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Block diagram of solar-powered wheelchair connection

Block diagram of solar-powered wheelchair connection

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This paper presents a study of a low-cost solar-powered wheelchair for disabled people of rural areas in South Africa. There are manual wheelchairs on the market which always require an able-bodied person to assist in steering the disabled person around. Other wheelchairs use a battery that is charged by electricity when it is flat. Electricity is...

Contexts in source publication

Context 1
... the motor turns, the wheels also turn, and the wheelchair moves forward. Figure 2 shows a block diagram of the solar-powered wheelchair designed in this study. A solar cell, or photovoltaic cell, is an electrical device that converts the energy of light directly into electricity by the photovoltaic effect, which is a physical and chemical phenomenon [12]. ...
Context 2
... the motor turns, the wheels also turn, and the wheelchair moves forward. Figure 2 shows a block diagram of the solar-powered wheelchair designed in this study. A solar cell, or photovoltaic cell, is an electrical device that converts the energy of light directly into electricity by the photovoltaic effect, which is a physical and chemical phenomenon [12]. ...
Context 3
... the motor turns, the wheels also turn, and the wheelchair moves forward. Figure 2 shows a block diagram of the solar-powered wheelchair designed in this study. A solar cell, or photovoltaic cell, is an electrical device that converts the energy of light directly into electricity by the photovoltaic effect, which is a physical and chemical phenomenon [12]. ...

Citations

... In general, the wheelchair can be divided into two categories, manual wheelchair and electric-powered wheelchair (EPW) [1]. Due to the advantages of EPW such as ease the users' mobility, the demand for EPW is increased. ...
Article
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Recently, a study on Electric Powered Wheelchairs (EPWs) has become significant because they can enhance the mobility of individuals with disabilities. One of the issues on EPW is during descending on a slope because it is difficult to control the speed and prevent it from slipping. Moreover, the manual braking system is frequently used for speed control by pressing the brake lever. The complexity of the task increases significantly when dealing with elderly or paralyzed users with physical limitations. Consequently, the risk of collisions and injuries is elevated. This research seeks to develop a hill descent control (HDC) system for an EPW to address these challenges. By implementing HDC into EPW, the EPW's speed can be controlled, thus increasing the safety of the EPW while descending on the slope. In this study, the plugging brake system is introduced as a hill descent control (HDC) mechanism to inhibit the acceleration of the EPW and ensure it maintains a constant speed during downhill descents. The plugging voltage will be controlled based on the desired speed of 0.6 m/s. To maintain the speed of the EPW, the PID control is used as a control strategy for HDC. The simulation work in Matlab Simulink has analyzed the performance of the plugging brake system with HDC. The results obtained from the simulation reveal that, despite starting with a high initial braking speed of 2.5 m/s, the Electric Powered Wheelchair (EPW) can consistently maintain its velocity at the desired target value of v_d = 0.6 m/s during the descent on the slope. Furthermore, the amplitude response for the PID control shows the settling time is 2.3 s, and the steady-state error is ±0.05. Based on the simulation results, it can be approved that the proposed HDC in the plugging brake system can prevent the EPW from accelerating while descending on the slope and improve the safety of the EPW.