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IBL-26-1591Wheel and Track Hybrid Mobile Platform Device for Professional Service Robots with Terrain-Traversing Mechanism
Wheel and Track Hybrid Mobile Platform Device for Professional Service Robots with Terrain-Traversing Mechanism

This technology is a hybrid mobile platform mechanism that combines driving wheels with track modules. By adjusting the angle of the track arms via motor power, the structure can be varied to ensure wheel contact on flat surfaces and track contact with the ground on rough terrain.

Conventional wheeled robots excel on flat surfaces but struggle with rough terrain and stairs. Tracked robots are advantageous for rough terrain but suffer from lower speed and energy efficiency on flat surfaces, while legged robots face challenges with complex control and stability.

This technology features a track transformation mechanism that adjusts the position of the track arms using a motor. On flat ground, the track arms are kept horizontal for wheel-based driving, while on rough terrain or stairs, the arms are raised to bring the tracks into contact with the ground, optimizing the driving mode. Applicable to logistics, service robots, and autonomous platforms, it enhances the adaptability and stability of specialized service robots on uneven terrain, thereby improving overall performance and energy efficiency.

Key Features:
  • A control device that manages the motor unit to move multiple track arms into a vertical position during rough terrain traversal, transforming the track so that its vertical width exceeds the circumference of the driving wheels.
  • A wheel and track hybrid mobile platform device for professional service robots with a terrain-traversing mechanism, characterized by multiple driving wheels retracting inside the tracks to enable track-based movement during rough terrain traversal.
  • Multiple track arms that move into a horizontal, lying-down position to transform the track so that its vertical width is smaller than the circumference of the driving wheels.
  • A main frame for a wheel and track hybrid mobile platform device for professional service robots with a terrain-traversing mechanism.
로봇/휴머노이드 기술
Wheeled/Tracked Robots
Mechanism/Hardware
DGIST
Yoon-Gu Kim | Jin-Wook Kim | Jin-Woong Ahn | Dong-Ha Lee | Jae-Won Lee | Hyuk-Jin Lee
Industry
robot•automation
Technology
Robotics
Mechanical engineering
Country
Korea
Price
가격협의
Price negotiable
Sold
Available
Available
IBL-26-1572Child Safety Tracking System
Child Safety Tracking System

This technology is an integrated location tracking and monitoring mechanism that tracks the positions of sensors worn by guardians and children via a sensor network composed of multiple relay sensors. A management server monitors the distance between them in real-time, and in the event of a child going missing, a safety robot is dispatched along the shortest path to the child's location to collect and transmit video and audio data.

Existing GPS-based technologies are unable to track locations in signal-shadowed areas such as indoors or underground, while RFID-based technologies have limitations due to short transmission ranges, requiring the dense installation of numerous readers and resulting in high physical infrastructure costs.

This technology works by having a group of relay sensors receive signals from sensors held by the guardian and the child, which are then transmitted to a management server that calculates their positions and measures the distance between them. If a child goes missing, the management server calculates the shortest path for a safety robot and issues a movement command, allowing the robot to arrive on-site to capture and transmit video and audio data. Applicable to logistics, service robots, and autonomous driving platforms, this system improves the efficiency and accuracy of child safety by providing real-time location tracking and early detection of potential missing child scenarios.

Key Features:
  • A guardian sensor that transmits first data containing first identification information
  • A child sensor that transmits second data containing second identification information
  • A relay sensor group that identifies and transmits information required for tracking the second location of the child sensor based on the second data
  • A child safety system further comprising a safety robot that transmits audio to the management server.
로봇/휴머노이드 기술
Wheeled/Tracked Robots
Control/AI/SW
DGIST
Myung-gyu Son | Sang-heon Lee
Industry
robot•automation
Technology
Robotics
Optics•Sensor
Country
Korea
Price
가격협의
Price negotiable
Sold
Available
Available
IBL-26-1571Method and Apparatus for Path Planning Based on Obstacle Density
Method and Apparatus for Path Planning Based on Obstacle Density

This technology is an autonomous driving path planning method that divides image space into cells to calculate the density of static and dynamic obstacles. It then performs hierarchical/non-hierarchical clustering and applies a genetic algorithm (GA) to generate obstacle-avoidance paths.

Existing genetic algorithm-based path planning focuses solely on finding the shortest path, leading to increased computational load as workspace size grows. Furthermore, it fails to adequately account for dynamic obstacle information, resulting in persistent collision risks during movement.

This technology converts images into grayscale occupancy (static) and brightness information (dynamic) to calculate density. It then reduces data complexity through k-means clustering and derives an optimal path by applying a genetic algorithm that integrates obstacle density, path distance, and penalties for infeasible paths into the fitness function. This improves routing performance by accounting for workspace size and dynamic obstacle information, making it suitable for applications in rehabilitation training, gait assistance, and medical/welfare services.

Key Features:
  • Obstacle density calculator that divides images into cells and calculates the obstacle density for each cell
  • Clustering unit that groups each cell into one or more clusters
  • Path planning output unit that executes a genetic algorithm using obstacle density and cluster information to generate a path plan
  • Configuration that calculates density using grayscale occupancy for static obstacles and empty spaces, and pixel brightness for dynamic obstacles
로봇/휴머노이드 기술
Wheeled/Tracked Robots
Control/AI/SW
DGIST
Won-seok Kang | Jin-wook Kim | Young-deok Kim | Jin-woong Ahn | Dong-ha Lee
Industry
robot•automation
healthcare•pharm
Technology
Robotics
Medical devices
Country
Korea
Price
가격협의
Price negotiable
Sold
Available
Available
IBL-26-1552Remote-controlled robot system with enhanced steering performance and remote controller used therein
Remote-Controlled Robot System with Enhanced Steering Performance

This technology improves steering performance and driving stability by integrating real-time robot distance sensor (laser/ultrasonic) data with camera video feeds, overlaying them on a remote controller display, and providing force or haptic (vibration motor) feedback to the joystick based on obstacles in the robot's vicinity.

Existing remote control systems rely on narrow camera fields of view and 2D video, making it difficult to accurately perceive depth between the robot and obstacles. This often leads to reduced operational efficiency, such as collisions or the robot becoming stuck during non-line-of-sight navigation.

This technology visualizes obstacle distance information by overlaying it onto the video feed. If the operator attempts to steer toward an obstacle within a set safety distance, a feedback control mechanism triggers a vibration motor (haptic) or braking system (force feedback) in the joystick to alert the operator. Applicable to rehabilitation training, gait assistance, and medical/welfare services, it enhances operability by providing wide-range situational awareness and haptic feedback, thereby reducing collisions and isolation in remote control scenarios.

Key Features:
  • Robot control unit that transmits video input from cameras and distance data from sensors to the remote controller via a primary communication module
  • Remote control interface unit that generates and provides steering and speed information for the remote-controlled robot based on operator input
  • Control unit that transmits steering and speed information from the remote control interface to the remote-controlled robot
  • Distance sensor that scans the robot's path and surrounding space to detect distance information for nearby obstacles
로봇/휴머노이드 기술
Wheeled/Tracked robots
Operation/Interface
DGIST
Yungu Kim | Jinwook Kim | Jinuong Ahn | Dongha Lee
Industry
robot•automation
healthcare•pharm
Technology
Robotics
Medical devices
Country
Korea
Price
가격협의
Price negotiable
Sold
Available
Available
IBL-26-1551Method and Apparatus for Controlling the Movement of Multiple Robots Based on a Wireless Network
Method and Apparatus for Controlling the Movement of Multiple Robots Based on a Wireless Network

This technology is a multi-robot control system based on a WPAN wireless network that performs auto-spacing and cooperative localization through a master-slave architecture. The master robot receives commands from a central controller and retransmits them to slave robots or issues self-generated commands, while the slave robots control their real-time movement based on the received commands and distance information.

When controlling multiple mobile units simultaneously in environments with poor communication infrastructure, such as disaster sites, there have been challenges regarding communication range limitations, radio frequency interference, and ensuring the sequentiality and accuracy of control signals.

This technology utilizes the WPAN (IEEE 802.15.4a) wireless protocol to establish a network between multiple robots and implements a distance-based control algorithm that measures distance information from other robots in real-time upon receiving an auto-spacing command, executing movement commands only when the distance exceeds a set value. It can be applied to industrial robots and automated systems, improving the control of multiple mobile units by enabling efficient communication and coordination between the robots and the central controller.

Key Features:
  • A device that moves based on a wireless network, characterized in that a movement control unit executes a movement command when the received distance information is greater than the auto-spacing setting.
  • A transceiver unit that receives commands for controlling the movement of a slave robot as wireless network communication data
  • A command preprocessing unit that extracts commands from the decrypted wireless network communication data
  • A network control unit that decrypts the received wireless network communication data
로봇/휴머노이드 기술
Wheeled/Tracked robots
Communication/Control/Cloud
DGIST
Jeong-sook Jang | Sang-cheol Lee | Dong-ha Lee | Young-jin Nam | Young-kyun Park | Min-seok Nam
Industry
robot•automation
Technology
Robotics
Human-machine interface
Country
Korea
Price
가격협의
Price negotiable
Sold
Available
Available
IBL-26-1532Swarm robots and a method for configuring them on a large scale
Swarm Robotics

This technology measures the distance between three RF nodes arranged in an equilateral triangle on the top plate of a master robot and the RF node of a slave robot. By rotating the top plate, it identifies the point where the distances between specific nodes on the master robot and the slave robot become equal, then calculates the relative position of the slave robot using the resulting geometric triangulation and rotation angle.

Conventional technologies for swarm robot localization require the installation of expensive infrastructure or complex sensing devices, such as gyro and ultrasonic sensors, on each individual robot, leading to high data processing loads and increased system costs.

This technology equips the master robot with a rotating top plate and three RF nodes arranged in an equilateral triangle, while minimizing the hardware on the slave robot to just an RF node. Based on the rotation of the master robot's top plate and the distance information between nodes, the master robot precisely calculates the slave robot's position and issues formation commands. Applicable to robot gripping, precision measurement, and automated facilities, this approach minimizes data processing and hardware requirements for a large number of slave robots, thereby reducing overall system load and construction costs.

Key Features:
  • A control module that determines the position of the slave robot based on its current location.
  • A current position detection module that detects the current location.
  • A top plate rotation motor and rotation unit that rotates the top plate.
  • A swarm robot characterized by an RF node installed at the center of the top plate that communicates with the first and second RF nodes of the master robot.

This invention was developed with support from the Ministry of Education, Science and Technology for the development of public safety smart monitoring and active response technologies.

로봇/휴머노이드 기술
Wheeled/Tracked Robots
Communication/Control/Cloud
DGIST
Min-seok Nam | Sang-cheol Lee | Min-soo Kang
Industry
robot•automation
Technology
Robotics
Human-machine interface
Country
Korea
Price
가격협의
Price negotiable
Sold
Available
Available
IBL-26-1531Remote control method and system for mobile robots using fuzzy obstacle avoidance technology
Remote Control Method and System for Mobile Robots Using Fuzzy Obstacle Avoidance Technology

This technology is a fuzzy logic-based control mechanism that calculates autonomous driving control values by combining positive fuzzy rules for target tracking with negative fuzzy rules for obstacle avoidance. It determines the optimal movement direction (avoidance angle) by applying Gaussian membership functions to obstacle location data detected by ultrasonic sensors and target point information input from a controller.

Conventional remote robot control systems rely on manual user operation, posing a high risk of collision if obstacles are not detected. Furthermore, the lack of integrated autonomous avoidance control technology reduces the reliability of remote operation.

This technology configures a control system that uses the distance and angle between the robot and the target point, as well as the robot and obstacles, as input variables. It applies positive and negative rules respectively, derives the fitness of each input fuzzy set based on mathematical formulas, and calculates the final movement avoidance angle through the computation of output fuzzy set fitness including additive offsets. Applicable to rehabilitation training, gait assistance, and medical/welfare services, it enables self-regulated obstacle avoidance, thereby enhancing the reliability of remote control in robot navigation.

Key Features:
  • A step of configuring first output fuzzy sets by applying first input fuzzy sets based on the angle between the robot and the target point, and second input fuzzy sets based on the distance between the robot and the target point, to positive rules during remote-controlled robot navigation.
  • A step of configuring second output fuzzy sets by applying third input fuzzy sets based on the angle between the robot and obstacles, and fourth input fuzzy sets based on the distance between the robot and obstacles, obtained using ultrasonic sensors installed on the robot, to negative rules.
  • A step of calculating the fitness for the first output fuzzy sets using the fitness for the first through fourth input fuzzy sets.
  • represents the fitness of the input fuzzy set, =L, S, R, Z, N, F, .

This invention was developed with support from the Ministry of Education, Science and Technology's Biomimetic Robot Technology Development program.

로봇/휴머노이드 기술
Wheeled/Tracked Robots
Control/AI/SW
DGIST
Jin-Wook Kim | Yun-Gu Kim | Jeong-Hwan Kwak | Jin-Woong Ahn
Industry
robot•automation
healthcare•pharm
Technology
Robotics
Medical devices
Country
Korea
Price
가격협의
Price negotiable
Sold
Available
Available
IBL-26-1512Indoor Robot Localization System and Method Using Wireless LAN Short-Range Signal Strength
Indoor Robot Positioning System and Method Using Short-Range Wireless LAN Signal Strength

This technology estimates a robot's base position by combining motor encoder and inertial sensor (gyroscope, accelerometer) data. It corrects cumulative errors by resetting the current position to specific coordinates when the robot passes through high-reliability reception zones (within 1.5m, -50dBm or higher) defined around pre-mapped Wi-Fi access points.

Positioning methods in indoor environments that rely solely on motor encoders and inertial sensors are vulnerable to external disturbances and struggle to resolve long-term cumulative errors. Furthermore, conventional methods that directly convert wireless LAN signal strength into distance information suffer from low precision due to signal instability caused by environmental factors.

This technology integrates a robot system, a wireless network system, and a positioning server to execute a position correction algorithm based on signal strength in proximity to access points. Specifically, it processes sensor data through a data fusion unit, switches to inertial sensor-based positioning during impacts, and resets position coordinates using signal strength thresholds near access points. Applicable to logistics transport, service robots, and autonomous platforms, it improves positioning accuracy by utilizing short-range wireless LAN signal strength for error correction.

Key Features:
  • A positioning server that performs error correction on the robot's current path using a pre-generated wireless LAN AP map provided by a wireless network system, based on wireless LAN signal strength.
  • A wireless network system that provides a map centered on Access Points (APs) to be used as robot path coordinates.
  • A robot system that provides motor encoder values and inertial data used for robot positioning.
  • An indoor robot positioning system using short-range wireless LAN signal strength, characterized by the features above.

This invention was developed with support from the Ministry of Education, Science and Technology for the development of renewable energy and intelligent robot convergence technology.

로봇/휴머노이드 기술
Wheeled/Tracked Robots
Control/AI/SW
DGIST
Rak-Hyun Choi | Jun-Hyeok Yoo | Sang-Cheol Lee | Hyun Lee | Byeong-Rak Son | Dong-Ha Lee
Industry
robot•automation
Technology
Robotics
Mechanical engineering
Country
Korea
Price
가격협의
Price negotiable
Sold
Available
Available
IBL-26-1511Power management device and method for robots powered by renewable energy
Power Management Device and Method for Robots Powered by Renewable Energy

This technology is a power management system for mobile robots equipped with multiple energy sources, such as batteries, fuel cells, and solar cells. It features an integrated management mechanism that dynamically switches between energy sources and controls the return to automatic charging stations by monitoring remaining power levels and measuring the distance to chargers.

The limitations include the restricted operating time of single-battery mobile robots, which hinders continuous mission performance and necessitates frequent user intervention, as well as the lack of efficient switching and management when using multiple energy sources.

This technology incorporates BMS, FCMS, and SCMS within the robot's power management unit to independently monitor the status of each energy source. Through a wireless communication management unit, it calculates real-time data on remaining power and distance to the charger to determine mission feasibility, triggering automatic returns and energy source switching as needed. Applicable to robot gripping, precision measurement, and automated equipment, this system efficiently manages diverse power sources and provides stable, versatile power to robots, thereby extending the operational time of continuous pollution monitoring robots.

Key Features:
  • Power measurement device including FCMS (Fuel Cell Management System) and SCMS (Solar Cell Management System)
  • Power management device for robots powered by renewable energy, characterized by the above.
  • Automatic charger that communicates wirelessly with the power measurement device to perform automatic robot charging
  • Robot powered by multiple energy sources

This invention was developed with support from the Ministry of Education, Science and Technology for the development of renewable energy-based intelligent robot convergence technology.

로봇/휴머노이드 기술
Wheeled/tracked robots
Drive/Power
DGIST
Sang-Cheol Lee | Dong-Ha Lee | Yeon-Ho Choi | Rak-Hyun Choi | Byeong-Rak Son
Industry
robot•automation
Technology
Robotics
Mechanical engineering
Country
Korea
Price
가격협의
Price negotiable
Sold
Available
Available
IBL-26-1492Smart microrobot system using induced electromotive force
Smart Microrobot System Using Induced Electromotive Force

This technology is a wireless control system for an implantable helical microrobot that generates its own power to operate a light-emitting unit by acquiring induced electromotive force from an external magnetic field generator.

Conventional microrobots face limitations in performing therapeutic tasks and tracking their position within the human body due to the difficulty of providing a separate power supply for wireless operation.

This technology features a microrobot with a metallic head and a helical body that rotates and moves in response to an applied external magnetic field. During this process, it generates induced electromotive force from magnetic field changes to power a stacked LED (light-emitting unit). Applicable to industrial robots and automation systems, it improves the ability to position and perform therapeutic actions within the human body using induced electromotive force and wireless operation.

Key Features:
  • A microrobot comprising a helical body portion that generates induced electromotive force from a magnetic field applied by a magnetic field generator.
  • A magnetic field generator that surrounds the microrobot from outside the human body to generate a magnetic field, thereby inducing electromotive force in the microrobot.
  • A light-emitting unit stacked on the body portion in a helical shape, which receives the induced electromotive force produced by the body portion to emit light.
  • A power application unit that provides driving force to the microrobot.

This invention was developed with support from the Ministry of Education, Science and Technology for the development of bio-mimetic biosensors and medical robot convergence technology.

로봇/휴머노이드 기술
Micro/Capsule Robots
Actuation/Power Supply
DGIST
Hongsoo Choi | Sangwon Kim | Bradley Nelson
Industry
robot•automation
Technology
Robotics
Mechanical engineering
Country
Korea
Price
가격협의
Price negotiable
Sold
Available
Available
IBL-26-1491Method and System for Valve Operation Based on Autonomous Collaboration of Remote-Controlled Robots
Autonomous Collaborative Valve Operation Method for Remotely Controlled Robots

This technology provides a method for multiple slave robots to collaboratively operate a valve using a jig. It features a control mechanism where robots measure valve dimensions to set gripper coordinate systems and then rotate the valve by alternately gripping the jig based on generated paths.

When a single robot lacks sufficient torque or the valve's rotation range exceeds the robot's workspace, remote control of a single unit is limited. Furthermore, manual remote operation of the entire process leads to high operator fatigue and reduced efficiency.

This technology utilizes two or more slave robots to generate motion paths for each unit through a collaborative and autonomous command generation device. While gripping the jig, the robots measure valve dimensions and use this data to rotate the valve by alternately gripping the jig. It includes a safety control function that halts path tracking if excessive force is detected via contact force sensors. Applicable to logistics, service robots, and autonomous platforms, this system enables remote operation of multiple robots, reduces the need for human intervention, and improves overall task quality and efficiency in remote environments.

Key Features:
  • In a method for collaboratively operating a single valve using two or more slave robots, (a) the step of operating the robot arm of each slave robot to grip a jig coupled to the valve
  • (c) the step of storing the gripper coordinate system for each slave robot based on the measured valve dimension information and generating a motion path for each slave robot arm
  • (b) the step of measuring valve dimension information through the jig
  • (d) a method for autonomous collaborative valve operation by remotely controlled robots, comprising the step of each slave robot repeatedly following the generated path and alternately gripping the jig to rotate the valve.

This invention was developed with support from the Ministry of Knowledge Economy for the development of remote operation service engines and force-feedback remote-controlled robot system technologies for remote tasks.

로봇/휴머노이드 기술
Robot Arm/Manipulator
Control/AI/SW
DGIST
Seung-Yeol Lee | Jeon-Il Moon | Jin-Woong Ahn
Industry
robot•automation
Technology
Robotics
Mechanical engineering
Country
Korea
Price
가격협의
Price negotiable
Sold
Available
Available
IBL-26-1472Railway track inspection robot
Rail Inspection Robot

This technology is an automated inspection mechanism that utilizes a body traveling between rails equipped with multiple non-contact optical sensors to measure rail gauge (width), surface condition, notches, edge damage, and cracks at connection points, with a control unit that analyzes this data to provide maintenance insights.

Conventional rail inspection is performed manually by workers, which is time-consuming and labor-intensive, while also being prone to subjective judgment, missed inspections, and safety risks in the work environment.

This technology implements an automated system that precisely measures the condition of each rail section using first through fifth sensors positioned on both sides and the top guide of the body. It utilizes cameras for autonomous navigation and a control unit for data analysis to identify and report damage locations to operators. Applicable to logistics transport, service robots, and autonomous platforms, it enhances the efficiency and accuracy of rail inspections, reduces the risk of accidents and human error, and minimizes the need for manual labor and associated costs.

Key Features:
  • Sensor unit located on both sides and both upper sides of the body to measure rail width and detect rail damage.
  • Control unit that drives the transport mechanism and analyzes data measured by the sensor unit.
  • Rail inspection robot including a fifth sensor located on the other side of the third sensor to inspect for cracks and damage on the outer rail connection points.
  • Body equipped with a camera on the front for autonomous navigation.

This invention was developed with support from the Ministry of Education, Science and Technology for the development of convergence technology for new and renewable energy intelligent robots.

로봇/휴머노이드 기술
Wheeled/Tracked robots
Sensing/Perception
DGIST
Byeong-rak Son | Dong-wook Gong | Dong-ha Lee
Industry
robot•automation
Technology
Robotics
Optics•Sensor
Country
Korea
Price
가격협의
Price negotiable
Sold
Available
Available
IBL-26-1471Direct Robot Teaching Method, Teaching Data Correction Method, and Robot Control Device
Direct Robot Teaching System

This technology combines direct operator teaching with automated robot control assistance for peg-in-hole assembly processes involving multi-peg components. It optimizes robot playback performance by automatically or selectively removing teaching data from unnecessary segments where no robot movement occurs, using linear and angular velocity analysis.

Conventional position-based direct teaching is difficult to implement for complex assembly tasks involving contact, such as inserting multiple pegs. Furthermore, inefficient stationary data generated during manual teaching by operators often leads to unnecessary delays in robot playback time.

This technology establishes a teaching procedure for inserting multiple pegs of varying lengths in stages (primary and secondary). It applies a data editing algorithm that analyzes the linear and angular velocity components based on the robot's tool coordinate system to identify stationary segments, then automatically or selectively removes that data via a user interface. Applicable to robot gripping, precision measurement, and automated equipment, it improves overall assembly efficiency and reduces robot playback time.

Key Features:
  • A step in which the robot performs the primary alignment of the first peg with the first hole among the holes formed in the target component.
  • A step in which the robot performs the alignment of the second peg of the insertion component with the second hole of the target component.
  • A step in which the primary insertion of the first peg into the first hole is performed.
  • A step in which the secondary insertion of the second peg into the second hole is performed.
로봇/휴머노이드 기술
Robot Arm/Manipulator
Control/AI/SW
DGIST
Seung-Yeol Lee | Jeon-Il Moon | Jun-Ho Choi
Industry
robot•automation
Technology
Robotics
Mechanical engineering
Country
Korea
Price
가격협의
Price negotiable
Sold
Available
Available
IBL-26-1454Robot
Multi-jointed mobile robot with curved sections and elastic damping structures for adapting to stair heights

This technology features a multi-jointed mobile robot that connects its body and arms using multiple link members, with curved sections and elastic damping structures formed on the underside of each, allowing it to adaptively navigate and traverse stair steps.

Conventional wheeled robots are efficient for travel on flat surfaces with uniform height, but they face structural limitations when effectively navigating uneven terrain such as stairs.

This technology incorporates repeating curved sections along the bottom of the housing and arms, utilizes elastic damping members, and controls relative positioning via rod-shaped connecting members to vary the contact surface. It can be applied to indoor delivery robots and building inspection robots, enabling smooth and stable movement even in environments with stairs and thresholds.

Key Features:
  • A body providing a central structure with a housing, and arms provided on the left and right sides with frame sections
  • A rod-shaped connecting member of a set length, rotatably connected to the body by a drive shaft
  • A connecting member configured such that its other end is rotatably connected to the arm by a connecting shaft
  • A drive member located in the housing and connected to the drive shaft, and a body curved section formed on the bottom surface
로봇/휴머노이드 기술
Wheeled/tracked robots
Mechanism/Hardware
Hanyang University
Seo Tae-won
Industry
robot•automation
Technology
Robotics
Mechanical engineering
Country
Korea
Price
정액가
Fixed price
5000000
Sold
Available
Available
IBL-26-1453Vibratory Robot
Vibratory robot capable of both flight and driving via phase control of electromagnetic vibration modules

This technology features a vibratory robot that forms a tubular structure by connecting multiple vibration modules in a ring shape. Each module contains an electromagnetic vibration unit composed of a coil, a magnet, and an elastic member, allowing for the control of vibration amplitude, frequency, and phase to achieve both flight and driving locomotion.

Existing flying robots are significantly affected by air currents and have limited low-altitude flight capabilities, while ground-based robots face movement constraints due to the physical limitations of wheels or tracks, which restrict their range depending on terrain conditions.

This technology changes its structure between flight and driving modes by varying the angles of the top and bottom of the modules. By applying individual AC power to each module, it controls thrust and direction through asymmetric amplitude and phase modulation. Applicable to indoor exploration and disaster site reconnaissance, it introduces a new mode of mobility that allows a single robot to transition between flying and driving.

Key Features:
  • Multiple individually vibratable vibration modules provided in a plate structure with a set area and thickness
  • A structure where vibration modules are arranged in a ring shape to form an empty space in the center
  • Vibration modules arranged to form a tubular shape with a set length in the vertical direction
  • Wings provided on the outer surface of each vibration module that perform reciprocating motion during vibration
로봇/휴머노이드 기술
Robotics Technology
Flying/Underwater Robot
Mechanism/Hardware
Hanyang University
Seo Tae-won
Industry
robot•automation
aerospace
Technology
Robotics
Space & Aviation
Country
Korea
Price
정액가
Fixed price
5000000
Category
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