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Innovative Polymer for Emissions Reduction and Sustainability
Linked Sessions:
Main Presenter: Volta Marcella
Co-Authors: Shonfield Peter Livesey Katie Cambi Alice
Organizations are encountering mounting pressure from customers and stakeholders concerning the environmental performance of their offerings. At the same time, greenhouse gas emissions (GHG) are on the rise, with various global policies designed to encourage a circular economy and sustainable production practices. While adopting circular economy principles and sustainable design may pose challenges, companies are required to substantiate the effectiveness of their initiatives with credible and solid claims. Consequently, there is a demand for innovative technologies that can more effectively support emissions reduction efforts.
A worldwide manufacturing firm has created a versatile polymer intended for numerous consumer product uses, including textile and consumer goods applications, and is compatible with both injection molding and extrusion processes. This polymer comprises various chemicals and raw materials, including an innovative polyhydroxybutyrate (PHB) polymer that utilizes fossil natural gas and subsequently eliminates greenhouse gas emissions from the atmosphere through a microorganism culture that feeds on methane to generate PHB.
The methane used as input for this process is obtained from an abandoned coal mine it’s leaking from. As this gas is getting captured and uses as feedstock for its PHB production process, the methane used can thus be considered as being a ‘removal’ from the atmosphere and a climate change fossil removal.
To validate the results and ensure clear and robust communication, a Life Cycle Assessment (LCA) was commissioned and conducted in accordance with the international standards for LCA, ISO 14040:2006 and ISO 14044:2006+A1+A2:2020 (ISO 14040, 2006a:2020; ISO 14044, 2006b:2020) to assess the environmental impact profile of the compound. The intended audience relates to external companies to whom verified and robust footprint results of the study are intended to be communicated.
When fossil removal is factored into the climate change impact assessments, the compound exhibits a cradle-to-gate impact per kg that is negative in terms of kg CO2 equivalent. This negative figure is due to the utilization of methane from the atmosphere in the production of the innovative material, which enables the removal of fossil carbon.
The study illustrates that the inclusion of a raw material capable of eliminating fossil emissions leads to a reduction in emissions throughout the supply chain associated with products that utilize this specific raw material.