Employing AZ31B Eco-Magnesium® (Eco-Mg) alloy in the European project Green Metallurgy (Green Metallurgy Project) process route provides the lowest carbon footprint since precursor materials. Chips produced from the machining phase can be used directly in the cold compaction step, and followed by direct extrusion to produce fully densified semifinished bars. These materials are of great interest in certain manufacturing sectors as they can impact future market scenarios based on the high rate of recycled material. Specifically, there are two key-points which can be considered sources of improvement: a) Eco-Mg alloys contribute to drastically reduce of the Global Warming Potential (GWP) of the entire process route as recycled chips have bee...
Metallic material processing plays a significant role in terms of global environmental impact which ...
Current Mg alloys have several drawbacks that limit wide and profitable utilization in the industri...
A LCA feasibility study was undertaken to determine the environmental impact of an Eco-magnesium pro...
Employing AZ31B Eco-Magnesium® (Eco-Mg) alloy in the European project Green Metallurgy (Green Metal...
The Green Metallurgy Project, a LIFE+ project co-financed by the European Union Commission, has now ...
Employing non-flammable AZ91D-1.5CaO Eco-Magnesium® (Eco-Mg) alloy in the European project CRAL prov...
The GREEN METALLURGY Project, a LIFE+ project co-financed by the EU Commission, has just concluded i...
The GREEN METALLURGY Project, a LIFE+ project cofinanced by the EU Commission, has just concluded i...
For a few years now, magnesium supply has been dominated by Chinese producers who provide about 80 %...
The goal of this project is to determine the reductions in greenhouse gas (GHG) emissions associated...
The use of Life Cycle Assessment (LCA) for materials/process/product design is becoming increasingly...
Starting from existing challenges and limitations in light metal recycling (in particular aluminium ...
Metallic material processing plays a significant role in terms of global environmental impact which ...
Current Mg alloys have several drawbacks that limit wide and profitable utilization in the industri...
A LCA feasibility study was undertaken to determine the environmental impact of an Eco-magnesium pro...
Employing AZ31B Eco-Magnesium® (Eco-Mg) alloy in the European project Green Metallurgy (Green Metal...
The Green Metallurgy Project, a LIFE+ project co-financed by the European Union Commission, has now ...
Employing non-flammable AZ91D-1.5CaO Eco-Magnesium® (Eco-Mg) alloy in the European project CRAL prov...
The GREEN METALLURGY Project, a LIFE+ project co-financed by the EU Commission, has just concluded i...
The GREEN METALLURGY Project, a LIFE+ project cofinanced by the EU Commission, has just concluded i...
For a few years now, magnesium supply has been dominated by Chinese producers who provide about 80 %...
The goal of this project is to determine the reductions in greenhouse gas (GHG) emissions associated...
The use of Life Cycle Assessment (LCA) for materials/process/product design is becoming increasingly...
Starting from existing challenges and limitations in light metal recycling (in particular aluminium ...
Metallic material processing plays a significant role in terms of global environmental impact which ...
Current Mg alloys have several drawbacks that limit wide and profitable utilization in the industri...
A LCA feasibility study was undertaken to determine the environmental impact of an Eco-magnesium pro...