• Title/Summary/Keyword: 스마트 휠체어

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The Wheelchair Communication System was Developed in The Convergence of Broadcasting and Communication Environments for People with Disabilities (방송통신 융합 환경에서의 장애인을 위한 휠체어 의사소통 시스템 개발)

  • Kim, Jung-Ihl;Kwon, Mee-Rhan;Shin, Seung-Jung
    • The Journal of the Institute of Internet, Broadcasting and Communication
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    • v.12 no.6
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    • pp.273-278
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    • 2012
  • Wired communication signals that are generated in a wheelchair and using GPS to gather speed in this study. And occupants in the helmet, and save your current location information in a wheelchair and speed information that is passed by smartphone to take advantage of the Black Box App and radio feature multi-Communications App S/W development.The results of this study can be utilized effectively a pseudo-real-time information can be shared in each other's wheelchair with many people moving. Limitations of the study at the Institute of Experimental concrete measures for the commercial approach to the development of operational models as required.

Design of Electric Wheelchair Using Triple Axis Acceleration Sensor (3축 가속도 센서를 이용한 전동휠체어 설계)

  • Son, Jin-su;Nam, Jea-dong;Kim, Jung-min;Hong, Tae-kyoung;Kwon, Eun-Shin;Nam, Jae-hyun;Park, Hee-jung;Lee, Ju-won
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2014.05a
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    • pp.836-837
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    • 2014
  • The electric wheelchair is the vehicle system to support the elderly, infirm, and disabled person. Most of the electric wheelchair is used the encoder sensor for controlling the posture, and the encoder generates the defects caused by frequent mechanical friction. To improve the problem, we have designed the electric wheelchair base on triple acceleration sensor, and implemented. And its performance was evaluated through experiments.

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Effects of Smart Home on Performance and Satisfaction of Activities of Daily Living of Wheelchair Users (스마트 홈이 휠체어를 사용하는 장애인의 일상생활활동 수행도와 만족도에 미치는 영향)

  • Woo, Ji-Hee;Kim, Jeong-Hyun;Kim, Jongbae
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.20 no.7
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    • pp.242-248
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    • 2019
  • This study was conducted to examine the effects of a smart home (electronic control unit, ECU) on the performance and satisfaction of activities of daily living of wheelchair users. A total of 15 wheelchair users (10 patients with spinal cord injury and 5 patients with stroke) were investigated. Smart homes were equipped with ECU technology, which consisted of automation of furniture and products. The products and facilities were integrated and controlled by a smart device or voice. Performance and satisfaction of activities of daily living were measured by the Canadian Occupational Performance Measure (COPM) before and after residence in a smart home. All participants showed a higher COPM (performance score ${\geq}3$, satisfaction score ${\geq}4$) during residence in a smart home compared to residence in the current home. In addition, the COPM scores differed significantly before and after residence in a smart home. These results provide evidence of the applicability of smart homes based on high technology. However, additional studies of more smart home participants should be conducted to improve the quality of the results.

A Study on Apply of Smart Sensors for Wheelchair Balancing Control (휠체어 균형 조정을 위한 스마트 센서의 적용에 관한 연구)

  • Ma, Linh Van;Cho, Young-bin;Kim, Jinsul
    • Journal of Digital Contents Society
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    • v.19 no.8
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    • pp.1585-1592
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    • 2018
  • Due to un-balancing weight allocation on the wheelchair the existing wheelchair system are faced with the risk of flipping or falling when a wheelchair goes up to a hill. In to order to be safer during riding the wheelchair, in this paper, we proposed a real-time new solution using the integrated Gyro Sensor and Tilt Sensor for controlling the balance. Because the typical property of wheelchair is for the special user who meets the difficulty in moving on foot the maintain the balance of wheel-chair systems have become important and helpful. In our method, we calculate the seat angle using information from Tilt Sensor. However, due to the law of inertia when a wheelchair is moving there is a deviation in the output value of Tilt Sensor. Therefore, we have to optimize the value of the angle by utilizing the acceleration that is the output of the Gyro Sensor. We took the advantages by using the combination of Gyro and Tilt sensors. Moreover, we also solved the consumption issue of the whole system. Through various experimentations with usage of ZigBee sensor module, the power consumption for the balancing system is reduced significantly.

Design of the Power Assist Controller for the In-Wheel Type Smart Wheelchair (인휠형 스마트 휠체어를 위한 힘 보조 제어기 설계)

  • Kong, Jung-Shik;Baek, Seung-Yub
    • Journal of the Korean Institute of Intelligent Systems
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    • v.21 no.1
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    • pp.80-85
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    • 2011
  • This paper presents the design of the power-assisted controller for the in-wheel type smart wheelchair by using torque estimation that is predicted by relationship between input voltage and output wheel angular velocity. Nowadays, interest of the moving assistant aids is increased according to the increase in population of the elderly and the handicapped person. However some of the moving assistant aids have problems. For example, manual wheelchair has difficulty moving at the slope, because users lack the muscular strength of their arm. In electric wheelchair case, users should be weak by being decreased muscles of upper body. To overcome these problems, power-assisted electric wheelchair are proposed. Most of the power-assisted electric wheelchair have the special rims that can measure the user's power. In here, the rims have to be designed to install the sensors to measure user's power. In this paper, we don't design the rim to measure the man power. To predict the man power, we propose a control algorithm of the in-wheeled electric wheelchair by using torque estimation from the wheel. First, we measure the wheel velocity and voltage at the in-wheel electric wheelchair. And then we extract driving will forces by using proposed mathematical model. Also they are applied at the controller as the control input, we verify to be able to control in-wheel type smart wheelchair by using simulation.

Study on the Aid Control Algorithm for the Power-Assisted Smart Wheelchair (힘 보조형 스마트 휠체어를 위한 차량 제어 알고리즘 구현)

  • Kong, Jung-Shik
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.12 no.8
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    • pp.3360-3365
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    • 2011
  • This paper deals with method to measure the user's driving-will force and to control the power-assisted wheelchair. To solve this problem, we extract the user's driving-will by using the mathematical motor model. And then, we get the linear and angular velocity at the center of the vehicle. Wheel velocities are also measured from center velocity. Finally, power-assisted electric wheelchairs are controlled by these data. Here all processes are verified by simulation.

Prospects of Rehabilitation Welfare Devices: Based on Assistive and Robotic Devices (재활복지기기의 전망: 보조기기와 로봇장치를 중심으로)

  • Song, W.K.
    • Journal of rehabilitation welfare engineering & assistive technology
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    • v.9 no.1
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    • pp.1-9
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    • 2015
  • This paper reviews trends of the rehabilitation welfare devices on the basis of products and markets. Latest assistive devices tend to have a fold function. Auxiliary power assist module has been added. The completion of products has been improved. The folding function has strong relationship with portability. Specifically, various mobility devices, including foldable devices, are associated with enhanced portability. Powered auxiliary wheels and upper extremity supporting modules have entered the market. The leading-edge technology like Segway's control technology applies to two-wheel wheelchairs. The brand- new technology, lower extremity robotic exoskeleton, applies to markets. Standing wheelchairs, ramps, stair climbing assistive devices becomes more common. In addition, a combination of a variety of smart devices is being promoted to the classical assistive devices' part. Rehabilitation welfare devices can be more valuable due to nice industrial design, improved materials, and processing technology.

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Development of Surface Roughness Index using Gyroscope (자이로스코프를 이용한 노면 평탄도 분류지수 개발)

  • Hong, Sun-Gi;Park, Jun-Mo
    • Journal of the Institute of Convergence Signal Processing
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    • v.21 no.3
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    • pp.127-132
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    • 2020
  • In this study, the process of providing information necessary to remove physical barriers such as road slopes that obstruct the activities of the disabled is in progress. Through experiments, we implement a quantified road surface roughness index that enables the implementation of IoT-based systems necessary for the elderly and the disabled to safely move to their destination. As a preliminary study, a road surface measurement device using a gyroscope was devised. To check the roughness and flatness of the road surface, X, Y displacement, and acceleration displacement were measured using a gyroscope. By calculating the measured data, the roughness and flatness of the road surface were quantified from 0 to 100. We implemented an algorithm that divides this index into 4 stages, displays it on a map, and provides it to users. Finally, a system for the disabled and elderly electric wheelchair users to secure basic mobility was established.

A Task Planning System of Steward Robot for Human-friendly Human-Robot Interaction (인간 친화적 로봇 상호작용을 위한 집사 로봇의 작업 관리 시스템)

  • Kim, Yong-Hwi;Lee, Hyong-Euk;Kim, Heon-Hui;Park, Kwang-Hyun;Bien, Zeung-Nam
    • 한국HCI학회:학술대회논문집
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    • 2007.02a
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    • pp.228-234
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    • 2007
  • 한국과학기술원 인간친화복지로봇 연구센터에서 개발 중인 ISH(Intelligent Sweet Home)는 다양한 서비스 로봇 및 인간-기계 인터페이스(HMI:Human-Machine Interface)를 통해서 노약자 및 장애인의 일상 생활을 도와 줄 수 있는 지능형 주거 공간이다. ISH에서는 홈네트워크를 통해 연결된 가전 기기 및 환경 정보 취득이 가능한 센서 장비, 그리고 지능형 침대, 휠체어, 이동 보조 로봇 등이 거주자가 독립 생활을 영위할 수 있도록 여러 가지 서비스를 제공한다. 하지만 노약자 및 장애인의 관점에서 서비스 양의 증가뿐만 아니라, 이를 쉽고 편하게 운용할 수 있는 서비스 질의 측면 또한 중요하게 고려하여야 한다. 이러한 이유 때문에, ISH에서는 집사 로봇(steward robot)의 개념을 도입하여 거주자와 복잡한 시스템의 효율적인 매개체로 사용하고 있다. 사용자의 편의를 추구하기 위한 공학적인 접근방법 중의 하나로, 본 논문에서는 집사 로봇의 작업 계획 기능에 대해서 설명하도록 한다. 작업 계획 시스템을 이용하여, 집사 로봇은 사용자의 상위 레벨 명령을 해석하여 각 로봇 또는 제어 가능 개체들을 제어하게 된다. 제안하는 시스템은 STRIPS(STanford Research Institute Problem Solver) 상태 표현 방법과 그래프계획(Graphplan) 방법에 기반하여 작업 계획을 수행한다. 또한 작업 계획 속도를 증가 시키기 위하여 공간 추상화(world abstraction)와 하위 목표 계획(subgoal planning)의 개념을 적용하였다. 그리고 ISH에서 정의된 시나리오를 이용한 상위 레벨 명령을 통해 제안된 시스템의 효용성을 검증하도록 한다.

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Upper Extremity Biomechanics of Manual Wheelchair Propulsion at Different Speeds (수동 휠체어 추진 속도에 따른 상지 관절 생체역학적 영향 분석)

  • Hwang, Seonhong
    • Journal of Biomedical Engineering Research
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    • v.43 no.4
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    • pp.241-250
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    • 2022
  • It is known that chronic pain and injury of upper limb joint tissue in manual wheelchair users is usually caused by muscle imbalance, and the propulsion speed is reported to increase this muscle imbalance. In this study, kinematic variables, electromyography, and ultrasonographic images of the upper limb were measured and analyzed at two different propulsion speeds to provide a quantitative basis for the risk of upper extremity joint injury. Eleven patients with spinal cord injury for the experimental group (GE) and 27 healthy adults for the control group (GC) participated in this study. Joint angles and electromyography were measured while subjects performed self-selected comfortable and fast-speed wheelchair propulsion. Ultrasound images were recorded before and after each propulsion task to measure the acromiohumeral distance (AHD). The range of motion of the shoulder (14.35 deg in GE; 20.24 deg in GC) and elbow (5.25 deg in GE; 2.57 deg in GC) joints were significantly decreased (p<0.001). Muscle activation levels of the anterior deltoid, posterior deltoid, biceps brachii, and triceps brachii increased at fast propulsion. Specifically, triceps brachii showed a significant increase in muscle activation at fast propulsion. AHD decreased at fast propulsion. Moreover, the AHD of GE was already narrowed by about 60% compared to the GC from the pre-tests. Increased load on wheelchair propulsion, such as fast propulsion, is considered to cause upper limb joint impingement and soft tissue injury due to overuse of the extensor muscles in a narrow joint space. It is expected that the results of this study can be a quantitative and objective basis for training and rehabilitation for manual wheelchair users to prevent joint pain and damage.