Power-Up! Fuelling a new generation of assistive technologies
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The aim of Power-Up! is to adapt an existing power add-on used by people who self-propel their wheelchairs so that it provides an optimal level of proportional assistance and incorporates fuel cell technology to drastically reduce the weight of the device. This will have considerable benefits both for those who self-propel and those currently pushed by a carer as it will increase a person's ability to push themselves, reducing the burden on carers and increasing the independence of wheelchairs users. The research idea has derived both from end-user demand and also technological advances in three areas: 1) The development of a light-weight force-sensing handrim for manual wheelchair users (the SenseWheel); 2) a model of proportional power assistance; 3) hybrid power source development incorporating a new low-cost, high-performance fuel cell technology. A key part of the project will be in determining requirements of the system from a technology (using a drive cycle method) and user-needs perspectives.
The average wheelchair user is an overweight/obese 57 years old with a long-term health condition and dependent in some way on a carer [5]. There are seven million carers in the UK. Of those, 1.2 million carers have suffered a physical injury due to caring and over half have had to stop giving care due to mental and/or physical health complaints. Over 50% of carers are the spouse/partner of the person being cared for and 65% are themselves overweight or obese. It is clear that carers are struggling physically to care for wheelchair users [5]. At the other end of the spectrum are the 240,000 active wheelchair users who are busy getting on with their daily activities [2]; going to work, collecting their children from school, etc. With each push they further wear their shoulder and eventually, nearly all will have upper limb injuries, some so severe they will be unable to independently push themselves. Injuries are thought to arise in part to the cyclical nature of the wheelchair push cycle [6], [7] and are exasperated by the low gross mechanical efficiency of wheelchair pushing - only 10% of effort goes directly into making a person move forwards [8]and this is when pushing along flat, smooth surfaces such as hospital lino. On more challenging surfaces such as slopes, cross-slopes and rough or loose surfaces (e.g. gravel) the push forces will be much higher .To give an indication of scale of the problem: the incidence of shoulder pain is reported to range from 42% [9] to 66% [10], with the most commonly reported injury damage to the rotator cuff muscles [11].
The overall workflow is given in Figure 1. The initial work package will use the tools developed in current ARCCS project (EP/L023849/11 Dr. Holloway is Co-I) and further improve these to automatically produce probes to help understand user needs. The results from WP1 will help inform the specific tasks to be conducted at the PAMELA facility as well as the outdoor route. The recently invented SenseWheel will be used to measure the biomechanics of pushing during WP3. These will inform the shoulder forces which are occurring as people push their wheelchair with a power-assist device.In tandem we will collect the power consumption of the commercially available SmartDrive wheel, using a bespoke set of sensors. WP3 will be used to construct drive cycles of everyday journeys, which have been undertaken in WP1. Furthermore, the process of using micro-trips will be validated by comparing the actual power consumption during an outside route and the one predicted by the PAMELA micro-trips. The results of WP2 will be used to inform the specification of the new hybrid fuel cell system (WP3) and the proportional control system (WP4). The final design will be trialled at the Queen Elizabeth Olympic Park. The project is supported by the London Legacy Development Corporation as well as being closely linked to a PhD studentship,which is already awarded and will overlap with this grant.
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Potential Impact:
Society and the environment: There is an increasing cost to society of a lack of individual mobility, especially one which helps maintain a person's capabilities. Fuel cells are the most energy efficient means of converting chemical energy to electricity, furthermore they are much lighter than traditional batteries. Power-up! will utilise these features combined with a new proportional assist control module to ensure people remain healthy while being able to get out and about and interact with the world.
Economy and the commercial sector: This Power-Up! technology will create jobs as it is envisaged it will be spun out of UCL in a similar manner to the SenseWheel. The resulting SME will grow alongside those currently being developed as part of the ARRT-BC (EP/M025543/1) project giving a critical mass of SME's focussed on the development of novel assitive technologies and rehabilitation therapies. Further, it will have demonstrated a niche market for fuel cell technology which could be expanded to all other types of personal mobility.
People:Positive impact for the people involved in the project will be derived from the expertise developed by the research
team, training and transferrable skills acquired. The people who we will work with at the QEOP will benefit from interaction with academics and the university environment through alternative approaches and highly creative ideas. General career progression will ensue for all those involved in the project as a result of the learning, outputs and advances made.
Knowledge and science base:This project will develop an open access data base of power requirements for wheelchair users as well as developing best practice standards for implementing new power sources to ensure a healthy balance between fitness and power requirements. Results will be published in wider range of journals to ensure those in occupation therapy
Future Possibilities: The project is supported by the LLDC, and this is of strategic importance as it forms part of a wider body of work to embed activities supporting the Paralympic legacy into activities on the QEOP. Both the PI and CO-I on this grant have submitted bids to create a centre of excellence for assistive technology design and an Advanced Propulsion Laboratory respectively. This project
University College London | LEAD_ORG |
University of Southampton | COLLAB_ORG |
Tohoku University | COLLAB_ORG |
London School of Hygiene and Tropical Medicine (LSHTM) | COLLAB_ORG |
National University of Ireland, Maynooth | COLLAB_ORG |
UNIVERSITY OF SALFORD | COLLAB_ORG |
GSMA | COLLAB_ORG |
World Health Organization (WHO) | COLLAB_ORG |
Microsoft Corporation | COLLAB_ORG |
Amref Health Africa | COLLAB_ORG |
CLINTON HEALTH ACCESS INITIATIVE | COLLAB_ORG |
UNICEF | COLLAB_ORG |
UNIVERSITY OF NAIROBI | COLLAB_ORG |
London Legacy Development Corporation | PP_ORG |
Cathy Holloway | PI_PER |
Daniel Brett | COI_PER |
Subjects by relevance
- Physically disabled people
- Wheelchairs
- Biomechanics
Extracted key phrases
- New power source
- Hybrid power source development
- Proportional power assistance
- Actual power consumption
- Power requirement
- New hybrid fuel cell system
- Performance fuel cell technology
- Wheelchair push cycle
- Manual wheelchair user
- Average wheelchair user
- Active wheelchair user
- Assistive technology design
- New proportional assist control module
- Novel assitive technology
- New generation