Breaking 12:30 AMD unveils Helios AI system as it challenges Nvidia’s dominance with Microsoft support 11:01 3M raises annual profit outlook as industrial business drives recovery 10:42 Alphabet reportedly develops AI chip with Gemini technology built into its architecture 10:19 US aviation regulator pushes next-generation aircraft toward commercial launch 10:00 US banks poised to support Japan’s $550 billion investment initiative in the United States 09:53 Tennessee mother charged after fatal shooting following alleged home intrusion 09:50 Boeing challenges Airbus loan package as US-EU aircraft subsidy tensions return 09:48 BlackRock prepares $12 billion-plus bond sale to finance major Texas data center project 09:31 US court puts $81 billion Paramount and Warner Bros. Discovery merger on hold 09:23 Christopher Nolan plans a long break after The Odyssey, delaying his next film for at least three years 07:57 Brazil seeks to avoid trade escalation as new US tariffs raise economic concerns 07:10 Trump announces new 50% tariffs on a wide range of Canadian products 20:00 Man arrested after suspected arson attack outside federal building in New York 19:31 NASA says Artemis III remains on track despite Blue Origin setback 17:45 US appeals court overturns class action status in Boeing 737 MAX 9 shareholder lawsuit 15:45 US accuses Cuba of decades-long espionage and subversion campaign 15:36 New York reports three deaths and 74 cases linked to Legionnaires’ disease outbreak 15:10 Trump demands compensation from Canada over Ontario wildfire smoke impact 13:46 US expands electronic warfare capabilities for Morocco’s Apache helicopters 13:45 Tempus to acquire Personalis in $1.5 billion deal to strengthen AI-driven cancer diagnostics

MIT engineers silent artificial muscle fibers for robots

Friday 10 April 2026 - 08:20
By: Dakir Madiha
MIT engineers silent artificial muscle fibers for robots

Researchers at MIT Media Lab and Italy's Politecnico di Bari developed a new class of artificial muscle fibers that operate silently without motors, external pumps or bulky hydraulic gear. The advance could reshape robot movement and portable assistive device design.

The technology, called electrofluidic fiber muscles, appeared in a Science Robotics paper this week. Led by MIT Media Lab doctoral student Ozgun Kilic Afsar and Politecnico di Bari professor Vito Cacucciolo, the work merges miniaturized McKibben actuators, soft fluidic muscles, with millimetric electrohydrodynamic (EHD) pumps. These pumps generate pressure in sealed fluid compartments without moving parts.

EHD pumps at this scale inject charges into dielectric fluid to create ions that pull liquid along. Each weighs grams and measures toothpick-thin. One pump sits between two McKibben actuators in antagonist setup, one contracting as the other relaxes to mimic human biceps and triceps action.

"We chose this setup not just for biomimicry but to store fluid within the muscle itself," Afsar said in an MIT release. Closed-loop fiber circuits eliminate external reservoirs, a key lab-to-real-world barrier for fluidic soft robots.

Fibers bundle into configurations like biological muscle tissue for compact integration into robots or exoskeletons, distributed across structures rather than joint-focused. Tests showed a woven biceps-triceps pair driving a 3D-printed robotic arm and a lever arm launching objects in 100 milliseconds.

Herbert Shea, a professor at Switzerland's EPFL not involved, called it "a major step for fiber-format soft actuators." He noted the pump's lack of moving parts makes them quiet, ideal for prosthetics and assistive garments.

Applications range from exoskeletons for heavy lifting to dexterity aids. "Wherever fluidic actuators operate or engineers want internal over external pumps, these principles suit broad fluid-driven robotic systems," Cacucciolo said. Funding came from the European Research Council and MIT Media Lab's multi-partner consortium.


  • Fajr
  • Sunrise
  • Dhuhr
  • Asr
  • Maghrib
  • Isha

Read more

This website, walaw.press, uses cookies to provide you with a good browsing experience and to continuously improve our services. By continuing to browse this site, you agree to the use of these cookies.