We placed first at the FIRST Granite State District Event in Nashua, NH on March 3. Big thanks to FIRST Teams 177 and 138 for picking us in their alliance!
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We placed first at the FIRST Granite State District Event in Nashua, NH on March 3. Big thanks to FIRST Teams 177 and 138 for picking us in their alliance!
This is my contribution to build season lik
Interesting Mechanisms
Amputee Feels in Real-Time with Bionic Hand
Nine years after an accident caused the loss of his left hand, Dennis Aabo Sørensen from Denmark became the first amputee in the world to feel – in real-time – with a sensory-enhanced prosthetic hand that was surgically wired to nerves in his upper arm. Silvestro Micera and his team at EPFL Center for Neuroprosthetics and SSSA (Italy) developed the revolutionary sensory feedback that allowed Sørensen to feel again while handling objects. A prototype of this bionic technology was tested in February 2013 during a clinical trial in Rome under the supervision of Paolo Maria Rossini at Gemelli Hospital (Italy). The study is published in the February 5, 2014 edition of Science Translational Medicine, and represents a collaboration called Lifehand 2 between several European universities and hospitals.
“The sensory feedback was incredible,” reports the 36 year-old amputee from Denmark. “I could feel things that I hadn’t been able to feel in over nine years.” In a laboratory setting wearing a blindfold and earplugs, Sørensen was able to detect how strongly he was grasping, as well as the shape and consistency of different objects he picked up with his prosthetic. “When I held an object, I could feel if it was soft or hard, round or square.”
From Electrical Signal to Nerve Impulse Micera and his team enhanced the artificial hand with sensors that detect information about touch. This was done by measuring the tension in artificial tendons that control finger movement and turning this measurement into an electrical current. But this electrical signal is too coarse to be understood by the nervous system. Using computer algorithms, the scientists transformed the electrical signal into an impulse that sensory nerves can interpret. The sense of touch was achieved by sending the digitally refined signal through wires into four electrodes that were surgically implanted into what remains of Sørensen’s upper arm nerves.
“This is the first time in neuroprosthetics that sensory feedback has been restored and used by an amputee in real-time to control an artificial limb,” says Micera.
“We were worried about reduced sensitivity in Dennis’ nerves since they hadn’t been used in over nine years,” says Stanisa Raspopovic, first author and scientist at EPFL and SSSA. These concerns faded away as the scientists successfully reactivated Sørensen’s sense of touch.
Connecting Electrodes to Nerves
On January 26, 2013, Sørensen underwent surgery in Rome at Gemelli Hospital. A specialized group of surgeons and neurologists, led by Paolo Maria Rossini, implanted so-called transneural electrodes into the ulnar and median nerves of Sørensen’s left arm. After 19 days of preliminary tests, Micera and his team connected their prosthetic to the electrodes – and to Sørensen – every day for an entire week.
The ultra-thin, ultra-precise electrodes, developed by Thomas Stieglitz’s research group at Freiburg University (Germany), made it possible to relay extremely weak electrical signals directly into the nervous system. A tremendous amount of preliminary research was done to ensure that the electrodes would continue to work even after the formation of post-surgery scar tissue. It is also the first time that such electrodes have been transversally implanted into the peripheral nervous system of an amputee.
The First Sensory-Enhanced Artificial Limb The clinical study provides the first step towards a bionic hand, although a sensory-enhanced prosthetic is years away from being commercially available and the bionic hand of science fiction movies is even further away.
The next step involves miniaturizing the sensory feedback electronics for a portable prosthetic. In addition, the scientists will fine-tune the sensory technology for better touch resolution and increased awareness about the angular movement of fingers.
The electrodes were removed from Sørensen’s arm after one month due to safety restrictions imposed on clinical trials, although the scientists are optimistic that they could remain implanted and functional without damage to the nervous system for many years.
Psychological Strength an Asset Sørensen’s psychological strength was an asset for the clinical study. He says, “I was more than happy to volunteer for the clinical trial, not only for myself, but to help other amputees as well.” Now he faces the challenge of having experienced touch again for only a short period of time.
Sørensen lost his left hand while handling fireworks during a family holiday. He was rushed to the hospital where his hand was immediately amputated. Since then, he has been wearing a commercial prosthetic that detects muscle movement in his stump, allowing him to open and close his hand, and hold onto objects.
“It works like a brake on a motorbike,” explains Sørensen about the conventional prosthetic he usually wears. “When you squeeze the brake, the hand closes. When you relax, the hand opens.” Without sensory information being fed back into the nervous system, though, Sørensen cannot feel what he’s trying to grasp and must constantly watch his prosthetic to avoid crushing the object.
Just after the amputation, Sørensen recounts what the doctor told him. “There are two ways you can view this. You can sit in the corner and feel sorry for yourself. Or, you can get up and feel grateful for what you have. I believe you’ll adopt the second view.”
“He was right,” says Sørensen.
down to the wire. #cuttingedge #inprogress #electronics #robotics #video #projection #topsecret (at Somewhere on the Road to the Impossible)
This week-end, visitors of the London Science Museum can trek through the un-natural habitats of robots inspired by nature, interacting with creatures that swim, flap, and crawl, in a unique safari experience. “Visitors to this exhibition called Robot SafariEU will see not just how nature can inspire innovative robotic designs, but also how these biomimetic robots are actually advancing our understanding of the animals and plants they mimic,” explains Nicola Burghall, Content Developer for Robot SafariEU. “We’re very excited to be able to showcase some of the latest European biomimetic robotics research here at the Science Museum.” EPFL roboticists at the Biorob laboratory designed some of the models presented at the Safari, namely the Cheetah-cub and a family of salamanders. These electronic creatures are used to study the nervous system, and in the long-run, to help develop therapies for spinal cord injuries and better prostheses for amputees. (via EPFL in the Depths of London’s Robot Jungle)
Six-Legged Monster Robot Crab To Crawl The Sea Floor For Treasures
Underwater robots are an important part of the marine research and deepwater exploration ecosystem. In the past we have covered cute little robots that look like sea turtles. Today we introduce you to a monster. The Crabster CR200.
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The last week of build season
Me at 5: hell yeah robots Me at 15: hell yeah robots Me at 20: hell yeah robots Me at 50: hell yeah robots Me at 90: hell yeah robots My epitaph: hell yeah robots
Can’t believe it’s week 4 already
The electrical team has been a little busy.
50 posts!
Thanks To FIRST team 1058!
We wanted to thank team 1058, the PVC Pirates! They graciously donated to our team a much needed motor and sprocket that will allow our robot to run. They also allowed us to use their machine shop. Thanks guys, you're the best, and we appreciate it so much!!
Are you my mummy?
The Empty Child
so we should get props for determination here... we just lost power in the middle of a snowstorm, and we are still at our school working on our robot
FACT: Outer space is like, really, really big.
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