Description: This is an op-amp implementation of a Vox style wah, with the inductor replaced by a gyrator circuit. With the component values given the frequency response is similar to a standard wah. By replacing one of the resistors with a potentiometer the simulated inductance can be made continuously variable.
The circuit described is a variation of the classic wah-wah pedal, utilizing an operational amplifier (op-amp) to simulate the behavior of an inductor through a gyrator circuit. The gyrator allows for the emulation of an inductor's characteristics without the physical component, thereby reducing size and weight while maintaining functionality.
In this configuration, the op-amp is typically configured in a non-inverting amplifier mode, where the feedback loop contains the gyrator circuit. The gyrator is composed of capacitors and resistors, which are designed to create a phase shift and simulate inductance. The component values must be carefully chosen to achieve a frequency response that closely resembles that of a traditional wah pedal.
To enhance the versatility of the circuit, one of the resistors in the feedback loop can be substituted with a potentiometer. This modification allows the user to adjust the simulated inductance continuously, providing a wider range of tonal options and enabling the user to tailor the wah effect to their specific preferences.
However, it has been noted that the current iteration of the circuit suffers from an undesirable level of background hiss. This noise issue may arise from various factors, including insufficient power supply decoupling, improper grounding techniques, or the inherent noise characteristics of the op-amp used. Addressing these concerns is essential for improving the overall performance and usability of the circuit. Further refinements and testing are necessary to eliminate the background noise and enhance the circuit's reliability for practical applications.This is an op-amp implementation of a Vox style wah, with the inductor replaced by a gyrator circuit. With the component values given the frequency response is similar to a standard wah. By replacing one of the resistors with a potentiometer the simulated inductance can be made continuously variable.
Currently this circuit has an unacceptable level of background hiss and is therefore reverted to experimental status. I will post a new version when I've got rid of the wretched noise.
This circuit illustrates various possible buffer combinations. These include a differential input stage, a voltage follower, as well as both non-inverting and inverting stages. The allowable resistor ratios and recommended device types are also included. One restriction applies to this...
An ultra-low-noise, low-distortion operational amplifier, the AD797, is combined with the ADS 11 operational amplifier, which provides high bandwidth and a 100-mA output drive capability. This composite amplifier circuit is effective for driving high-resolution ADCs and ATE systems. The fast...
For capacitor C3, a 100pF capacitor is placed across resistor R2. The circuit functions similarly to previous configurations, although no explanation is provided. The purpose of this component may be self-evident to experienced users, but it may not be clear...
The video circuit depicted in Figure 1 integrates an audio-subcarrier notch filter and group-delay equalization in accordance with the ITU-470 standard. It features an amplitude-adjustment capability suitable for driving an RF video modulator in NTSC applications, with minor adjustments needed...
Amplify a MG811 CO2 sensor to a range readable by an ATMEGA2560 (0-5V). Other analog sensors are in use, so it is preferred not to change the reference voltage on the ATmega. A module that scales the signal has been...
The control voltage is fed into the first half of a 1458 op-amp, this stage inverts the signal and sets the offset and gain for the right channel gain control circuit. This signal is then fed into the second half...
An operational amplifier (op amp) configured as a comparator generates a 10-V peak-to-peak square wave output with a 100-mV input signal, operating up to 15 kHz. Adjust resistor R5 to achieve symmetry in the square wave at low input levels.
The...
This circuit utilizes two operational amplifiers (op-amps) to create a unique sound effect. The first op-amp, CA741, is configured as a standard astable multivibrator, generating timing pulses controlled by components C1, R2, and variable resistor VR1. The output from this...
It is possible to easily generate various non-linear functions such as X^(1/2), X^2, X^3, 1/X, XY, and X/Y using logarithms. In this context, division is transformed into subtraction, while multiplication is converted into addition.
The application of logarithmic properties in electronic...
We use cookies to enhance your experience, analyze traffic, and (if you allow) serve personalized ads.
By clicking Accept All, you agree to our use of cookies.
Learn more