Changes for page Sensor Module
Last modified by Heimir Thordarson on 2026/07/05 12:56
From version 42.2
edited by Heimir Thordarson
on 2026/01/26 18:19
on 2026/01/26 18:19
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To version 44.1
edited by Heimir Thordarson
on 2026/01/27 14:54
on 2026/01/27 14:54
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Uploaded new attachment "Actual Representation of Linear Potmeter.png", version {1}
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... ... @@ -57,7 +57,7 @@ 57 57 58 58 The air temperature sensor will be used to have a dynamic reference setpoint for the cooling system. This could reduce the current draw from the low voltage system compared to having a fixed reference point. This is because the regulator will not try to cool the water to a temperature lower than the ambient temperature. The sensor works as a resistor which varies depending on its temperature. Where in this case, the resistance lowers when the temperature increases (NTC). To make the microcontroller able to measure the changes in resistance, the thermistor is put into a voltage divider circuit. 59 59 60 -[[image:circuit with marks.png||height="2 18" width="520"]]60 +[[image:circuit with marks.png||height="237" width="566"]] 61 61 62 62 (% class="wikigeneratedid" %) 63 63 As shown in the figure above, the thermistor is put into a voltage divider circuit with a 4k7 ohm resistor to convert the resistance changes of the thermistor to a measurable voltage. To find the temperature of the thermistor based on the voltage measure by the analog-to-digital converter (ADC), the resistance of the thermistor needs to be calculated based on the voltage from a voltage divider. ... ... @@ -112,17 +112,19 @@ 112 112 Where: 113 113 114 114 * {{mathjax}}\(F_c\){{/mathjax}} = Cut-off frequency of the filter. Any noise with a frequency above this will be filtered out. 115 -* {{mathjax}}\(R\) 116 -{{/mathjax}} = Resistance of the resistor in low-pass filter. 117 -* {{mathjax}}\(C\) 118 -{{/mathjax}} = Capacitance of the capacitor in the low-pass filter. 115 +* {{mathjax}}\(R\){{/mathjax}} = Resistance of the resistor in low-pass filter. 116 +* {{mathjax}}\(C\){{/mathjax}} = Capacitance of the capacitor in the low-pass filter. 119 119 120 120 Using a resistor with 10k {{mathjax}}\(\Omega\){{/mathjax}} and a capacitor with 100 **nF **in capacitance, the cut-off frequency will be 159 **Hz.** 121 121 122 122 == Suspension Displacement Sensor == 123 123 124 -For AR26, the same sensors from AR25 is reused. These are the [[Texense RSL-A-50-P>>https://cdn.shopify.com/s/files/1/0368/1989/files/technical_datasheet_RSL.pdf?413]] which can be connected as the entire voltage divider when using each end as supply and ground. The output of the sensor will then be the throw of the sensor.122 +For AR26, the same sensors from AR25 is reused. These are the [[Texense RSL-A-50-P>>https://cdn.shopify.com/s/files/1/0368/1989/files/technical_datasheet_RSL.pdf?413]] which can be connected as the entire voltage divider when using each end as supply and ground. The output of the sensor will then be the throw of the potentiometer. 125 125 124 +[[image:Suspension Displacement Circuit.png]] 126 126 126 +The sensor has a measurable range of 50mm with electrical range of 51mm, meaning that the electrical range will in practice be 1960 {{mathjax}}\(\Omega\){{/mathjax}} with 40 {{mathjax}}\(\Omega\){{/mathjax}} in total on each end. 127 127 128 + 129 + 128 128
- Actual Representation of Linear Potmeter.png
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