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− | The valve is made of three PDMS layers. The lower layer carries the | + | The valve is made of three PDMS layers. The lower layer carries the flow channel with a sinusoidal dome at the valve position. The middle layer is just a thin and therefore elastic PDMS membrane. The upper layer carries the air channel which has a cylindrical pressure camper at the valve position. The three layers are shown in the explosive drawing below. |
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We need a control circuit for the air valves because they are powered with high currents and consist of a solenoid that causes voltage spikes which can be harmful to a microcontroller | We need a control circuit for the air valves because they are powered with high currents and consist of a solenoid that causes voltage spikes which can be harmful to a microcontroller | ||
− | The solenoid valve is connected to the drain of an N-channel MOSFET. The drain is connected to a digital pin via a voltage divider. When the digital pin is set to 5V, the voltage at the gate is above the threshold voltage, current flows through the valve and the air channel is opened. A diode in blocking direction parallel to valve damps the voltage spike caused by turning of the valve. The circuit is shown in the figure below. | + | The solenoid valve is connected to the drain of an N-channel MOSFET. The drain is connected to a digital pin via a voltage divider. When the digital pin is set to 5V, the voltage at the gate is above the threshold voltage, current flows through the valve and the air channel is opened. A diode in blocking direction parallel to the valve damps the voltage spike caused by turning of the valve. The circuit is shown in the figure below. |
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Revision as of 17:01, 28 October 2017
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