Voltage Transfer Equation for Inverting Schmitt Trigger Solution

STEP 0: Pre-Calculation Summary
Formula Used
Inverting Input Voltage = Input Offset Voltage*(Resistance 2/(Resistance 1+Resistance 2))+Output Voltage*(Resistance 1/(Resistance 1+Resistance 2))
V- = Voff*(R2/(R1+R2))+Vo*(R1/(R1+R2))
This formula uses 5 Variables
Variables Used
Inverting Input Voltage - (Measured in Volt) - The Inverting Input Voltage of an operational amplifier (op amp) is the voltage that is applied to the pin marked with a minus (-) sign.
Input Offset Voltage - (Measured in Volt) - Input Offset Voltage is the voltage that is applied to a device or system in order to power it.
Resistance 2 - (Measured in Ohm) - Resistance 2 is a measure of the opposition to the flow of electric current through a material.
Resistance 1 - (Measured in Ohm) - Resistance 1 is a measure of the opposition to the flow of electric current through a material.
Output Voltage - (Measured in Volt) - Output voltage is the voltage that is produced by a device, such as a power supply, a battery, or a generator. It is measured in volts (V).
STEP 1: Convert Input(s) to Base Unit
Input Offset Voltage: 1.82 Volt --> 1.82 Volt No Conversion Required
Resistance 2: 5.2 Kilohm --> 5200 Ohm (Check conversion ​here)
Resistance 1: 10 Kilohm --> 10000 Ohm (Check conversion ​here)
Output Voltage: 1.48 Volt --> 1.48 Volt No Conversion Required
STEP 2: Evaluate Formula
Substituting Input Values in Formula
V- = Voff*(R2/(R1+R2))+Vo*(R1/(R1+R2)) --> 1.82*(5200/(10000+5200))+1.48*(10000/(10000+5200))
Evaluating ... ...
V- = 1.59631578947368
STEP 3: Convert Result to Output's Unit
1.59631578947368 Volt --> No Conversion Required
FINAL ANSWER
1.59631578947368 1.596316 Volt <-- Inverting Input Voltage
(Calculation completed in 00.004 seconds)

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Schmitt Trigger Calculators

Lower Threshold Voltage of Inverting Schmitt Trigger
​ LaTeX ​ Go Feedback Threshold Voltage = -Saturation Voltage*(Resistance 2/(Resistance 1+Resistance 2))
Open Loop Gain of Schmitt Trigger
​ LaTeX ​ Go Open Loop Gain = (Final Voltage)/(Non-Inverting Input Voltage-Inverting Input Voltage)
Lower Threshold Voltage of Non Inverting Schmitt Trigger
​ LaTeX ​ Go Lower Threshold Voltage = -Saturation Voltage*(Resistance 2/Resistance 1)
Input Current of Schmitt Trigger
​ LaTeX ​ Go Input Current = Input Voltage/Input Resistance

Voltage Transfer Equation for Inverting Schmitt Trigger Formula

​LaTeX ​Go
Inverting Input Voltage = Input Offset Voltage*(Resistance 2/(Resistance 1+Resistance 2))+Output Voltage*(Resistance 1/(Resistance 1+Resistance 2))
V- = Voff*(R2/(R1+R2))+Vo*(R1/(R1+R2))

What is the effect of the input resistor R1 on the voltage transfer equation?

The input resistor R1 controls the hysteresis of the Schmitt trigger circuit. A higher value of R1 will result in a higher hysteresis, and a lower value of R1 will result in a lower hysteresis. The voltage transfer equation shows that the output voltage V- is proportional to the input resistor R1.

How to Calculate Voltage Transfer Equation for Inverting Schmitt Trigger?

Voltage Transfer Equation for Inverting Schmitt Trigger calculator uses Inverting Input Voltage = Input Offset Voltage*(Resistance 2/(Resistance 1+Resistance 2))+Output Voltage*(Resistance 1/(Resistance 1+Resistance 2)) to calculate the Inverting Input Voltage, The Voltage Transfer Equation for Inverting Schmitt Trigger is a nonlinear function, which means that the output voltage does not change linearly with the input voltage. Instead, the output voltage has two stable states, high and low. Inverting Input Voltage is denoted by V- symbol.

How to calculate Voltage Transfer Equation for Inverting Schmitt Trigger using this online calculator? To use this online calculator for Voltage Transfer Equation for Inverting Schmitt Trigger, enter Input Offset Voltage (Voff), Resistance 2 (R2), Resistance 1 (R1) & Output Voltage (Vo) and hit the calculate button. Here is how the Voltage Transfer Equation for Inverting Schmitt Trigger calculation can be explained with given input values -> 1.596316 = 1.82*(5200/(10000+5200))+1.48*(10000/(10000+5200)).

FAQ

What is Voltage Transfer Equation for Inverting Schmitt Trigger?
The Voltage Transfer Equation for Inverting Schmitt Trigger is a nonlinear function, which means that the output voltage does not change linearly with the input voltage. Instead, the output voltage has two stable states, high and low and is represented as V- = Voff*(R2/(R1+R2))+Vo*(R1/(R1+R2)) or Inverting Input Voltage = Input Offset Voltage*(Resistance 2/(Resistance 1+Resistance 2))+Output Voltage*(Resistance 1/(Resistance 1+Resistance 2)). Input Offset Voltage is the voltage that is applied to a device or system in order to power it, Resistance 2 is a measure of the opposition to the flow of electric current through a material, Resistance 1 is a measure of the opposition to the flow of electric current through a material & Output voltage is the voltage that is produced by a device, such as a power supply, a battery, or a generator. It is measured in volts (V).
How to calculate Voltage Transfer Equation for Inverting Schmitt Trigger?
The Voltage Transfer Equation for Inverting Schmitt Trigger is a nonlinear function, which means that the output voltage does not change linearly with the input voltage. Instead, the output voltage has two stable states, high and low is calculated using Inverting Input Voltage = Input Offset Voltage*(Resistance 2/(Resistance 1+Resistance 2))+Output Voltage*(Resistance 1/(Resistance 1+Resistance 2)). To calculate Voltage Transfer Equation for Inverting Schmitt Trigger, you need Input Offset Voltage (Voff), Resistance 2 (R2), Resistance 1 (R1) & Output Voltage (Vo). With our tool, you need to enter the respective value for Input Offset Voltage, Resistance 2, Resistance 1 & Output Voltage and hit the calculate button. You can also select the units (if any) for Input(s) and the Output as well.
How many ways are there to calculate Inverting Input Voltage?
In this formula, Inverting Input Voltage uses Input Offset Voltage, Resistance 2, Resistance 1 & Output Voltage. We can use 1 other way(s) to calculate the same, which is/are as follows -
  • Inverting Input Voltage = Final Voltage*((Resistance 1+Resistance 2)/Resistance 1)
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