Description: Teledyne Semiconductor's Type TSC9402 is a versatile integrated circuit (IC) capable of converting voltage to frequency and frequency to voltage. It is well-suited for use as an add-on unit for measuring frequencies with a multimeter, requiring only a few additional components for implementation. A single calibration point is sufficient to set the center of the measuring range, particularly for the most frequently used segment of that range. The frequency-proportional direct voltage at the output (pin 12—amp out) may contain interference pulses with levels up to 0.7 V. If these pulses negatively impact the multimeter's performance, they can be mitigated using a simple RC network. The output voltage, U0, can be calculated using the formula: tfo = C/rei(Ci + 12 pF) R2fm. It is important to note that the internal capacitance may often exceed the 12 pF referenced in the formula, resulting in a non-absolute value. The circuit operates over a frequency range from DC to 10 kHz, with a calculated output voltage of 3.4 V at 10 kHz. The circuit consumes a maximum current of 1 mA.
The TSC9402 integrated circuit serves dual purposes in electronic applications, functioning as both a voltage-to-frequency and frequency-to-voltage converter. This dual functionality enhances its utility in various measurement scenarios, particularly in conjunction with multimeters. The simplicity of the design allows for easy integration into existing systems, requiring minimal additional components, which streamlines the implementation process.
To utilize the TSC9402 effectively, a single calibration point is established to define the center of the measuring range, optimizing the device for the most commonly measured frequencies. This feature is particularly advantageous in applications where specific frequency ranges are of primary interest, as it allows for quick adjustments and accurate readings.
The output voltage at pin 12, designated as the amplifier output, is influenced by frequency variations. The presence of interference pulses, which can reach levels of 0.7 V, necessitates careful design considerations to ensure accurate measurements. If these interference pulses are detrimental to the multimeter's accuracy, the implementation of a simple resistor-capacitor (RC) network can provide an effective means of suppression, enhancing the reliability of the measurement.
The calculation of the output voltage, U0, through the provided formula underscores the importance of understanding the internal capacitance of the circuit. Since this value can often exceed the nominal 12 pF, users should be aware that the formula may yield relative rather than absolute output values. This characteristic emphasizes the need for careful calibration and possibly adjustment based on the specific application and components used.
Operating over a frequency range from DC to 10 kHz, the TSC9402 is particularly well-suited for applications requiring low-frequency measurements. The calculated output voltage of 3.4 V at 10 kHz illustrates the circuit's ability to provide significant voltage levels under specified conditions. Additionally, the low current draw of 1 mA ensures that the circuit can be integrated into low-power applications without compromising overall system efficiency. This combination of features makes the TSC9402 an excellent choice for a wide range of electronic measurement applications. Teledyne Semiconductor"s Type TSC9402 is a versatile IC. Not only can it convert voltage into frequency, but al so frequency into voltage. It is thus eminently suitable for use in an add-on unit for measuring frequencies with a multimeter. Only a few additional components are required for this.. Just one calibration point sets the center of the measuring range (or of that part of the range that is used most frequently). The frequency-proportional direct voltage at the output (pin 12—amp out) contains interference pulses at levels up to 0.7 V.
If these have an adverse effect on the multimeter, they can be suppressed with the aid of a simple RC network. The output voltage, U0, is calculated by: tfo=C/rei(Ci + 12 pF) R2fm Because the internal capacitance often has a greater value than the 12 pF taken here, the formula does not yield an absolute value.
The circuit has a frequency range of dc to 10 kHz. At 10 kHz, the formula gives a value of 3.4 V. The circuit draws a current of not more than 1 mA.
This schematic example demonstrates a sinusoidal voltage input at a frequency of 10 kHz, which is converted to a square wave using an inverter-based circuit. The VDD and VSS rails are connected to +1V and -1V, respectively. The control file...
This circuit receives the signal from the amplifier and emits powerful 1μs infrared light pulses from a low-cost LED, which are frequency modulated by the audio information. The 10kHz center frequency of the pulse stream is sufficiently low, allowing a...
The LinkSwitch-XT LNK363DN-based flyback power supply generates a single isolated DC output voltage from an input voltage range of 90 VAC to 264 VAC. The power supply delivers an output of 5 V at 550 mA (2.75 W) in a...
This simple frequency converter mixes the 15-MHz WWV/WVH signal with a 16-MHz signal from the local oscillator (LO) to convert it down to 1 MHz, enabling it to be received on an AM-band receiver.
The frequency converter operates by utilizing a...
Frequency converter schematic, frequency to voltage converter schematic, frequency to voltage converter using TR, voltage to frequency converter application.
A frequency converter is an essential electronic circuit that transforms frequency signals into corresponding voltage levels or vice versa. The frequency to...
This document presents a straightforward and practical schematic for a 12V to 3V converter circuit. The output current of the circuit is approximately 1A.
The 12V to 3V converter circuit is typically designed using a linear voltage regulator or a buck...
New applications for DC voltage converters, such as the LT1070, arise every day. These converters can be adapted to nearly every imaginable ratio of input and output voltages. However, all of these circuits and devices share a common shortcoming: they...
IC Voltage Regulators - Circuit diagram and block diagram of linear, fixed, adjustable (positive and negative), and switching voltage regulators.
IC voltage regulators are essential components in electronic circuits, providing stable output voltages from a varying input voltage source. They can...
This circuit is designed to convert a square wave input signal into a voltage output. The voltage produced is proportional to the time interval between the edges (period) of the signal, rather than its frequency. The operational range of the...
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