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Showing posts with label Recycling. Show all posts
Showing posts with label Recycling. Show all posts

Thursday, September 4, 2014

Recycling Mixed Plastics

Researchers have developed a new process which will greatly simplify the process of sorting plastics in recycling plants. The method enables automated identification of polymers, facilitating rapid separation of plastics for re-use.

A team of researchers led by Professor Heinz Langhals of LMU’s Department of Chemistry has taken a significant step which promises to markedly expedite the recycling of plastic waste. They have developed a technique which provides for automated recognition of their polymer constituents, thus improving the efficiency of recycling and re-use of the various types of plastic. The technique takes advantage of the polymer-specific nature of the intrinsic fluorescence induced by photoexcitation. “Plastics emit fluorescent light when exposed to a brief flash of light, and the emission decays with time in a distinctive pattern. Thus, their fluorescence lifetimes are highly characteristic for the different types of polymers, and can serve as an identifying fingerprint,” Langhals explains. Details of the new method appear in the latest issue of the journal “Green and Sustainable Chemistry”.

The new technique, which is the subject of a patent application, involves exposing particles of plastic to a brief flash of light which causes the material to fluoresce. Photoelectric sensors then measure the intensity of the light emitted in response to the inducing photoexcitation to determine the dynamics of its decay. Because the different polymer materials used in the manufacture of plastics display specific fluorescence lifetimes, the form of the decay curve can be used to identify their chemical nature. “With this process, errors in measurement are practically ruled out; for any given material, one will always obtain the same value for the fluorescence half-life, just as in the case of radioactive decay,” says Langhals.

Unlike metals, the quality of which often suffers during the recycling process itself, recycled plastics can be processed quite efficiently. “Polymers represent an interesting basis for the sustainable cycling of technological materials. The crucial requirement is that the recycled material should be chemically pure. In that case, bottles made of PET, for example, can be relatively easily turned into synthetic fibre for use in waterproof windcheaters,” says Langhals.

The vast majority of technical polymers are processed as thermoplastics, i.e., they are melted at high temperature and the finished article is produced by injecting the molten material into an appropriate mold, where it allowed to set. Reheating of recycled plastic can, however, lead to deleterious alterations in its properties of the material unless the sorted material is of high purity. Contamination levels as low as 5% are sufficient to significantly reduce the quality of the reformed product. The reason for this “down-cycling” effect is that, as a general rule, polymers tend to be immiscible, as they are chemically incompatible with one another. Remelting of polymer mixtures therefore often leads to partitioning of the different polymers into distinct domains separated by grain boundaries, which compromises the quality of the final product. For this reason, high-quality plastics are always manufactured exclusively from pristine precursors – never from recycled material.

The new method developed by the LMU team could, however, change this. “The waste problem can only be solved by chemical means, and our process can make a significant contribution to environmental protection, because it makes automated sorting feasible,” says Langhals. Indeed, the use of fluorescence lifetime measurements permits the identification and sorting of up to 1.5 tons of plastic per hour. In other words, the method in its present form already meets the specifications required for its application on an industrial scale.

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Sunday, January 27, 2013

Phosphorus Recycling

In the 20th century the three nutrients nitrogen, phosphorus and potassium have enabled agriculture to increase its productivity. This is usually represented by three numbers (for example, 19-12-5). We obtain nitrogen from the air, but we must mine phosphorus and potassium. The world has enough potassium to last several centuries. But phosphorus supplies may start running out in the near future.

The reserves of phosphorus aren't very evenly distributed. The U.S. is the world’s second-largest producer of phosphorus (after China), at 19 percent of the total, but 65 percent of that amount comes from a single source: pit mines near Tampa, which may not last more than a few decades. Meanwhile nearly 40 percent of global reserves are controlled by a single country, Morocco, sometimes referred to as the “Saudi Arabia of phosphorus.” Although Morocco is a stable, friendly nation, the imbalance makes phosphorus a geostrategic ticking time bomb.

The conventional phosphorus fertilizer production cycle is an energy-intensive process that releases greenhouse gases into the environment at every stage:
  • mining of phosphorus ore, 
  • concentration into phosphate rock, 
  • transportation from mine sites around the world, 
  • centralized manufacture into fertilizer, and 
  • transportation to customers.
Each year more than 100 million tons of phosphate rock are mined and processed into fertilizer. Over time this fertilizer enters the ecosystem as waste and agricultural runoff, leading to excessive nutrient levels, or a condition known as eutrophication. Eutrophication causes excessive algae growth in lakes, streams and oceans which depletes the oxygen supply in the water that is necessary to support aquatic life.

A Solution

Our food contains the nutrients taken up by plants which we expel back in to the environment by our digestive systems and toilets. Whilst traditional sources from rocks are being depleted there is quite a lot of it in sewage treatment plants. Thames Water has installed new technology from Ostara in its Slough plant. It strips phosphorous from sewage water producing around 120 tonnes of fertiliser each year. The end result is a produce called Crystal Green.    

  1. Waste water streams from municipal and industrial treatment facilities, rich in phosphorus and nitrogen, provide essential nutrient streams for the recovery technology.
  2. Fertilizer Production: Rather than view sewage as waste, the solution transforms waste water streams into a renewable resource, creating a planet-friendly fertilizer and saving millions in plant maintenance costs.
  3. Agriculture: Crystal Green is the world's first fertilizer made from a local, renewable resource. Suitable in horticultural, turf and agriculture, its slow-release formulation results in considerably less nutrient leaching and runoff.
  4. Food Consumption: The recovery technology is the ideal solution for growing urban areas where nutrient discharge limits become a challenge to meet in the face of rising volumes of waste water and associated costs.
  5. Environmental Impact: By reclaiming the nutrients in their municipal, industrial and livestock waste waters, most countries could actually become phosphorus-independent – and help protect water resources from these otherwise polluting nutrients.
Useful links for more information: