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Negative impedance converter

technology Maturity 7-9

Some parts add power to a circuit.

Op-Amp Negative Impedance Converter.svg
Op-Amp Negative Impedance Converter.svg
Most parts use up power. This part works in a new way. It can push energy back. This helps tools work better. It is very smart! Can you imagine that?

41 words

Most parts in a circuit use up energy.

Op-Amp Negative Impedance Converter.svg
Op-Amp Negative Impedance Converter.svg
This special part does something different. It can push energy back into a circuit.
Use of a negative resistor.svg
Use of a negative resistor.svg
This happens by changing how the power flows. It can flip the direction of the current. This helps power tools work much better. It can even act like a perfect power source. This makes the tool stay strong for any job.
General negative impedance circuit.svg
General negative impedance circuit.svg
It is a very clever way to use electricity.

85 words

Most parts in a circuit use up power. But a negative impedance converter, or NIC, is different. A NIC is an active circuit. This means it puts power back into a circuit.

Op-Amp Negative Impedance Converter.svg
Op-Amp Negative Impedance Converter.svg

This happens by changing the voltage or the current. One type is called an INIC. An INIC flips the direction of the current. It uses an op-amp, which is a tiny part that can boost signals.

Use of a negative resistor.svg
Use of a negative resistor.svg
It also uses a resistor to push current back toward the source. This makes the circuit act like it has negative resistance.

Engineers use this to make tools work better. A real power source can lose strength when it does work. An INIC can fix this. It can act like an ideal generator. This means the power stays the same no matter what is plugged in.

General negative impedance circuit.svg
General negative impedance circuit.svg

To work well, the NIC must match the source. If they do not match, the circuit might become unstable. This can cause the voltage to hit its limits. A NIC can also make negative capacitance or inductance. These are other ways to control how electricity moves.

193 words

Most parts in an electrical circuit are loads. These loads take energy away from the system. A negative impedance converter, or NIC, works differently. It is an active circuit that injects energy. Instead of using up power, it puts it back.

Op-Amp Negative Impedance Converter.svg
Op-Amp Negative Impedance Converter.svg
This helps change how a circuit behaves. It can even change the direction of current. This creates a phase shift of 180 degrees. This shift is also called an inversion.
General negative impedance circuit.svg
General negative impedance circuit.svg

There are two main types of these circuits. One is called a VNIC, which uses voltage inversion. The other is an INIC, which uses current inversion. An INIC works using an op-amp and a resistor.

Practical negative resistance op amp.svg
Practical negative resistance op amp.svg
The op-amp and a voltage divider are key parts. A resistor connects the output back to the input. This creates a current that flows toward the source. This opposing current makes the circuit act like a negative resistor. It can even mimic negative capacitance or negative inductance.

Engineers use these circuits to make generators work better. A real generator is not always ideal. It might lose strength depending on the load. An INIC can be placed in parallel to help. It can match the internal resistance of the generator.

Use of a negative resistor.svg
Use of a negative resistor.svg
This makes the system act like an ideal current source. The output current stays the same for any load. The NIC supplies any current that would normally be lost. This makes the power source much more steady and reliable.

Matching the parts is a very important step. The NIC must match the resistance of the source. If the resistance is not the same, it might not work. If the NIC resistance is much larger, the effect is small.

Negative capacitance circuit.svg
Negative capacitance circuit.svg
If the values are not right, the circuit can become unstable. This happens when there is positive feedback. The voltage might then reach the limits of the power supply. To fix this, you can reduce the impedance of the load. This helps keep the whole system stable and safe.

These ideas link to how we understand electricity. We often think of resistors as things that slow down flow. A NIC turns that idea on its head. It can even create floating impedances like a floating inductor.

Negative inductance circuit.svg
Negative inductance circuit.svg
While a VNIC is hard to use in practice, the INIC is common. It is often placed in parallel with a source. This allows us to improve how a source behaves. It is a clever way to control energy in a circuit.

425 words

A negative impedance converter, or NIC, is a special type of active circuit. Most parts in an electrical circuit are called loads. These loads usually consume energy from the system. However, a NIC works in a very different way. It is an active circuit that injects energy into other circuits. It does this by adding or subtracting a varying voltage. This process happens in series with the voltage drop of a positive impedance.

Op-Amp Negative Impedance Converter.svg
Op-Amp Negative Impedance Converter.svg
This action can reverse the voltage polarity or the current direction. It also introduces a 180-degree phase shift between the voltage and the current. This shift is also known as an inversion.

There are two primary versions of this technology. The first is the voltage negative impedance converter, or VNIC. This version focuses on voltage inversion. The second is the current negative impedance converter, or INIC. An INIC is often built using an operational amplifier, also called an op-amp. It also uses a voltage divider. In a basic INIC circuit, a resistor connects the output of the op-amp back to its input.

Practical negative resistance op amp.svg
Practical negative resistance op amp.svg
This specific setup allows the circuit to mimic a resistor with negative resistance. The components used, such as $R_1$, $R_2$, and $R_f$, do not have to be pure resistances. They can actually be capacitors, inductors, or other impedance networks.

To understand how an INIC works, we must look at the current flow. The op-amp output voltage creates a specific current. This current flows from the op-amp output through the resistor toward the source. We can label this current as $i_f$. Because of the circuit design, the input experiences an opposing current. This current is proportional to the voltage.

General negative impedance circuit.svg
General negative impedance circuit.svg
As a result, the input behaves as if it is facing a negative resistance. The circuit effectively pushes current back toward the source rather than just letting it flow through.

Engineers use NICs to make real generators behave more like ideal generators. A real generator is not perfect. Its output often changes depending on the load connected to it. We can represent a real generator using a Norton representation. This includes a current generator and an internal resistance. If we place an INIC in parallel to that internal resistance, we can change the system.

Use of a negative resistor.svg
Use of a negative resistor.svg
For the best results, the INIC must have the same magnitude as the internal resistance. However, its resistance value must be inverted. When these two are in parallel, the equivalent resistance becomes infinite. This allows the system to act like an ideal current source.

In this ideal state, the output current stays the same regardless of the load. This happens because the INIC supplies any current that would normally be lost to the internal resistance. This is a very precise balancing act. The success of this application depends on the Norton resistance and the INIC resistance matching perfectly. If the INIC resistance is much larger than the Norton resistance, the effect is negligible. If the values are not matched, the circuit may struggle to perform its intended task.

Stability is a major concern when working with these circuits. If the circuit is unloaded, it can become unstable. This instability occurs because the surplus current from the INIC generates positive feedback. This feedback can cause the voltage to reach the limits of the power supply. To make the system stable again, an engineer can reduce the impedance of the load. By causing the load to draw more current, the generator-NIC system returns to a stable state.

While a VNIC could theoretically be used in a series circuit, it is not very practical. A VNIC implemented with an op-amp must terminate on an electrical ground. Because of this limitation, the INIC is the preferred choice. Since any voltage source with resistance can be turned into a current source, the INIC is more versatile. It is typically placed in parallel with a source to improve its performance.

Negative capacitance circuit.svg
Negative capacitance circuit.svg
This makes it a vital tool for managing how energy moves through a system.

Finally, the capabilities of a NIC extend to many different types of impedance. An INIC can produce the negative of any impedance. This includes creating negative capacitance or negative inductance.

Negative inductance circuit.svg
Negative inductance circuit.svg
It can even be used to design floating impedances. A floating negative inductor is one example of this advanced application. This ability to manipulate the fundamental properties of electricity makes the negative impedance converter a highly significant tool in electronic design.

750 words
🖼️ Images & Media (6)
File:Op-Amp Negative Impedance Converter.svg
Op-Amp Negative Impedance Converter.svg
File:Use of a negative resistor.svg
Use of a negative resistor.svg
File:General negative impedance circuit.svg
General negative impedance circuit.svg
File:Practical negative resistance op amp.svg
Practical negative resistance op amp.svg
File:Negative capacitance circuit.svg
Negative capacitance circuit.svg
File:Negative inductance circuit.svg
Negative inductance circuit.svg
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