Completed Materials & Manufacturing Clean Energy

HALO Hybrid Automotive Lightweight Optimisation

In plain English

AI plain-English summary

Car makers are running out of room to cut emissions by improving engines alone, so they must now strip weight from vehicles without driving up costs. This project tackles a practical bottleneck in vehicle manufacturing. Lighter cars burn less fuel, but lightweight materials such as aluminium, carbon fibre, and high-strength steel are expensive. Using them sparingly—only where structural loads demand strength—could save weight and money, but designing such mixed-material structures is currently too slow and unreliable. The researchers aim to develop new computer-modelling techniques that can predict how a multi-material body will behave under crash and load conditions, allowing engineers to place the right material in the right place the first time. If the modelling tools work, manufacturers could produce cars that are both lighter and cheaper to build. That would help meet tightening UK and EU carbon-emission targets without passing large price increases to buyers. The approach could also spread beyond cars to any transport or infrastructure component where weight and cost must be balanced—lorries, trains, aircraft, or even building frames. The project is applied engineering, not fundamental science: its success depends on whether the models can handle the complexity of real production lines and crash safety standards.

View original technical description
The is a great pressure on the UK vehicle manufacturers to reduce fuel consumption and lower CO2 emissions. Great improvements in these requirements have taken place over recent years mostly by the development of highly fuel efficient engines. This trend of improved engines will not be sufficient to meet impending legislative requirements on carbon emissions. Therefore weight reduction of vehicles is vitally important. This must be done cost competitively, consumers would not pay much more for vehicles so cost effective solutions must be found. This programme seeks to find new ways of producing optimised structures using the approach of applying different materials where they are needed. This novel part of this technology is to develop the modelling techniques that allow the efficient use of these multiple materials. By doing this, both weight optimised and cost optimised structures can be produced.

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Related Research

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Affordable Lightweighting Through Pre-form Automation (ALPA)
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CHASSIS (Composite Hybrid Automotive Suspension System Innovative Structures)
Translating Metallic Automotive Compents to Advanced Materials
Smart Hybrid Automotive Panel Engineering (SHAPE)

Original classification

Collaborative R&D

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