion flue gas would be $21 a ton, far less expensive than the energy-intensive, amine-based process in common use to pull carbon dioxide from natural gas feeds, which costs $80-$160 a ton.

Like amine-based materials, the sorbent can be reused. Heating it to about 75 degrees Celsius (167 degrees Fahrenheit) releases trapped carbon dioxide from the pores, regenerating about 90% of the material’s binding sites.

Because it cycles at 75 degrees Celsius, polyvinyl chloride vessels are sufficient to replace the expensive metal vessels that are normally required. The researchers noted the sorbent is expected to have a longer lifetime than liquid amines, cutting downtime due to corrosion and sludge formation.

To make the material, waste plastic is turned into powder, mixed with potassium acetate and heated at 600 C (1,112 F) for 45 minutes to optimize the pores, most of which are about 0.7 nanometers wide. Higher temperatures led to wider pores. The process also produces a wax byproduct that can be recycled into detergents or lubricants, the researchers said.

https://www.rice.edu/

Covestro builds a bridge to the circular economy at ACS 2022

Covestro builds a bridge to the circular economy at ACS 2022

 

Plant-based resins offer sustainable solutions

Covestro, a leading materials company, will exhibit its portfolio of sustainable coating solutions at the American Coatings Show 2022 in Indianapolis, helping pave the way for a shift to the circular economy. The company’s 2021 acquisition of the Resins & Functional Materials (RFM) business of Dutch company Royal DSM was a major driver of this year’s offerings, significantly strengthening the efforts of Covestro in sustainable solutions and cementing its position as a leading supplier of sustainable coatings and adhesives.

 

More than 50 years of manufacturing experience of Covestro have also played a key role for this development. Going forward, solutions sourced from sustainable materials will be a key component of their overall portfolio. Sustainable coating resins represent an attractive growth market that aligns with the ultimate goal of the company to move to a fully circular economy, meeting the world’s materials and coatings needs while reducing reliance on fossil fuels. Covestro is excited to collaborate with its customers on the journey to the circular economy as new material solutions transform urbanization, mobility, and their impact on climate change.

 

Alternative raw materials made using biotechnology

One of the most exciting results is the fruit of work of the company with pioneering biotech company Genomatica to successfully produce the first significant volumes of a plant based version of HMDA (hexamethylene diamine). HMDA is a key precursor for several coatings, adhesives, and a widely used type of nylon (nylon-6,6). 2 million tons of HMDA are used each year, but until now it has been manufactured exclusively from fossil feedstocks. This new process is expected to be able to produce ton-quantities of high-quality material in the near future, helping the automotive, construction, furniture, and textile industries become that much more sustainable going forward.

 

“Our partnership on this innovative technology allows us to significantly reduce our dependence on fossil feedstocks,” said Martin Vlak, Head of Sales & Market Development – North America Coatings & Adhesives at Covestro. “With a purely plant-based HMDA, we can significantly advance our corporate objective of CO2-neutral production.”

 

Several examples of Covestro’s sustainable products are on display in their booth (#2529). Covestro will be showing off Desmodur® eco N 7300, an isocyanate clearcoat hardener whose carbon content is 70 percent sourced from biomass instead of fossil fuels. This sourcing reduces the carbon footprint of the hardener by around 30 percent, compared to conventional solutions using the same application process, with no compromise in performance or quality.

 

Partially bio-based resin for high-traffic flooring

A third product, Decovery®, is an up to 52 percent partially plant-based flooring resin. Covestro has long experience in resin technology for flooring. Their engineers know better than anyone how traditional bio-based paints have struggled to meet the tough criteria required for high-traffic flooring. Extensive testing has shown that Decovery® has equal performance in durability, chemical resistance and wear resistance when compared with current fossil-based products in the market.

 

“The emerging line of sustainable and plant-based products of Covestro is the result of our long-term goal of becoming the leading provider of sustainable coating solutions,” says Vlak. “Markets are increasingly asking for more environmentally compliant products based on renewable raw materials without compromising functionality. But it’s about more than growth from a margin perspective. It’s about growing sustainably with the right kind of product innovation that brings us to carbon-neutral production. A truly circular economy is within our reach if we remain committed to this level of focus and innovation.”

 

About Covestro:

Covestro is one of the world’s leading manufacturers of high-quality polymer materials and their components. With its innovative products, processes and methods, the company helps enhance sustainability and the quality of life in many areas. Covestro supplies customers around the world in key industries such as mobility, building and living, as well as the electrical and electronics sector. In addition, polymers from Covestro are also used in sectors such as sports and leisure, cosmetics and health, as well as in the chemical industry itself.

 

The company is committed to becoming fully circular and aims to become climate neutral by 2035 (scope 1 and 2). Covestro generated sales of around EUR 15.9 billion in fiscal 2021. At the end of 2021, the company had 50 production sites worldwide and employed approximately 17,900 people (calculated as full-time equivalents).

Constantia Flexibles India wins Packaging Innovation Awards for “Recyclable PE Pouches”

Constantia Flexibles India wins Packaging Innovation Awards for “Recyclable PE Pouches”

Constantia Flexibles, a global packaging manufacturer, was conferred the coveted Packaging Innovation Awards 2021 organized by Dow for EcoLamHighPlus, an indigenously developed more sustainable packaging solution committed to a circular economy.
Modern consumers are conscious about what they eat and how they access those food items. In this regard, Constantia Flexibles & Hershey India joined hands to create an offering for ‘Conscious Indulgers’ who want to relish great-tasting chocolate that is ‘good to them and better for the planet too.’ Hershey’s India decided to launch its latest

offering, ‘Hershey’s Kisses Milk Chocolate 30% Less Sugar’ with recyclable mono- material packaging. Now Constantia Flexibles was awarded with the silver medal for the laminate’s sustainability aspects at the Packaging Innovation Awards sponsored by Dow.

Constantia Flexibles’ EcoLamHighPlus is a more sustainable barrier packaging solution designed for the circular economy. It is a mono-material-polyethylene (PE) laminate solution designed to be fully recyclable in the PE stream while satisfying all functional and aesthetic requirements of the product.

The developed EcoLamHighPlus packaging solution delivers three key aspects:

• Deliver key brand aesthetics even with a recyclable laminate. No compromise on the color, finish, or perceived quality of the material.

• Ensure no change in the current manufacturing process or any adverse impact on product integrity/shelf-life.

• Ensure ease of use with similar or enhanced tearing and maintain pack structure/shape across the supply chain.

Constantia Flexibles is the world’s third largest producer of flexible packaging. Based on the guiding principle of ‘People, Passion, Packaging’, some 8,530 employees manufacture tailor-made packaging solutions at 37 sites in 16 countries. Many international companies and local market leaders from the consumer and pharma industries choose the sustainable and innovative products of Constantia Flexibles. www.cflex.com

Squid skin-inspired cup cozy will keep your hands cool and your coffee hot

Squid skin-inspired cup cozy will keep your hands cool and your coffee hot

In the future, you may have a squid to thank for your coffee staying hot on a cold day. Drawing inspiration from cephalopod skin, engineers at the University of California, Irvine invented an adaptive composite material that can insulate beverage cups, restaurant to-go bags, parcel boxes and even shipping containers.

The innovation is an infrared-reflecting metallized polymer film developed in the laboratory of Alon Gorodetsky, UCI associate professor of chemical and biomolecular engineering. Gorodetsky and his team members describe a large-area composite material that regulates heat by means of reconfigurable metal structures that can reversibly separate from one another and come back together under different strain levels.

“The metal islands in our composite material are next to one another when the material is relaxed and become separated when the material is stretched, allowing for control of the reflection and transmission of infrared light or heat dissipation,” said Gorodetsky. “The mechanism is analogous to chromatophore expansion and contraction in a squid’s skin, which alters the reflection and transmission of visible light.”

Chromatophore size changes help squids communicate and camouflage their bodies to evade predators and hide from prey. Gorodetsky said by mimicking this approach, his team has enabled “tunable thermoregulation” in their material, which can lead to improved energy efficiency and protect sensitive fingers from hot surfaces.

A key breakthrough of this project was the UCI researchers’ development of a cost-effective production method of their composite material at application-relevant quantities. The copper and rubber raw materials start at about a dime per square meter with the costs reduced further by economies of scale, according to the paper. The team’s fabrication technique involves depositing a copper film onto a reusable substrate such as aluminum foil and then spraying multiple polymer layers onto the copper film, all of which can be done in nearly any batch size imaginable.

“The combined manufacturing strategy that we have now perfected in our lab is a real game changer,” said Gorodetsky. “We have been working with cephalopod-inspired adaptive materials and systems for years but previously have only been able to fabricate them over relatively small areas. Now there is finally a path to making this stuff roll-by-roll in a factory.”

The developed strategy and economies of scale should make it possible for the composite material to be used in a wide range of applications, from the coffee cup cozy up to tents, or in any container in which tunable temperature regulation is desired.

The invention will go easy on the environment due its environmental sustainability, said lead author Mohsin Badshah, a former UCI postdoctoral scholar in chemical and biomolecular engineering. “The composite material can be recycled in bulk by removing the copper with vinegar and using established commercial methods to repurpose the remaining stretchable polymer,” he said.

The team conducted universally relatable coffee cup testing in their laboratory on the UCI campus, where they proved they could control the cooling of the coffee. They were able to accurately and theoretically predict and then experimentally confirm the changes in temperature for the beverage-filled cups. The team was also able to achieve a 20-fold modulation of infrared radiation transmittance and a 30-fold regulation of thermal fluxes under standardized testing conditions. The stable material even worked well for high levels of mechanical deformation and after repeated mechanical cycling.

“There is an enormous array of applications for this material,” said Gorodetsky. “Think of all the perishable goods that have been delivered to people’s homes during the pandemic. Any package that Amazon or another company sends that needs to be temperature-controlled can use a lining made from our squid-inspired adaptive composite material. Now that we can make large sheets of it at a time, we have something that can benefit many aspects of our lives.”

Joining Gorodetsky and Badshah on this project were Erica Leung, who recently graduated UCI with a Ph.D. in chemical and biomolecular engineering, and Aleksandra Strzelecka and Panyiming Liu, who are current UCI graduate students. The research was funded by the Defense Advanced Research Projects Agency, the Advanced Research Projects Agency – Energy and the Air Force Office of Scientific Research. A provisional patent for the technology and manufacturing process has been applied for.

https://uci.edu/

GEA DEVELOPS TECHNOLOGICAL SOLUTION WITH CUSTOMER SAPERATEC FOR RAW MATERIAL RECOVERY

GEA DEVELOPS TECHNOLOGICAL SOLUTION WITH CUSTOMER SAPERATEC FOR RAW MATERIAL RECOVERY

In this process, multilayer composite materials made of plastic, aluminum and paper are treated in a special separation process. The process will be used at the new saperatec site in Dessau-Roßlau in Saxony-Anhalt. From 2023, up to 18,000 tons of packaging waste will be processed there every year.

Recycled material – regranulate – “fresh foils”
Saperatec uses a separating liquid to delaminate and dissolve into the respective components. The different layers are thereby separated from each other and sorted by material in further process steps. The separated plastic (for example polyethylene) is then processed into a regranulate using established processes. This can be used to produce plastic film again. The separated aluminum foil is passed on by saperatec to aluminum producers and refiners for reuse.

GEA Test Center as the key to success
GEA developed the separation and washing process in partnership with saperatec at the in-house GEA Separation Test Center in Oelde. The aim here was to back up the project with facts and figures and to evaluate the process for sedimentation centrifuge technology. The target-oriented laboratory-scale trials thus turned into pilot trials, which served as a process guarantee for the defined production scale with a GEA dryMaster CF decanter and a directly driven TSI 200 disk separator.

GEA technologies put through their paces in the in-house test center
GEA relied on proven technologies – such as the GEA dryMaster clarifier for maximum efficiency. This flat-bed decanter centrifuge was developed for separation and dewatering in inorganic processes. The solid bowl has a cylindrical section for efficient clarification of the liquid and a conical section for drying the solids. Due to the high bowl speed, the solids settle on the inner wall of the bowl and are transported to the solids discharge by the built-in screw conveyor. In the decanter types of the GEA dryMaster series, the clarified liquid is discharged freely into a collecting vessel and flows off by gravity. To ensure maximum efficiency at all times under fluctuating process conditions, the GEA dryMaster is equipped with the GEA summationdrive®.

 

The TSI 200 disk separator with patented GEA hydrostop discharge system
The TSI 200 disk separator is equipped with the patented GEA hydrostop discharge system, which is capable of periodically discharging the separated solids at full speed. This patented discharge system increases the yield to a maximum. With short opening times, the solids are discharged in compacted form. The GEA hydrostop system reduces the actual discharge time to less than a tenth of a second. This ensures that even small volumes are emptied reproducibly with an error rate of less than ten percent. This innovative technology enables precise, fast discharges and thus significantly higher and qualitatively better yields.

 

GEA disk separators with integrated directdrive
GEA disk separators are available with different drive types: gear drive, belt drive, directdrive and integrated directdrive. The integrated direct drive represents the latest stage in the separator development process. It operates without motor shaft, gearbox, belt, coupling and motor bearings. The small number of installed components not only reduces energy losses, but also maintenance costs, and increases machine availability. The space requirement of the integrated direct drive is about one third less than for comparable machines with gearbox or flat belt drive.

GEA disk separators with integrated direct drive can be operated very flexibly. Within a certain range, the bowl speed is infinitely variable via frequency converter. In addition, the maintenance itself can be significantly simplified.

 

KRAIBURG TPE Automotive Application Breakthrough

KRAIBURG TPE Automotive Application Breakthrough

KRAIBURG TPE has developed an innovative material technology that enables the production of thermoplastic elastomers (TPE) that is fitting for various application in the automotive market including the low density TPE for extremely weight-saving components.

The automotive industry sets the pace being the most important consumer of TPEs. The flexibility of TPE materials helps manufacturers and designers meet performance, design and sustainability target they desire in the automotive applications.

Design, Comfort and Vibrant Interior Finishing KRAIBURG TPE’s THERMOLAST® TPE compounds offer many material advantages such as abrasion chemical and scratch resistance and soft touch elements in automotive interior applications. Some of the TPE compounds consist of soft touch as well as design functional elements. Also, the TPE compounds reduce annoying ratting and creaking noises when used for damping elements.

With the ability to render precise material color matching, the TPE compounds ensure vibrant hues for vehicle interiors, meeting color-fast requirements to ensure colors will not fade easily.

The TPE exhibit good adhesion with PP, ABS, ABS/PC and PMMA through both injection molding and extrusion.

KRAIBURG TPE’s TPE compounds comply with the low emission and odor requirements defined in Fogging DIN75201 and Ordor VDA270 standards. Additionally, the TPE compounds are on par with OEM requirements namely, 03-10-104 (Renault) | B62 0300 (PSA) | DBL 5562 (Daimler) |GMW 15702, GMW 17374, GMW 14722 (GM) | GS 93042 (BMW) | MS-DC-242 (FCA) | STJLR.51.5306 (JLR) | TM-1010 (Tesla) | VW 50123 (VW) |WSS-M2D507 (Ford).

Typical automotive interior application including floor mats, cup holders, door sill panels, cable sleeves, thumb wheels, air conditioner flap and more.

High Quality Exterior Surface & Weather Resistance KRAIBURG TPE compounds offer outstanding benefits for automotive exterior. The TPE compounds feature good weathering and UV resistance as well as thermal stability which is required in for exterior applications that are exposed to harsh weather and heat. The TPE compound has passed weathering tests such as the Kalahari and Florida test.

It displays excellent adhesion with a broad range of thermoplastics including PP, PP+30% glass fiber, SAN, ASA, PMMA, PC/ABS, and nylon, allowing for design innovation and flexibility of parts processing with multi-component injection molding.

The THERMOLAST® TPE compound meets OEM approval from global automotive majors including 03-10-104 (Renault)| B62 0300 (PSA) |DBL 5562, DBL 5422 (Daimler) |GMW 15702, GMW 16233 (GM) |GS 93042 (BMW) |MS-DC-242 (FCA) |STJLR.51.5306 (JLR) |TM-1010 (Tesla) |VW 50123, TL 52622 (VW) |WSS-M2D505 |WSS-M2D517 (Ford).

The compound’s high surface quality and excellent flow properties make it ideal for automotive exterior applications like window encapsulation, water deflector, side mirror gasket and sealing for brake lights.

Lightweight TPE
The selective series of lightweight properties are ideal for diverse automotive applications like door sealing systems, cowl sealings, anti-rattle seals, window encapsulations, roof rail mats and more.

The lightweight TPE, possessing a density of <0.8g/cm³, has excellent compression set as well as smooth and uniform surface.

It also exhibits good weathering resistance, having passed weathering tests such as the Kalahari and Florida tests.

The TPE compounds exhibits good adhesion with polyolefins materials (PP/PE, TPS, TPV) through injection molding and coextrusion.

Westminster Tool Teams Up with Foster and Mantle for Medical Device Case Study

Westminster Tool Teams Up with Foster and Mantle for Medical Device Case Study

We’re proud to announce that we’ve partnered with Mantle Inc. and Foster Corp. in researching some groundbreaking technology for the medical device manufacturing industry. Following the success of our previous studies on applying Mantle’s Technology, our latest project set out to create medical-grade forceps while testing the design, material, manufacturing, and injection molding process with metal 3D printed cavities.

Results from our research will be revealed at the upcoming PTXPO show in Rosemont, IL, on Wednesday, March 30 at the Moldmaking Technology Tech Talk Theater. Attendees are welcome to visit Westminster Tool and Mantle side by side at Booth 1317 and 1319, where they can also see the cavities and surgical forceps up close.

Using Foster’s latest polymer from Arkema, we worked with Mantle to design and produce metal 3D-printed cavities for research and development. We met with Foster in December of 2021 to discuss their supply of the new material, known commercially as Rilsan® FKZM 65 O TD MED, a glass-filled, advanced bio-based polymer designed for medical devices. The material was developed specifically with surgical instruments in mind. Not only does the material offer high performance but emphasizes sustainability, being devised from castor oil.

Considering our shared experience within the medical industry, Foster CEO, Larry Acquarulo and Westminster Tool President, Ray Coombs, discussed running the material with Mantle printed cavities. The idea is that we could create a high quality prototype tool quickly, and Foster would get real-world medical device examples for potential customers.

The material’s high-density glass filling meant it was highly abrasive and would likely pose challenges in a traditional aluminum prototype tool. As a result, metal 3D-printed cavities from Mantle became a popular prospect early on. Mantle’s printed cavities in this situation not only allow for the use of a subgate to mold thousands of parts without worrying about eroding the gates, but they also enable us to put in cooling lines and more effectively control the cavity temperature, which is critical to molding this particular material.

 

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Eating plastic makes for smaller mussels

Eating plastic makes for smaller mussels

Study lead author Dr. Charlene Trestrail said mussels ingest microscopic pieces of plastic used in cosmetics, affecting their ability to grow and reproduce.

The microplastics travel from our bathroom sinks to the ocean, where they are easily confused with algae or seaweeds.

Because mussels cannot tell the difference, they take in the plastic along with their normal diet of algae.

Trials on mussels collected from Newport, Victoria were conducted in the water of varying microplastic levels.

Trestrail said the plastics affected the action of four of the invertebrates’ key digestive enzymes, which means they struggle to break down starch into the simple sugars they need to survive.

“We don’t think the plastic affects mussels directly, but it does reduce their ability to digest the real food in their gut, which means they miss out on energy and nutrients,” Trestrail, who conducted the work with RMIT’s Ecotoxicology Research group, said.

If they can’t digest food effectively, the mussels can struggle to grow, so they end up smaller overall.

Trestrail said mussels also need the energy to mate and reproduce, which could have serious ramifications for biodiversity in the bay.

“Besides being a tasty treat for humans, mussels play an important role in keeping marine ecosystems healthy,” Trestrail said.

“Because plastic can affect their ability to breed, we could see a drop in mussel populations in Port Phillip Bay, with knock-on effects for other marine wildlife.”

Environmental campaigners have worked hard to reduce the amount of plastic in the oceans from easily visible things like shopping bags and packaging.

But Trestrail said it’s time to highlight the lesser-known impact of microbeads and other hidden plastics in products like toothpaste and bath scrubs.

Her study, which she published last year as part of her Ph.D. at RMIT University, was one of the first to investigate how tiny plastics affect a common marine mussels’ digestion.

“We know lots about how plastics affect animals externally – we’ve all seen photos of birds and turtles entangled in plastic – but now we know more about what plastics do internally,” Trestrail said.

“We found tiny pieces of plastic had a big impact on mussels’ digestion, hampering their ability to get energy out of their food.”

There has been a push in recent years for new legislation to reduce microplastic pollution, from microbeads in bathroom products to fibres in synthetic fabrics.

Previous research by Trestrail and RMIT’s Ecotoxicology Research group showed that plastic water-absorbing green floral foam used by florists can be ingested by a range of freshwater and marine animals.

But while the federal government has supported the cosmetics industry to start phasing out microbeads, the 2021 National Plastics Plan stopped short of banning or regulating their use.

Trestrail said we need to take pollution from microplastics and microbeads more seriously.

“Because they’re so small, once they’re in the ecosystem they are almost impossible to remove. The only solution is not to use them in the first place,” she said.

https://www.rmit.edu.au/

#Eating plastic  #smaller mussels #Trestrail and RMIT’s Ecotoxicology Research group

 

Truiem Names Robert Veghte Kennedy as CEO

Truiem Names Robert Veghte Kennedy as CEO

Truiem, a leader in monitoring the digital experience of its customers’ remote Contact Center agents, critical employees, and their real-time interaction with end-users, announced the appointment of Robert Veghte Kennedy as the company’s Chairman and CEO to fuel the next phase of the company’s growth.

Today’s complex digital environment often leaves remote workers operating outside the traditional boundaries of a fully managed IT infrastructure. These critical resources must receive and consistently provide the highest level of customer service. The Truiem TruExperience platform provides Business and IT Operational teams a secure and scalable solution to measure and report user experience across what are often unmanaged technologies and 3rd party provided services.

TruExperience helps customers better understand the interactions with their clients and employees in real-time and adjust work assignments and technical resources to maximize those interactions.

“I’m very excited to be able to lead this experienced team of professionals with such an innovative service solution focused on today’s distributed work environment,” said Kennedy. “It’s absolutely the right time and technology given the intensity of society’s remote interactions using complex digital mediums.”

“Kennedy’s experience working with software platforms and services that have monitored and managed the world’s largest service providers, enterprises, and government agencies, is the perfect fit to help propel our organization’s growth and direction,” said Scott Kimmelman, COO, and founder.

Kennedy joins Truiem having served as CEO and COO of several companies ranging from startups to over 14,000 employees. Having served as the operating officer at TPI International and then a founder of NetSpeak Corporation, Kennedy has been at the forefront of telecommunications and in the development of the VoIP and IP based call centers including leading the company awarded the patent for inventing and bringing to market the world’s first IP based contact center.

Most recently, Kennedy led ShoreGroup from its early stages to having its CaseSentry platform monitor and manage the world’s largest and most sophisticated networks and then through its sale to Francisco Partners, a private equity firm.

Click here

#Robert Veghte Kennedy #CEO #Truiem 

 

Eating plastic makes for smaller mussels

Eating plastic makes for smaller mussels

Study lead author Dr. Charlene Trestrail said mussels ingest microscopic pieces of plastic used in cosmetics, affecting their ability to grow and reproduce.

The microplastics travel from our bathroom sinks to the ocean, where they are easily confused with algae or seaweeds.

Because mussels cannot tell the difference, they take in the plastic along with their normal diet of algae.

Trials on mussels collected from Newport, Victoria were conducted in water of varying microplastic levels.

Trestrail said the plastics affected the action of four of the invertebrates’ key digestive enzymes, which means they struggle to break down starch into the simple sugars they need to survive.

“We don’t think the plastic affects mussels directly, but it does reduce their ability to digest the real food in their gut, which means they miss out on energy and nutrients,” Trestrail, who conducted the work with RMIT’s Ecotoxicology Research group, said.

If they can’t digest food effectively, the mussels can struggle to grow, so they end up smaller overall.

Trestrail said mussels also need the energy to mate and reproduce, which could have serious ramifications for biodiversity in the bay.

“Besides being a tasty treat for humans, mussels play an important role in keeping marine ecosystems healthy,” Trestrail said.

“Because plastic can affect their ability to breed, we could see a drop in mussel populations in Port Phillip Bay, with knock-on effects for other marine wildlife.”

Environmental campaigners have worked hard to reduce the amount of plastic in the oceans from easily visible things like shopping bags and packaging.

But Trestrail said it’s time to highlight the lesser-known impact of microbeads and other hidden plastics in products like toothpaste and bath scrubs.

Her study, which she published last year as part of her Ph.D. at RMIT University, was one of the first to investigate how tiny plastics affect a common marine mussels’ digestion.

“We know lots about how plastics affect animals externally – we’ve all seen photos of birds and turtles entangled in plastic – but now we know more about what plastics do internally,” Trestrail said.

“We found tiny pieces of plastic had a big impact in mussels’ digestion, hampering their ability to get energy out of their food.”

There has been a push in recent years for new legislation to reduce microplastic pollution, from microbeads in bathroom products to fibres in synthetic fabrics.

Previous research by Trestrail and RMIT’s Ecotoxicology Research group showed that plastic water-absorbing green floral foam used by florists can be ingested by a range of freshwater and marine animals.

But while the federal government has supported the cosmetics industry to start phasing out microbeads, the 2021 National Plastics Plan stopped short of banning or regulating their use.

Trestrail said we need to take pollution from microplastics and microbeads more seriously.

“Because they’re so small, once they’re in the ecosystem they are almost impossible to remove. The only solution is not to use them in the first place,” she said.

https://www.rmit.edu.au/

#Eating plastic  #smaller mussels #Trestrail and RMIT’s Ecotoxicology Research group