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Gyrator

technology Maturity 7-9

A gyrator is a part for circuits.

tellegen-gyrator-symbol.svg
tellegen-gyrator-symbol.svg
It helps electricity move in new ways. It can make a part act like another part. This helps make small tools. It is very neat! Do you like science?

37 words

A gyrator is a special part for circuits.

tellegen-gyrator-symbol.svg
tellegen-gyrator-symbol.svg
A man named Bernard Tellegen thought of it. It acts in a very special way. It can make one part act like another. For example, it can make a part act like a coil.
tellegen-gyrator-annotated.svg
tellegen-gyrator-annotated.svg
This helps make electronic tools much smaller. It can even make a coil out of a small part. This is very useful for tiny tools. It is a very clever way to work!
Op-Amp Gyrator.svg
Op-Amp Gyrator.svg

79 words

A gyrator is a special part used in electrical circuits. A man named Bernard Tellegen proposed it in 1948.

tellegen-gyrator-symbol.svg
tellegen-gyrator-symbol.svg
Most circuit parts work in a predictable way. But the gyrator is non-reciprocal. This means it works differently depending on the direction of the signal.

A gyrator can change how a part behaves. For example, it can make a capacitor act like an inductor. An inductor is a coil that uses magnetism.

tellegen-gyrator-annotated.svg
tellegen-gyrator-annotated.svg
This is very helpful for making tiny electronics. In the past, engineers used large coils of wire. Now, they can use a gyrator to make a small part act like a coil. This helps make circuits much smaller.

One gyrator can act like a transformer. A transformer connects two parts of a circuit. If you use two gyrators together, they work just like a transformer.

tellegen-gyrator-cascaded.svg
tellegen-gyrator-cascaded.svg
This means we can build many tools using fewer types of parts. Gyrators are often used to design filters. These are tools that pick certain signals. Using a gyrator can make these filters very accurate.
Op-Amp Gyrator.svg
Op-Amp Gyrator.svg

176 words

A gyrator is a special part used in electrical circuits. It is a two-port device, which means it has two connection points for electricity to enter and leave. Most circuit parts are reciprocal, meaning they work the same way in both directions. However, the gyrator is non-reciprocal. This means it behaves differently depending on which way the signal travels. It can even reverse the signal's polarity when it moves backward. This unique trait allows engineers to build devices that other parts cannot create alone.

tellegen-gyrator-symbol.svg
tellegen-gyrator-symbol.svg

This part works by cross-coupling voltage and current. In a normal transformer, voltage connects to voltage and current connects to current. A gyrator does something different by connecting voltage on one side to current on the other. It also connects current on one side to voltage on the other. This process is called inverting the impedance. Because of this, a gyrator can make a capacitive circuit act like an inductive one. It can even turn a series LC circuit into a parallel one.

tellegen-gyrator-annotated.svg
tellegen-gyrator-annotated.svg

A scientist named Bernard D. H. Tellegen proposed the gyrator in 1948. He wanted to suggest a fifth type of linear element for circuits. Before this, engineers mainly used resistors, capacitors, inductors, and ideal transformers. Tellegen even created a specific symbol to represent the gyrator in diagrams. He named the part by blending the word "gyroscope" with the suffix "-tor." This suffix is common in names like resistor or transistor.

tellegen-gyrator-cascaded.svg
tellegen-gyrator-cascaded.svg

There are many interesting facts about how gyrators function in math and physics. An ideal gyrator is a lossless device, meaning it does not use up any energy. It is characterized by a value called gyration resistance. If you connect two gyrators together, they can act exactly like an ideal transformer. This discovery means that transformers are actually redundant if you have gyrators. In fact, you can build almost any circuit using just three types of parts.

Op-Amp Gyrator.svg
Op-Amp Gyrator.svg

You can think of a gyrator like a mechanical gyroscope. In a gyroscope, applying force to one axis changes the speed on a different axis. The electrical gyrator mimics this by linking voltage and current across different ports. Today, gyrators are very helpful for making electronics smaller. Instead of using huge coils of wire to make an inductor, engineers use tiny transistors and capacitors. This makes it much easier to build small devices like integrated circuits.

395 words

{ "text": "A gyrator is a specialized electrical component known as a passive, linear, lossless, two-port network element. It was first proposed in 1948 by the scientist Bernard D. H. Tellegen. Tellegen envisioned the gyrator as a hypothetical fifth linear element. This would join the four conventional elements: the resistor, capacitor, inductor, and ideal transformer. Unlike those four standard parts, the gyrator is non-reciprocal. This means the direction of the signal matters significantly. Because of this unique property, gyrators allow engineers to create complex devices like isolators and circulators. These specific devices cannot be built using only the four conventional elements.

tellegen-gyrator-symbol.svg
tellegen-gyrator-symbol.svg
\n\nThe core mechanism of a gyrator involves cross-coupling voltage and current. In an ideal gyrator, the current on one port is coupled to the voltage on the other port. Conversely, the voltage on one port is coupled to the current on the other. This relationship is defined by a value called gyration resistance. The direction of this relationship is shown by an arrow on its schematic diagram. By convention, the gyration resistance relates the voltage at the arrow's head to the current at its tail. The voltage at the tail relates to the current at the head by minus the stated resistance. Interestingly, the gyrator is a lossless component. This means the instantaneous power into the device is exactly zero.
tellegen-gyrator-annotated.svg
tellegen-gyrator-annotated.svg
\n\nBecause of this cross-coupling, the gyrator can invert the impedance of a circuit. Impedance is a measure of how much a circuit resists electrical flow. For example, a gyrator can make a capacitive circuit behave as if it were inductive. It can also turn a series LC circuit into a parallel LC circuit. This ability is vital for miniaturization in modern electronics. If the gyration resistance matches the characteristic impedance of the ports, the device transmits a signal unchanged in the forward direction. However, it reverses the polarity of the signal traveling in the backward direction. This is equivalent to a 180-degree phase shift for the backward signal.
tellegen-gyrator-cascaded.svg
tellegen-gyrator-cascaded.svg
\n\nBernard Tellegen provided both the name and the symbol for this element. He created the name by blending \"gyroscope\" with the common device suffix \"-tor.\" This suffix is seen in words like resistor and transistor. The name reflects a mechanical analogy. In a gyroscope, a torque on one axis produces a change in angular velocity on another axis. In the electrical version, voltage and current act as the analogs for torque and angular velocity. Tellegen also suggested several ways to build practical gyrators. Today, these circuits are often built using transistors and operational amplifiers, also called op-amps, through the use of feedback.
Op-Amp Gyrator.svg
Op-Amp Gyrator.svg
\n\nOne of the most important uses for a gyrator is simulating an inductor. Before transistors were common, engineers used large coils of wire to create inductance. These coils can be very bulky. A gyrator can transform a load capacitance into an inductance using much smaller parts. This is done by inverting and multiplying the effect of a capacitor in an RC differentiating circuit. The resulting input impedance can mimic an ideal inductor with a series resistance. In these designs, the inductance $L$ is calculated as $R_L \cdot R \cdot C$. This allows for the creation of very small inductive elements. This technique is especially useful when designing integrated circuits where space is limited.\n\nThere are notable differences between a simulated inductor and a physical one. A simulated inductor made with a gyrator can reach a massive range. It can create inductance from the microhenry range up to the megahenry range. In contrast, physical inductors are typically limited to tens of henries. Furthermore, a synthesized inductor can actually be higher in quality than a real one. This is because physical capacitors are often more \"ideal\" than physical inductors. By using a gyrator and a capacitor, engineers can achieve a higher Q factor. The Q factor represents the quality or efficiency of the inductor. This makes gyrators excellent for high-precision filter networks.\n\nHowever, simulated inductors have specific limitations. They do not possess the inherent energy-storing properties of real inductors. For instance, they cannot produce a high-voltage back EMF during sudden changes. This means they are not useful for \"flyback\" applications where large voltage spikes are needed. They also do not react to external magnetic fields. A real inductor creates a magnetic field that can induce currents in nearby conductors, but a gyrator does not. Additionally, because the circuit uses active components, it only works within the range of its power supply. This limits the transient response to the bandwidth of the active device used in the circuit.", "media": [ "File:tellegen-gyrator-symbol.svg", "File:tellegen-gyrator-annotated.svg", "File:tellegen-gyrator-cascaded.svg", "File:Op-Amp Gyrator.svg" ] }

764 words
🖼️ Images & Media (4)
File:tellegen-gyrator-symbol.svg
tellegen-gyrator-symbol.svg
File:tellegen-gyrator-annotated.svg
tellegen-gyrator-annotated.svg
File:tellegen-gyrator-cascaded.svg
tellegen-gyrator-cascaded.svg
File:Op-Amp Gyrator.svg
Op-Amp Gyrator.svg
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