A blog set out to explore, archive & relate plastic pollution happening world-wide, while learning about on-going efforts and solutions to help break free of our addiction to single-use plastics & sharing this awareness with a community of clean water lovers everywhere!
Showing posts with label Harmful Plastics. Show all posts
Showing posts with label Harmful Plastics. Show all posts

Monday, May 2, 2022

Microplastics are in our bodies. How much do they harm us?

 The science is unsettled, but researchers say there is cause for concern.


Tiny plastic particles like these—called microplastics—are added to some exfoliating skincare gels. From there, they get into the environment and may enter our bodies.
PHOTOGRAPH BY ALEXANDER STEIN, JOKER/ULLSTEIN BILD/GETTY IMAGES

As plastic waste proliferates around the world, an essential question remains unanswered: What harm, if any, does it cause to human health?

A few years ago, as microplastics began turning up in the guts of fish and shellfish, the concern was focused on the safety of seafood. Shellfish were a particular worry, because in their case, unlike fish, we eat the entire animal—stomach, microplastics and all. In 2017, Belgian scientists announced that seafood lovers could consume up to 11,000 plastic particles a year by eating mussels, a favorite dish in that country.

By then, however, scientists already understood that plastics continuously fragment in the environment, shredding over time into fibers even smaller than a strand of human hair —particles so small they easily become airborne. A team at the U.K.’s University of Plymouth decided to compare the threat from eating contaminated wild mussels in Scotland to that of breathing air in a typical home. Their conclusion: People will take in more plastic during a mussels dinner by inhaling or ingesting tiny, invisible plastic fibers floating in the air around them, fibers shed by their own clothes, carpets, and upholstery, than they will by eating the mussels.

This spring, scientists from the Netherlands and the U.K. announced they had found tiny plastic particles in living humans, in two places where they hadn’t been seen before: deep inside the lungs of surgical patients, and in the blood of anonymous donors. Neither of the two studies  answered the question of possible harm. But together they signaled a shift in the focus of concern about the plastics toward the cloud of airborne dust particles we live in, some of them so small they can penetrate deep inside the body and even inside cells, in ways that larger microplastics can’t.

Dick Vethaak, a professor emeritus of ecotoxicology at the Vrije Universiteit Amsterdam and co-author of the blood study, doesn’t consider his results alarming, exactly—“but, yes, we should be concerned. Plastics should not be in your blood.”

“We live in a multi-particle world,” he adds, alluding to the dust, pollen, and soot that humans also breathe in every day. “The trick is to figure out how much plastics contribute to that particle burden and what does that mean.”

Harm is the hard part

Scientists have been studying microplastics, defined as particles measuring less than five millimeters (a fifth of an inch) across, for a quarter century. Richard Thompson, a marine scientist at the University of Plymouth, coined the term in 2004 after finding piles of rice-sized plastic bits above the tideline on an English beach. In the ensuing years, scientists located microplastics all over the globe, from the floor of the Mariana Trench to the summit of Mount Everest.

Microplastics are in salt, beer, fresh fruit and vegetables, and drinking water. Airborne particles can circle the globe in a matter of days and fall from the sky like rain. Seagoing expeditions to count microplastics in the ocean produce incomprehensible numbers, which have multiplied over time as more tonnage of plastic waste enters the oceans every year and disintegrates. A peer-reviewed count published in 2014 put the total at five trillion. In the latest tally, made last year, Japanese scientists from Kyushu University estimated 24.4 trillion microplastics in the world’s upper oceans—the equivalent of roughly 30 billion half-liter water bottles—a number in itself hard to fathom.

“When I started doing this work in 2014, the only studies being done involved looking for where they are,” says Alice Horton, a marine scientist at the UK’s National Oceanography Center who specializes in microplastic pollution. “We can stop looking now. We know wherever we look, we will find them.”

But determining if they cause harm is much harder. Plastics are made from a complex combination of chemicals, including additives that give them strength and flexibility. Both plastics and chemical additives can be toxic. The most recent analysis has identified more than 10,000 unique chemicals used in plastics, of which more than 2,400 are of potential concern, says Scott Coffin, a research scientist at the California State Water Resource Control Board. Many are “not adequately regulated” in many countries, the study says, and includes 901 chemicals that are not approved for use in food packaging in some jurisdictions.

Additives can also leach into water, and one study found that up to 88 percent could leach, depending on factors that include sunlight and length of time. The same study found up to 8,681 unique chemicals and additives associated with a single plastic product. Sorting out which particular chemical combinations are problematic, and finding the level and length of exposure that causes harm in such a convoluted brew is no easy task.

“You may find a correlation, but you would be hard pressed to find causation because of the sheer number of chemicals we’re exposed to in our daily lives,” says Denise Hardesty, a research scientist who has studied plastic waste for 15 years at Australia’s Commonwealth Scientific and Industrial Research Organization.

Janice Brahney, a biochemist at Utah State University who studies how dust transports nutrients, pathogens, and contaminants, says she is concerned because plastic production continues to increase dramatically, while so much about microplastics remains unknown. In 2020, 367 million metric tons of plastics were manufactured, an amount that is forecast to triple by 2050. “It is alarming because we are far into this problem and we still don’t understand the consequences, and it is going to be very difficult to back out of it if we have to,” she says.

The American Chemical Council (ACC), an industry trade group, maintains a lengthy collection of statements on its website explaining chemical composition of various plastics and rebuttals to research claims that certain plastics are toxic.

“No, microplastics are not the ‘New Acid Rain.’ Not even close,” the council said in response to media coverage of Brahney’s 2020 paper, published in Science, which estimated that 11 billion metric tons of plastic will accumulate in the environment by 2025. (Brahney calculated that just in the western U.S., more than 1,000 metric tons of tiny particles are carried by the wind and fall out of the air every year.)

The ACC also criticized that finding, saying, “The amount of microplastics in the environment represents only 4 percent of particles collected on average… The other 96 percent is comprised of natural materials like minerals, dirt and sand, insect parts, pollen and more.”

Meanwhile, the ACC said through a spokesman it has launched a research program to help answer outstanding questions of microplastics, including those surrounding household dust, and help establish a global exchange of microplastics research between universities, research institutions, and industry. The work envisioned will include examining the environmental fate and potential routes of exposure of microplastics, identifying potential hazards, and developing a framework to assess risk. Findings will be published over the next few years.

The topic is so complicated and controversial, Hardesty says, that even the definition of harm comes up for debate at times. Should we only worry about the effects of microplastics on human health? What about the harm they might do to animals and ecosystems?

Plastics in animals

The search for potential harm from plastics actually began with animal studies some 40 years ago, when marine biologists studying the diets of seabirds began finding plastic in their stomachs. As more marine wildlife began to be affected by plastics, either by entanglement or ingestion, studies expanded beyond birds to other marine species, as well as to rats and mice.

In 2012, the Convention on Biological Diversity in Montreal declared that all seven sea turtle species, 45 percent of marine mammal species, and 21 percent of seabird species were affected by eating or becoming entangled in plastic. The same year 10 scientists unsuccessfully called on the world’s nations to officially classify the most harmful plastic as hazardous, which  would give their regulatory agencies “the power to restore affected habitats.”

In the decade since, the numbers and risks to animals have worsened. More than 700 species are affected by plastics. It is probable that hundreds of millions of wild birds have consumed plastic, scientists say, and by mid-century, all seabird species on the planet are predicted to be eating it. Certain bird populations are already thought to be threatened by widespread exposure to endocrine-disrupting chemicals contained in plastics. Laboratory studies of fish have found plastics can cause harm to reproductive systems and stress the liver.

Animal studies have shown the ubiquity of plastic waste and helped inform research into its potential physiological and toxicological effects in humans.

For example, although toxins from plastics can cause adverse health effects in birds, an Australian study in 2019, in which Japanese quail chicks were deliberately fed such toxins, found the opposite: The chicks suffered minor delays in growth and maturation, but weren’t more likely than unexposed chicks to get sick, die, or have trouble reproducing. The findings surprised the scientists, who called them the “first experimental evidence” that the toxicological and endocrine effects “may not be as severe as feared for the millions of birds” carrying small loads of plastics in their stomachs.

Hardesty, one of the co-authors, says the quail study serves as a cautionary reminder that assessing the threat posed by exposure to microplastics is “not that simple.” In particular, she says, the difficulty finding clear evidence of harm in quails “really highlights that we are still not able to answer the question of what the impact of eating plastic is for humans in a definitive way.”

Plastics in humans

Measuring possible adverse effects of plastics on humans is far more difficult than on animals—unlike quail and fish, human subjects can’t intentionally be fed a diet of plastics. In laboratory tests, microplastics have been shown to cause damage to human cells, including both allergic reactions and cell death. But so far there have been no epidemiologic studies documenting, in a large group of people, a connection between exposure to microplastics and impacts on health.

Instead, research has involved small groups of people—a factor that limits conclusions that can be drawn beyond identifying the presence of microplastics in different parts of the body. A 2018 study found microplastics in the feces of eight people. Another study documented the presence of microplastics in the placentas of unborn babies.

The recent study by Vethaak and his colleagues found plastics in the blood of 17 of 22 healthy blood donors; the lung study found microplastics in 11 of 13 lung samples taken from 11 patients. Virtually nothing is known about either group that would help inform the level and length of exposure—two essential attributes to determine harm.

In both studies the plastic particles found were primarily nanoplastics, which are smaller than one micrometer. The ones found in the blood study were small enough to have been inhaled—though Vethaak says it’s also possible they were ingested. Whether such particles  can pass from the blood into other organs, especially into the brain, which is protected by a unique, dense network of cells that form a barrier, isn’t clear.

“We know particles can be transported throughout the body via the river of blood,” Vethaak says.The study is one of 15 microplastics research studies underway at the Dutch National Organization for Health Research and Development.

The lung study, done at University of Hull in the U.K.,  showed just how intrusive airborne particles can be. While the scientists expected to find plastic fibers in the lungs of surgical patients—earlier research had documented them in cadavers—they were stunned to find the highest number, of various shapes and sizes, embedded deep in the lower lung lobe. One of the fibers was two millimeters long.

“You would not expect to find microplastics in the smallest parts of the lung with the smallest diameter,” says Hull environmental ecologist Jeannette Rotchell. The study, she says, enables her team to move to the next level of questions and conduct lab studies using cells or tissue cultures of lung cells to discover the effects of the microplastics they found.

“There are many more questions,” she says. “I would like to know what levels are we exposed to in the course of our lives. What microplastics are we breathing in every day, whether working at home, going to the office, outdoors, cycling, running, in different environments. There’s a big knowledge gap.”

The question of harm

Scientists aren’t entirely fumbling around in the dark. There is extensive research on toxins found in plastics, as well as on lung diseases, from asthma and chronic obstructive pulmonary disease (COPD) to cancer, which kill millions of people every year and have been linked to exposure to other pollutants. The American Lung Association, in its latest report, declared COPD, which results from chronic inflammation, to be the fourth leading cause of death in the United States.

Humans inhale a variety of foreign particles every day and have been since the dawn of the Industrial Revolution. The body’s first response is to find a way to expel them. Large particles in airways are typically coughed out. Mucus forms around particles further down the respiratory tract, creating a mucus “elevator” that propels them back up to the upper airway to be expelled. Immune cells surround those that remain to isolate them.

Over time, those particles could cause irritation that leads to a cascading range of symptoms from inflammation to infection to cancer. Or, they could remain as an inert presence and do nothing.

The particles identified in the lung study are made of plastics that are known to be toxic to humans and have caused lung irritation, dizziness, headaches, asthma, and cancer, says Kari Nadeau, a physician and director of allergy and asthma research at Stanford University. She ticked off the symptoms as she went through the list of fibers published in the study.

“We know this already from other published articles,” she says. “It takes one minute of breathing in polyurethane and you could start wheezing.”

What scientists don’t know is if the plastic particles in the lung would meet the level and length of exposure to cross the threshold of harm.

Whether such particles “directly caused asthma for someone’s whole life, that would be hard to prove,” she says. “I am not saying we should be afraid of these things. I am saying we should be cautious. We need to understand these things that are getting into our body and possibly staying there for years.”

Albert Rizzo, the American Lung Association’s chief medical officer, says the science is too unclear to draw conclusions. “Are the plastics just simply there and inert or are they going to lead to an immune response by the body that will lead to scarring, fibrosis, or cancer? We know these microplastics are all over the place. We don’t know whether the presence in the body leads to a problem. Duration is very important. How long you are exposed matters.”

He says the most relevant analogy may be the decades-long effort to convince the government that smoking causes cancer. “By the time we got enough evidence to lead to policy change, the cat was out of the bag,” he says. “I can see plastics being the same thing. Will we find out in 40 years that microplastics in the lungs led to premature aging of the lung or to emphysema? We don’t know that. In the meantime, can we make plastics safer?”

Wednesday, April 19, 2017

Cleanup Nets 50 Tons of Ocean Trash Near Hawaii

Published in Courthouse News, April 17, 2017 by Nicholas Fillmore


Marine debris being loaded into cargo containers at Midway Atoll. (Holly Richards/USFWS)

HONOLULU (CN) – Federal agencies and the state of Hawaii removed 50 tons of garbage from the newly expanded Papahanaumokuakea Marine National Monument this month during an annual multi-agency cleanup.

Twelve shipping containers holding an estimated 100,000 pounds of derelict fishing gear, bottles, lighters and plastics were loaded onto the charter vessel Kahana and shipped to Honolulu. The garbage will be cut up and incinerated for electricity at the Covanta Honolulu/H-POWER plant.

The annual cleanup of the Northwest Hawaiian Islands is headed by the National Ocean and Atmospheric Administration’s Pacific Island Marine Debris Program in partnership with the U.S. Fish and Wildlife Service, Hawaii’s Division of Land and Natural Resources-Forestry and Wildlife division, and the Papahanaumokuakea Marine National Monument.

Since the program began in 1996, some 985 tons of debris have been removed from the monument. At Midway and Kure atolls, plastic debris is found in albatross nests along the beach and often consumed by the chicks. Endangered green sea turtles also mistake plastic for their main food source, jellyfish. And marine mammals die after becoming entangled in discarded fishing gear.

According to regional coordinator Mark Manuel, removal efforts are accomplished “with two hands and lots of backs.” Barges carrying heavy machinery cannot be brought in because their drafts are too deep in the shallows, so 17-19 foot inflatables are used and abandoned fishing nets – often twined around coral heads – are hauled up by hand.

Purse-seine nets found in Papahanaumokuakea do not appear to be local, Manuel said, nor does much of the trash cleared. Weather events associated with El Nino tend to push the North Pacific gyre – an area formed by four prevailing ocean currents in which garbage from across the Pacific collects – south. The gyre then deposits debris along the 1,500-mile Northwest Hawaiian Island chain which, virtually pristine otherwise, acts to comb detritus out of the ocean.

Researcher Capt. Charles Moore first discovered the so-called “Great Pacific Garbage Patch” in 1999, when he sailed his catamaran through the rarely traveled gyre.

“As I gazed from the deck at the surface of what ought to have been a pristine ocean, I was confronted, as far as the eye could see, with the sight of plastic,” Moore wrote in an essay for Natural History. “It seemed unbelievable, but I never found a clear spot.”

Plastic takes centuries to biodegrade, breaking down into smaller pieces along the way. These fragments easily find their way into the food chain, Moore said, “adding to the increasing amount of synthetic chemicals unknown before 1950 that we now carry in our bodies.”

Research also implicates plastic in mammalian endocrine disruption. The resulting “feminization” of animal species threatens population collapse.

Complicating the picture, according to Moore – whose Algalita Organization is a pioneer in the study of ocean plastic – is the discovery of pre-manufacture microscopic plastic beads called “nurdles” in the water, suggesting that the problem is not just a post-consumption phenomenon.

The NOAA Marine Debris Program has led efforts to research, prevent and reduce the impacts of marine debris. Authorized by Congress through the Marine Debris Act in 2006, its staff supports projects “in partnership with state and local agencies, tribes, non-governmental organizations, academia, and industry. The program also spearheads national research efforts and works to change behavior in the public through outreach and education initiatives.”

The Hawaii Nets to Energy Program is one example of that partnership.

Tuesday, March 21, 2017

Film Looks at Plastics in the Oceans

Published in VOA Science and Health on March 20, 2017

LOS ANGELES —
Plastic sludge and garbage, a blight on the world’s oceans.

Eight million metric tons of plastic wind up each year in the oceans, harming marine life and entering the food chain.

A film crew traveled the globe to document the rubbish, producing a new documentary film called A Plastic Ocean that looks at the problem, and its solutions.

Julie Andersen of the Plastic Oceans Foundation said what is seen is just the tip of the problem.

“Half of the waste actually sinks to the bottom, some plastic sinks to the bottom, and what remains on the surface actually breaks down," Andersen said.

The filmmakers found trash in ocean gyres, the circulating currents that trap large concentrations of pollution in the Atlantic, Indian, and Pacific Oceans, home of what some have called a plastic island.

“What we found in the center of the Pacific was not a floating island of plastic. What we found was a plastic smog that permeated all the water," Andersen said.

The debris infects the food chain, sometimes visibly, and more so at the microscopic level, where the plastic particles interact with other pollutants.

Adam Leipzig, producer of A Plastic Ocean, said, “Heavy metals, pharmaceuticals, industrial runoff. It acts like magnets. These toxins hitchhike on the plastic, and when seafood ingests the plastics, those toxins offload into the fatty tissues.”

Those fish are then consumed by other sea life and by people.

China, Indonesia, the Philippines, Thailand and Vietnam are the worst plastic polluters. The United States, although a leader in recycling, is in the top 20, since it produces and consumes so much plastic.

There are efforts around the world to address the problem, including at this newly opened recycling center in Lebanon.

But Andersen said there is more people can do.

“Cut back on single-use plastics, straws, plastic cups, plastic water bottles, plastic bags and find alternatives like reusable materials," she said.

She said healthy oceans are essential to our survival.

Monday, August 1, 2016

Florida brewery creates edible six-pack rings to protect marine wildlife

Published in The Growler on May 16, 2016
Screen Shot from Saltwater Brewerys Youtube video
Screen Shot from Saltwater Brewerys Youtube video
Screenshot from Saltwater Brewery’s Youtube video
Florida has a special connection to the ocean.
The state is home to the Florida Reef, the third largest living coral reef in the world and the only one found in the continental United States. Many of its professional sports teams are aquatic themed (Miami Marlins, Tampa Bay Rays, Miami Dolphins, Tampa Bay Buccaneers, for example).
So it’s no wonder that a Florida craft brewery in Delray Beach was the one to come up with an edible six-pack ring to help save marine life from being entangled or ingesting in plastic debris.
Saltwater Brewery and We Believers—an advertising agency in New York—developed the durable packaging solution for six-packs from spent grain from the brewing process. The resulting product is claimed to be not only biodegradable, but also edible for fish and other sea life.

Tuesday, February 23, 2016

To rethink the future of plastics, start with packaging

Conrad MacKerron
More plastic than fish in the ocean (by weight) by 2050. 95 percent of plastic packaging’s potential value lost after its first use. Only 14 percent of plastic packaging collected for recycling. Global waste disposal systems so challenged that nearly a third of plastic waste doesn’t even make it to the landfill, and instead is littered on land or swept into the ocean.
 
These are some sobering findings of "The New Plastics Economy: Rethinking the Future of Plastics," a report released last month by the Ellen MacArthur Foundation in partnership with the World Economic Forum intended to move the circular economy a step closer from theory to practice.
The enormous waste of embedded value in plastic packaging has been going on for generations with scant attention often paid as landfills overflowed with discarded single use bottles, bags, plates and wrappers. 

The emerging awareness of the scope of ocean plastic debris and the potential for plastics to concentrate and transfer toxic chemicals into the marine food web and human diets finally may provoke enough concern from companies and policy makers to make ubiquitous plastic packaging a pilot program for the circular economy where it never becomes waste, but serves as nutrients for new products.

The report charts a path for transition to a circular path by first focusing on fostering a robust after-use economy through improving the economics and yield of recycling, reuse and composting. Reducing the dumping of waste onto land and oceans and decoupling plastics from fossil fuels are also important factors, but the report emphasizes that drastically improving the quality and economics of recycling, reuse and composting, is the cornerstone and first priority for a new plastics economy.

A five-point plan is proposed: engaging value chain players; forming a global plastics protocol to agree on design guidelines for optimal material use and processing systems; focusing technological innovation on projects with the most potential to improve materials sorting and processing at scale; promoting stronger secondary markets for collected materials; and exploring "the enabling role of policy" such as material, landfill or incineration bans and producer responsibility laws.

This effort by the Ellen MacArthur Foundation and its allies has a number of encouraging elements going for it, but the path is also fraught with challenges. Much of this has been proposed before in various forms. 

On the hopeful side, Europe seems primed to move. In December, the European Commission approved a circular economy package including $6.08 billion for improved waste management.

Greenhouse gas emissions by the plastics sector are expected to grow to 15 percent of the global annual carbon budget by 2050 so recycling can play a key role helping governments and global brands with GHG reduction. Increased recycling can reduce GHG emissions. Incineration and energy recovery, often promoted as alternatives to recycling, release the carbon embedded in plastics. 

The new data showing far more plastic waste is eluding collection and being swept into oceans than previously believed is elevating public concern about it from nuisance to potential global threat. About 8 million metric tons of plastic are estimated end up in the ocean each year, much of it packaging. Without significant intervention, that will result in a ton of plastic for every three tons of fish by 2025, and more plastic than fish by weight by 2050. 

A few big consumer brands and value chain players are beginning to show interest. Ikea, Kimberly Clark, Marks & Spencer and Unilever were involved in the New Plastic Economy report, as were other critical parts of the packaging life cycle, such as Dow and Dupont, who make polymer packaging resins; packaging producer Amcor; and Suez and Veolia, which provide waste collection and recycling services.

It’s an appealing vision of potential new business opportunities for companies that could unlock job growth through advanced repair and manufacturing, and enhanced waste management and secondary materials production.

However, there are just as many challenges. The apparent energy seems centered mostly around European governments and retailers so far. In the U.S. there’s no evidence of strong promotion of a circular agenda by the EPA or federal policy makers equivalent to the EU’s action. U.S. retailers outside of the beverage sector remain largely silent on responsibility for the ocean debris mess, packaging waste and low recycling rates. 

The report’s proposed answer is ambitious — a global plastics protocol, where business and governments align around the best materials and practices. But is it realistic? It’s hard enough to get cities in the same county to collect and process the same materials, let along most countries.
But beneath polite phrases such as "alignment" lie hard choices such as banning certain plastic materials, which the plastics industry has opposed. 

While some municipalities and nations have banned various plastics, reaching global agreement on preferred materials is likely too much to expect. Many developing nations are preoccupied with providing basics such as food and shelter and lack post-consumer collection and recycling systems, or the resources to carry out existing laws.

A better approach might be one track for developed nations willing to move now and finance workable regional circular economy models; and a separate urgent effort aimed at using multilateral aid and producer fees to help developing nations build basic waste collection systems to stem the ocean plastics tide.  

This is where the big global brands need to step up on both accounts. Unilever, Procter & Gamble and others are using increasing amounts of non-recyclable plastic packaging in developing markets, much of which ends up in waterways. They need to acknowledge the impacts of their products as negative environmental externalities and factor those costs into future operations. Then need to start paying fees or providing significant aid, likely billions of dollars, aid to help developing countries where they sell products build recycling and waste collection systems.

Even developed nations are struggling with the economics of packaging recycling. These recommendations come at an especially challenging time for the U.S. recycling industry, where plummeting commodity prices for packaging materials such as plastic, glass and metals have slashed and often erased recyclers’ profits.

Yet there’s a silver lining — this crisis could force a much needed reality check for brands that commodity prices will continue to be volatile and that recyclers cannot build a business model based primarily on the value of recovered materials. Brands need to step up and pay their fair share to cover the added costs of processing their materials.

U.S. citizens historically have sent a strong message that recycling is a social good they want pursued and they are paying the cost for recycling not covered by commodities, not the big producer brands. In recent years, big U.S. consumer brands have avoided acknowledging responsibility, or taken only baby steps. The Closed Loop Fund makes more capital available for fixing infrastructure and market development, but avoids the key question of what ongoing financial commitment brands should be responsible for to relieve the costs of recycling and landfilling for taxpayers who have shouldered it for generations. 

There is room for optimism that the prospect of wise conservation of resources, job growth and reduction of GHG emissions afforded by the new plastics economy vision will attract a critical mass of global brands to support efforts to optimize the value of the materials they place on the market. This effort is badly needed to develop 21st-century caliber systems that will move plastic packaging from a one-way trip to the landfill to many useful round-trips protecting consumer goods.

Wednesday, November 4, 2015

Underwater Marine Design Concept for Collecting Plastic Waste in the Ocean

Published Nov. 1, 2015 in Virtual Strategy.com
 
Internet Marketing Expert Chad Ian Lieberman Breaks Down The ROI on Plastic Garbage.

"Urgent action is required to prevent the choking of our oceans by plastics." These words were from Chad Lieberman of 6WSEO in a recent training he held on an underwater marine design concept for collecting plastic waste in the ocean.

Chad Ian Lieberman was talking about an underwater marine drone that autonomously swallows plastic garbage floating in the ocean floor. It works by containing the garbage in nets suspended between buoys. These buoys balance the weight.

The drone seeks and destroys plastic. The net captures everything from entire plastic bottles to tiny plastic shards. The drone is an autonomous electric vehicle that transmits an annoying sonic transmission to discourage sea creatures from entering the net. The sonic transmitters are also used to communicate with the base station and with other drones through sonar.

It is estimated that there are currently about 500 million kilograms of plastic waste currently floating in the floor of our oceans. So, why is it important to get rid of plastic from the ocean floor? According to Chad Lieberman, "The plastic collected from the ocean floor stands to profit plastic recyclers greatly." Millions of pieces of plastic waste accumulate in areas where currents converge because of water movement, posing an ecological nightmare in these areas.

The plastic waste not only leads to the death of fish but also of coral reefs as well as other marine life. Plastic waste is also unsightly, leading to the destruction of would-be tourist destinations. Chad stated that, "This drone is advantageous over previously used methods because it is cheaper and it does not cause damage to wildlife."

Once the drone's batteries are about to drain, it returns to the ocean base and human crews haul it up and empty the content for recycling. Chad Ian Lieberman stated that, "This may just be a concept, but there is no reason the drone should not go into mass production with the interest it has generated."

About 6WSEO
Chad Lieberman is the founder and lead at 6WSEO. This New York-based company is among the top 100 SEO agencies in the world. It offers comprehensive and customized search engine marketing solutions to clients in the U.S., Canada, UK, and France, among others. Services on offer range from search engine optimization to online reputation management and from affiliate marketing to pay-per-click management. You can learn more on 6WSEO from http://www.6WSEO.com/blog.

Read more at http://www.virtual-strategy.com/2015/11/01/chad-lieberman-6w-negotiations-about-underwater-marine-design-concept-collecting-plastic-#axzz3qM2rdENj#MJqk8JppE0vMrMCW.99
 
http://www.6wim.com

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Monday, October 12, 2015

California joins six other states in banning plastic microbeads

Published in BioTechin.Asia by Laxmi Iyer on  

California state has followed Illinois and five other states including Colorado, Indiana, Maine, Maryland and New Jersey in banning plastic microbeads. Illinois was the first to ban microbeads in June 2014. Governor Jerry Brown of California signed the legislation on Thursday that bans these tiny abrasives used in exfoliators and other personal care products.

(Read More: Water pollution due to microbeads: a major problem in today’s world)

“We’re obviously incredibly excited,” said Stiv Wilson, director of campaigns at the nonprofit group the Story of Stuff Project. “We just passed a very simple ban on plastic microbeads without any loopholes.”

The consumer products industry had objected to certain aspects of the bill, arguing that it was overly restrictive and did not allow companies to come up with environmentally friendly alternatives. The California rules include a prohibition against biodegradable microbeads, which other states with similar legislation allow.

Lisa Powers, a spokeswoman for the Personal Care Products Council, said in an email that the industry trade group had taken a neutral position on the bill.

Microbeads look like tiny dots suspended in cleansers and other toiletries. Manufacturers including Johnson & Johnson and Procter & Gamble advertise their exfoliating power, particularly in face and body scrubs.

But when consumers rinse these products off, the microbeads gets flushed into sinks and sewage from where they enter the ocean and pollute them. Billions of microbeads have the same effect as grinding up plastic water bottles and dumping them into the ocean, environmentalists say.

These are harmful and are capable of affecting our aquatic ecosystems and human health. Microbeads look similar to fish eggs- especially their size, so aquatic organisms and birds mistake it for food and consume them. And when we consume these fishes and birds, they get passed onto us through the food chain.

Awareness on this issue is on the rise, and this is a step in the right direction.

Source: NewYork Times