Robot Technology News
ROBO SPACE
Hopping gives this tiny robot a leg up
illustration only
Hopping gives this tiny robot a leg up
by Adam Zewe | MIT News
Boston MA (SPX) Apr 14, 2025

Insect-scale robots can squeeze into places their larger counterparts can't, like deep into a collapsed building to search for survivors after an earthquake.

However, as they move through the rubble, tiny crawling robots might encounter tall obstacles they can't climb over or slanted surfaces they will slide down. While aerial robots could avoid these hazards, the amount of energy required for flight would severely limit how far the robot can travel into the wreckage before it needs to return to base and recharge.

To get the best of both locomotion methods, MIT researchers developed a hopping robot that can leap over tall obstacles and jump across slanted or uneven surfaces, while using far less energy than an aerial robot.

The hopping robot, which is smaller than a human thumb and weighs less than a paperclip, has a springy leg that propels it off the ground, and four flapping-wing modules that give it lift and control its orientation.

Due to its light weight and durability, and the energy efficiency of the hopping process, the robot could carry about 10 times more payload than a similar-sized aerial robot, opening the door to many new applications.

"Being able to put batteries, circuits, and sensors on board has become much more feasible with a hopping robot than a flying one. Our hope is that one day this robot could go out of the lab and be useful in real-world scenarios," says Yi-Hsuan (Nemo) Hsiao, an MIT graduate student and co-lead author of a paper on the hopping robot.

Hsiao is joined on the paper by co-lead authors Songnan Bai, a research assistant professor at The University of Hong Kong; and Zhongtao Guan, an incoming MIT graduate student who completed this work as a visiting undergraduate; as well as Suhan Kim and Zhijian Ren of MIT; and senior authors Pakpong Chirarattananon, an associate professor of the City University of Hong Kong; and Kevin Chen, an associate professor in the MIT Department of Electrical Engineering and Computer Science and head of the Soft and Micro Robotics Laboratory within the Research Laboratory of Electronics. The research appears in Science Advances.

Maximizing efficiency

Jumping is common among insects, from fleas that leap onto new hosts to grasshoppers that bound around a meadow. While jumping is less common among insect-scale robots, which usually fly or crawl, hopping affords many advantages for energy efficiency.

When a robot hops, it transforms potential energy, which comes from its height off the ground, into kinetic energy as it falls. This kinetic energy transforms back to potential energy when it hits the ground, then back to kinetic as it rises, and so on.

To maximize efficiency of this process, the MIT robot is fitted with an elastic leg made from a compression spring, which is akin to the spring on a click-top pen. This spring converts the robot's downward velocity to upward velocity when it strikes the ground.

"If you have an ideal spring, your robot can just hop along without losing any energy. But since our spring is not quite ideal, we use the flapping modules to compensate for the small amount of energy it loses when it makes contact with the ground," Hsiao explains.

As the robot bounces back up into the air, the flapping wings provide lift, while ensuring the robot remains upright and has the correct orientation for its next jump. Its four flapping-wing mechanisms are powered by soft actuators, or artificial muscles, that are durable enough to endure repeated impacts with the ground without being damaged.

"We have been using the same robot for this entire series of experiments, and we never needed to stop and fix it," Hsiao adds.

Key to the robot's performance is a fast control mechanism that determines how the robot should be oriented for its next jump. Sensing is performed using an external motion-tracking system, and an observer algorithm computes the necessary control information using sensor measurements.

As the robot hops, it follows a ballistic trajectory, arcing through the air. At the peak of that trajectory, it estimates its landing position. Then, based on its target landing point, the controller calculates the desired takeoff velocity for the next jump. While airborne, the robot flaps its wings to adjust its orientation so it strikes the ground with the correct angle and axis to move in the proper direction and at the right speed.

Durability and flexibility

The researchers put the hopping robot, and its control mechanism, to the test on a variety of surfaces, including grass, ice, wet glass, and uneven soil - it successfully traversed all surfaces. The robot could even hop on a surface that was dynamically tilting.

"The robot doesn't really care about the angle of the surface it is landing on. As long as it doesn't slip when it strikes the ground, it will be fine," Hsiao says.

Since the controller can handle multiple terrains, the robot can easily transition from one surface to another without missing a beat.

For instance, hopping across grass requires more thrust than hopping across glass, since blades of grass cause a damping effect that reduces its jump height. The controller can pump more energy to the robot's wings during its aerial phase to compensate.

Due to its small size and light weight, the robot has an even smaller moment of inertia, which makes it more agile than a larger robot and better able to withstand collisions.

The researchers showcased its agility by demonstrating acrobatic flips. The featherweight robot could also hop onto an airborne drone without damaging either device, which could be useful in collaborative tasks.

In addition, while the team demonstrated a hopping robot that carried twice its weight, the maximum payload may be much higher. Adding more weight doesn't hurt the robot's efficiency. Rather, the efficiency of the spring is the most significant factor that limits how much the robot can carry.

Moving forward, the researchers plan to leverage its ability to carry heavy loads by installing batteries, sensors, and other circuits onto the robot, in the hopes of enabling it to hop autonomously outside the lab.

"Multimodal robots (those combining multiple movement strategies) are generally challenging and particularly impressive at such a tiny scale. The versatility of this tiny multimodal robot - flipping, jumping on rough or moving terrain, and even another robot - makes it even more impressive," says Justin Yim, assistant professor at the University of Illinois at Urbana-Champagne, who was not involved with this work. "Continuous hopping shown in this research enables agile and efficient locomotion in environments with many large obstacles."

This research is funded, in part, by the U.S. National Science Foundation and the MIT MISTI program. Chirarattananon was supported by the Research Grants Council of the Hong Kong Special Administrative Region of China. Hsiao is supported by a MathWorks Fellowship, and Kim is supported by a Zakhartchenko Fellowship.

Research Report:"Hybrid locomotion at the insect scale: Combined flying and jumping for enhanced efficiency and versatility"

Related Links
Soft and Micro Robotics Laboratory
All about the robots on Earth and beyond!

Subscribe Free To Our Daily Newsletters
Tweet

RELATED CONTENT
The following news reports may link to other Space Media Network websites.
ROBO SPACE
In Alabama, NASA's annual rover vehicle challenge drives inspiration for moon, beyond
Washington DC (UPI) Apr 8, 2025
NASA will kick off its 31st annual Rover Competition this week in Alabama, giving students from around the world a chance to show their engineering prowess in the space agency's " obstacle course games. On Friday, student teams will gather for NASA's annual Human Exploration Rover Challenge near the Marshall Space Flight Center in Huntsville to compete at the U.S. Space & Rocket Center's Aviation Challenge course for events through Saturday. Expected to participate at the free event ... read more

ROBO SPACE
UK vows funding to boost drone and 'flying taxi' services

UC Berkeley engineers create world's smallest wireless flying robot

Sound energy emerges as next-gen drone defense tool

North Korea's Kim oversees test of new 'suicide drones'

ROBO SPACE
Japanese firms build 3D-printed train station in a week

Biomass satellite prepped for launch fuel load

Bacterial bio-repair method strengthens lunar construction bricks

Scientists fuse two extreme quantum materials into one exotic platform

ROBO SPACE
Soaring demand for AI chips fuels power usage: report

Japan to pour additional $5.4 bn into chipmaker Rapidus

Taiwan probes China's SMIC over 'illegal' talent poaching

China chip insiders eye stronger global ties despite trade tensions

ROBO SPACE
Nuclear fuel reaches new enrichment standard

Study explores radiation-driven chromium chemistry in molten salt reactors

Framatome and TechnicAtome complete acquisition of valve manufacturer

Framatome to upgrade digital systems at Swiss Leibstadt nuclear facility

ROBO SPACE
'Bring him home': Philippines migrant workers grapple with Duterte fallout

Iraq says kills senior Islamic State group leader

Iraq repatriates more families from IS-linked Syria camp

U.S., local officials say 'no specific credible' terror threats exist for upcoming Super Bowl

ROBO SPACE
AI surge to double data centre electricity demand by 2030: IEA

Iraq signs deal with US firm to produce 24,000 MW of electricity

Tajikistan to jail people for illegal electricity use

Deutsche Bank asset manager DWS fined 25 mn euros for 'greenwashing'

ROBO SPACE
Smart home platform lowers energy costs and boosts grid resilience

Battery boom drives Bangladesh lead poisoning epidemic

Commercial fusion milestone sets stage for next-gen power

A lifetime power source in miniature form

ROBO SPACE
China highlights major strides in moon research and exploration

Space station advances muscle and semiconductor science

China's Galactic Energy expands Yunyao satellite network with successful launch

Shenzhou XIX astronauts complete third spacewalk outside Tiangong

Subscribe Free To Our Daily Newsletters




The content herein, unless otherwise known to be public domain, are Copyright 1995-2024 - Space Media Network. All websites are published in Australia and are solely subject to Australian law and governed by Fair Use principals for news reporting and research purposes. AFP, UPI and IANS news wire stories are copyright Agence France-Presse, United Press International and Indo-Asia News Service. ESA news reports are copyright European Space Agency. All NASA sourced material is public domain. Additional copyrights may apply in whole or part to other bona fide parties. All articles labeled "by Staff Writers" include reports supplied to Space Media Network by industry news wires, PR agencies, corporate press officers and the like. Such articles are individually curated and edited by Space Media Network staff on the basis of the report's information value to our industry and professional readership. Advertising does not imply endorsement, agreement or approval of any opinions, statements or information provided by Space Media Network on any Web page published or hosted by Space Media Network. General Data Protection Regulation (GDPR) Statement Our advertisers use various cookies and the like to deliver the best ad banner available at one time. All network advertising suppliers have GDPR policies (Legitimate Interest) that conform with EU regulations for data collection. By using our websites you consent to cookie based advertising. If you do not agree with this then you must stop using the websites from May 25, 2018. Privacy Statement. Additional information can be found here at About Us.