[Tech] (Video) Energy Recycling Artificial Foot
An artificial foot that recycles energy otherwise wasted in between steps could make it easier for amputees to walk, its developers say.
"For amputees, what they experience when they're trying to walk normally is what I would experience if I were carrying an extra 30 pounds," said Art Kuo, professor in the University of Michigan departments of Biomedical Engineering and Mechanical Engineering.
Compared with conventional prosthetic feet, the new prototype device significantly cuts the energy spent per step.
Energy Recycling with the Artificial Foot: High-speed video of the energy-recycling artificial foot, played back at 6% of actual speed. Camera rate was 500 frames per second. The foot proceeds through the phases described in cf. Figure 2, beginning prior to heel strike and ending at reset. The foot is worn by an able-bodied individual using a below-knee prosthesis simulator boot. This demonstration was performed overground and with less-curved versions of the crepe roll-over shapes of the artificial foot than used in testing. Developed by Steve Collins and Art Kuo at the University of Michigan. Video by Eno Yliniemi and Randall Ching
A paper about the device is published in the Feb. 17 edition of in the journal PLoS ONE. The foot was created by Kuo and Steve Collins, who was then a U-M graduate student. Now Collins is an associate research fellow at Delft University of Technology in the Netherlands.
The human walking gait naturally wastes energy as each foot collides with the ground in between steps.
A typical prosthesis doesn't reproduce the force a living ankle exerts to push off of the ground. As a result, test subjects spent 23 percent more energy walking with a conventional prosthetic foot, compared with walking naturally. To test how stepping with their device compared with normal walking, the engineers conducted their experiments with non-amputees wearing a rigid boot and prosthetic simulator.
In their energy-recycling foot, the engineers put the wasted walking energy to work enhancing the power of ankle push-off. The foot naturally captures the dissipated energy. A microcontroller tells the foot to return the energy to the system at precisely the right time.
Based on metabolic rate measurements, the test subjects spent 14 percent more energy walking in energy-recycling artificial foot than they did walking naturally. That's a significant decrease from the 23 percent more energy they used in the conventional prosthetic foot, Kuo says.
"We know there's an energy penalty in using an artificial foot," Kuo said. "We're almost cutting that penalty in half."
He explained how this invention differs from current technologies.
"All prosthetic feet store and return energy, but they don't give you a choice about when and how. They just return it whenever they want," Kuo said. "This is the first device to release the energy in the right way to supplement push-off, and to do so without an external power source."
Other devices that boost push-off power use motors and require large batteries.
Because the energy-recycling foot takes advantage of power that would otherwise be lost, it uses less than 1 Watt of electricity through a small, portable battery.
"Individuals with lower limb amputations, such as veterans of the conflicts in Iraq and Afghanistan or patients suffering from diabetes, often find walking a difficult task. Our new design may restore function and reduce effort for these users," Collins said. "With further progress, robotic limbs may yet beat their biological forerunners."
This paper demonstrates that the engineers' idea works. They are now testing the foot on amputees at the Seattle Veterans Affairs Medical Center. Commercial devices based on the technology are under development by an Ann Arbor company.

TREND REPORT












Monthly Trend Report 2009
2009년 12월 : (12.2009_TRENDBIRD) Monthly Trend Report_Sample
2009년 11월 : (11.2009_TRENDBIRD) Monthly Trend Report_Sample
2009년 10월 : (10.2009_TRENDBIRD) Monthly Trend Report_Sample
2009년 9월 : (09.2009_TRENDBIRD) Monthly Trend Report_Sample
2009년 8월 : (08.2009_TRENDBIRD) Monthly Trend Report_Sample
2009년 7월 : (07.2009_TRENDBIRD) Monthly Trend Report_Sample
2009년 6월 : (06.2009_TRENDBIRD) Monthly Trend Report_Sample
2009년 5월 : (05.2009_TRENDBIRD) Monthly Trend Report_Sample
2009년 4월 : (04.2009_TRENDBIRD) Monthly Trend Report_Sample
2009년 3월 : (03.2009_TRENDBIRD) Monthly Trend Report_Sample
2009년 2월 : (02.2009_TRENDBIRD) Monthly Trend Report_Sample
Annual Trend Report 2010 (샘플보고서 다운로드)
연간 트렌드 보고서 2010 소개 : (Intro) Annual Trend Report 2010
(01) "마케팅 / 비즈니스 / 컨슈머" 리포트 : (Marketing_Consumer) Annual Trend Report 2010
(02) "모바일 / 휴대폰 / 텔레콤" 리포트 : (Mobile_Telco) Annual Trend Report 2010
(03) "그린 / 친환경 / 대체에너지" 리포트 : (Green_CleanTech) Annual Trend Report 2010
(04) "인터넷 / 소셜미디어 / Web2.0" 리포트 : (Internet_SocialMeda) Annual Trend Report 2010
(05) "투자유치기업 / M&A / IPO" 리포트 : (Money_Funding_M&A) Annual Trend Report 2010
(06) "디자인 / 미래컨셉 / 디자인제품" 리포트 : (Design_Concept) Annual Trend Report 2010
(07) "아이디어 / 신제품 / 혁신제품" 리포트 : (Idea_NewProduct) Annual Trend Report 2010
(08) "헬스케어 / 바이오 / 의료기술" 리포트 : (Heatlhcare_BioTech) Annual Trend Report 2010
(09) "자동차 / 교통 / 운송기기" 리포트 : (Auto_Vehicle) Annual Trend Report 2010
(10) "럭셔리 / 패션 / 뷰티" 리포트 : (Luxury_Fashion_Beauty) Annual Trend Report 2010
관심있으신 기업 담당자분들께서는 trendbird@gmail.com으로
본인이 소속된 조직명과 부서명, 직책 및 연락처를 알려주시면,
Trendbird Membership 서비스 소개자료를 발송해드리도록 하겠습니다.
Thanks, The Trendbird Team.
TRENDBIRD / Flacebo Corp.
(Future Trend Research & Consulting)