• Product
  • Suppliers
  • Manufacturers
  • Solutions
  • Free tools
  • Knowledges
  • Experts
  • Communities
Search


Tuned Collector Oscillator

Electrical4u
Electrical4u
Field: Basic Electrical
0
China

Before we go into the topic of tuned collector oscillator, we must first understand what is an oscillator is and what it does. An oscillator is an electronic circuit that generates an oscillating or periodic signal, like a sine wave or a square wave. The main purpose of an oscillator is to convert a DC signal to an AC signal. Oscillators have numerous usages like in TV, clocks, radio, computers etc. Almost all electronic devices use some oscillators to generate an oscillating signal.

One of the simplest LC oscillators is the Tuned collector Oscillator. In the tuned collector Oscillator, we have a tank circuit consisting of a capacitor and an inductor and a transistor to amplify the signal. The tank circuit which is connected to the collector behaves like a simple resistive load at resonance and decides the oscillator frequency.

Circuit Diagram Explanation of Tuned Collector Oscillator

tuned collector oscillator
Above is the circuit diagram of the tuned collector oscillator. As you can see, the transformer and the capacitor is connected to the collector side of the transistor. The oscillator here produces a sine wave.
R1 and R2 form the voltage divider bias for the transistor. Re refers to the emitter resistor and is there to provide thermal stability. Ce is used to bypass the amplified ac oscillations and is the emitter bypass capacitor. C2 is the bypass capacitor for resistor R2. The primary of the transformer, L1 along with capacitor C1 forms the tank circuit.

Working of Tuned Collector Oscillator

Before we go into the working of the oscillator, let us just revise the fact that a transistor causes a phase shift of 180 degrees when it amplifies an input voltage. L1 and C1 form the tank circuit and it is from these two elements, we will get the oscillations. The transformer helps in giving a positive feedback(We will come back to this later) and the transistor amplifies the output. With that established, let us now proceed to understand the working of the circuit.

When the power supply is switched on, the capacitor C1 starts charging. When it is fully charged, it starts to discharge through the inductor L1. The energy stored in the capacitor in the form of electrostatic energy gets converted to electromagnetic energy and gets stored in the inductor L1. Once the capacitor discharges completely, the inductor starts charging the capacitor again. This is because inductors do not the current through them change quickly and hence it will change the polarity across itself and keep the current flowing in the same direction. The capacitor starts charging again and the cycle continues in this manner. The polarity across the inductor and capacitor changes periodically and hence we get an oscillating signal as the output.

The Coil L2 gets charged through electromagnetic induction and feeds this to the transistor. The transistors amplify the signal, which is taken as the output. Part of the output is fed back to the system in what is known as positive feedback.
Positive feedback is the feedback which is in phase with the input. The transformer introduces a phase shift of 180 degrees and the transistor also introduces a phase shift of 180 degrees too. So in total, we get a 360-degree phase shift and this is fed back to the tank circuit. Positive feedback is necessary for sustained oscillations.
The frequency of oscillation depends on the value of the inductor and capacitor used in the tank circuit and is given by:

Where,
F = Frequency of the oscillation.
L1 = value of the inductance of primary of the transformer L1.
C1 = value of capacitance of capacitor C1.

Statement: Respect the original, good articles worth sharing, if there is infringement please contact delete.

Give a tip and encourage the author!
Recommended
PT Fuse Slow Blow: Causes, Detection & Prevention
PT Fuse Slow Blow: Causes, Detection & Prevention
I. Fuse Structure and Root Cause AnalysisSlow Fuse Blowing:From the design principle of fuses, when a large fault current passes through the fuse element, due to the metal effect (certain refractory metals become fusible under specific alloy conditions), the fuse first melts at the soldered tin ball. The arc then rapidly vaporizes the entire fuse element. The resulting arc is quickly extinguished by quartz sand.However, due to harsh operating environments, the fuse element may age under the comb
Edwiin
10/24/2025
Why Fuses Blow: Overload, Short Circuit & Surge Causes
Why Fuses Blow: Overload, Short Circuit & Surge Causes
Common Causes of Fuse BlowingCommon reasons for fuse blowing include voltage fluctuations, short circuits, lightning strikes during storms, and current overloads. These conditions can easily cause the fuse element to melt.A fuse is an electrical device that interrupts the circuit by melting its fusible element due to heat generated when current exceeds a specified value. It operates on the principle that, after an overcurrent persists for a certain period, the heat produced by the current melts
Echo
10/24/2025
Fuse Maintenance & Replacement: Safety and Best Practices
Fuse Maintenance & Replacement: Safety and Best Practices
1. Fuse MaintenanceFuses in service should be regularly inspected. The inspection includes the following items: Load current should be compatible with the rated current of the fuse element. For fuses equipped with a fuse blown indicator, check whether the indicator has actuated. Check the conductors, connection points, and the fuse itself for overheating; ensure connections are tight and making good contact. Inspect the fuse exterior for cracks, contamination, or signs of arcing/discharge. Liste
James
10/24/2025
Maintenance and Repair Items for 10kV High-Voltage Switchgear
Maintenance and Repair Items for 10kV High-Voltage Switchgear
I. Routine Maintenance and Inspection(1) Visual Inspection of Switchgear Enclosure No deformation or physical damage to the enclosure. Protective paint coating shows no severe rust, peeling, or flaking. Cabinet is securely installed, clean on the surface, and free of foreign objects. Nameplates and identification labels are neatly affixed and not falling off.(2) Check of Switchgear Operating Parameters Instruments and meters indicate normal values (comparable to typical operating data, with no s
Edwiin
10/24/2025
Send inquiry
Download
Get the IEE Business Application
Use the IEE-Business app to find equipment, obtain solutions, connect with experts, and participate in industry collaboration anytime, anywhere—fully supporting the development of your power projects and business.