• open navigation menu
  • Logo
    • Input keywords/ Part number
    • Manufacturers
    • Hot Products
    • RFQ
    • Blog
    • Tools
    • About Us
    • Quality Control
    Logo

    Sale support

    • info@glofell.com

    Company

    • Blog
    • About Us
    • Quality Control
    • Contact Us

    Resource

    • Categories
    • Manufacturers
    • Tools

    Quick link

    • Privacy Policy
    • Terms & Conditions
    • Cookies Policy
    • Refund & Return Policy
    • Shipping & Delivery Policy

    © 2026 Copyright. All Rights Reserved. Made by Glofell

    Payment
    Payment
    Payment
    Payment
    1. Home/
    2. Tools/
    3. Reflection Attenuator Calculator

    Reflection Attenuator Calculator

    Find the correct R1 resistor value for a reflection attenuator with Glofell's online calculator, helping you achieve the desired attenuation and impedance match.

    Reflection Attenuator Calculator

    Ω
    Ω
    Ω

    FORMULAS

    Reflection attenuator formula
    Reflection attenuator chart

    Introduction

    Reflection Attenuator Calculator

    Overview

    This calculator helps you determine the required termination resistor values for a Reflection Attenuator. Ideally, a reflection attenuator uses a quadrature hybrid coupler terminated with two identical resistors (or variable loads).

    The calculator provides two possible resistor solutions based on the system impedance (Z0Z_0Z0​) and the desired attenuation:

    1. High Resistance State: Where the resistor value (R1R_1R1​) is greater than the system impedance (R1>Z0R_1 > Z_0R1​>Z).

    Formulas

    To calculate the resistor values, we first determine the Reflection Coefficient (Γ\GammaΓ) based on the desired Attenuation (AdBA_{dB}AdB​).

    Γ=10−AdB20\Gamma = 10^{-\frac{A_{dB}}{20}}Γ=10−20AdB​​

    Once we have the reflection coefficient, there are two formulas to find the resistance (R1R_1R1​), depending on whether the resistance is higher or lower than the characteristic impedance (Z0Z_0Z0​):

    Case 1: R1>Z0R_1 > Z_0R1​>Z0​ (High State) R1=Z0×1+Γ1−ΓR_1 = Z_0 \times \frac{1 + \Gamma}{1 - \Gamma}R

    Case 2: R1<Z0R_1 < Z_0R1​<Z0​ (Low State) R1=Z0×1−Γ1+ΓR_1 = Z_0 \times \frac{1 - \Gamma}{1 + \Gamma}R

    Where:

    • R1R_1R1​: The calculated termination resistance (Ω\OmegaΩ).
    • Z0Z_0Z0​: The system characteristic impedance (typically 50Ω).

    Applications

    General Function Attenuators are passive circuits used to reduce the amplitude of a signal without significantly distorting its waveform. They act as a bridge between a high-power source (transmitter) and a sensitive load (receiver/antenna), ensuring the signal level is within a safe operating range.

    Why Use Reflection Attenuators? Unlike standard Pi or T-pad attenuators, Reflection Attenuators offer unique advantages in RF design:

    • Variable Control: They are frequently used as variable RF attenuators by using PIN diodes or FETs as the variable resistors.
    • Bandwidth: Depending on the type of coupler used (e.g., Lange coupler or Hybrid coupler), these attenuators can operate over broad bandwidths (often octave bandwidths).
    • Digital Applications: They often feature discrete states, making them suitable for digital step attenuators. With careful design, they can provide a response that is invariant to phase changes.
    0
    ​
  • Low Resistance State: Where the resistor value (R1R_1R1​) is smaller than the system impedance (R1<Z0R_1 < Z_0R1​<Z0​).
  • 1​
    =
    Z0​×
    1−Γ1+Γ​
    1​
    =
    Z0​×
    1+Γ1−Γ​
    50\Omega
    50Ω
  • Γ\GammaΓ: The voltage reflection coefficient derived from the desired attenuation.
  • FAQ

    How does attenuator work?

    An attenuator reduces the power of an RF signal while preserving its waveform. In a reflection attenuator, a quadrature hybrid directs the signal toward a pair of terminating resistors. The resistors reflect part of the power back, and the combination of forward and reflected paths produces the desired attenuation. For example, a 3 dB attenuator causes a signal reflected by the load to pass through the attenuator twice, resulting in 6 dB total return loss.

    How do you calculate a reflection attenuator?

    Enter the desired attenuation in dB and the system impedance Z0. The calculator then applies these formulas: for R1 < Z0, R1 = Z0 * ((10^(dB/20) - 1) / (10^(dB/20) + 1)); for R1 > Z0, R1 = Z0 * ((10^(dB/20) + 1) / (10^(dB/20) - 1)). The second resistor R2 is set equal to R1.

    How do you calculate attenuator loss?

    Enter the resistor values R1 and R2 along with the system impedance to compute the attenuation in dB and the resulting input/output impedance. The calculator can also work in reverse, generating R1 and R2 from a required attenuation. Note that loss is usually stated as a positive dB value, though some documents quote return loss as a negative figure, similar to an S11 parameter on a network analyzer.

    What is the formula for attenuator resistance?

    For a reflection attenuator, the formula for the termination resistance R1 is R1 = Z0 * ((10^(dB/20) - 1) / (10^(dB/20) + 1)) when R1 is less than Z0, and R1 = Z0 * ((10^(dB/20) + 1) / (10^(dB/20) - 1)) when R1 is greater than Z0. R2 is identical to R1.

    What are the functions of attenuator?

    An attenuator reduces the power of a signal without significantly distorting its waveform. It is the opposite of an amplifier: rather than adding gain, it provides a controlled loss, typically expressed in dB. Attenuators are used to adjust signal levels, improve impedance matching, and protect sensitive components in RF and audio systems.

    How to find the emf of an attenuator?

    The source EMF is a property of the signal generator, not the attenuator. To find output levels, calculate the attenuator's input impedance from its resistor network, then apply the source EMF across the combined source and load impedances. In some examples, a source EMF of 2 V is used to simplify voltage calculations.

    What is a 3 dB attenuator?

    A 3 dB attenuator is an attenuator that reduces signal power to half its original value, i.e., a 3 dB loss. When placed in front of a load, the signal that reaches the load is 3 dB lower than the input. If the load reflects the signal, it travels through the attenuator again, adding another 3 dB, for a total return loss of 6 dB.

    Does an attenuator affect the tone?

    In audio and guitar amplifier applications, an attenuator can influence tone. The effect depends on the attenuator's design, impedance matching, and frequency response. Some units may roll off high frequencies or alter the interaction between the amplifier and speaker. Adjusting the amplifier's EQ or master volume after engaging the attenuator often helps preserve the original tone. High-quality attenuators are designed to minimize tonal coloration.

    What is the best attenuator?

    The best attenuator depends on the application. For RF circuits, key selection criteria include attenuation accuracy, frequency range, power handling, and VSWR. For guitar amps, look for a unit with appropriate wattage, impedance, and transparent tone. There is no single best model; choose one that matches your specific requirements and budget.

    What are the different types of attenuators?

    RF attenuators are available in several designs: fixed, step, continuously variable, programmable, DC bias, and DC blocking. Important specifications include attenuation (dB), frequency range, power handling (W), and characteristic impedance (Ohms). Selecting the right type depends on whether you need fixed loss, adjustable attenuation, or remote/programmable control.

    Related Tools
    Resistor Color Code Calculator

    Resistor Color Code Calculator

    106

    Glofell’s Resistor Color Code Calculator decodes 4-band, 5-band, and 6-band resistors. Select each band to identify resistance, tolerance, and power rating for circuit work, repairs, or lab sorting.

    Ohms Law Calculator

    Ohms Law Calculator

    94

    Glofell’s Ohm’s Law Calculator helps engineers and students quickly solve for voltage, current, resistance, and power. Provide any two known values to calculate the remaining parameters, making it a practical reference for circuit design, troubleshooting, and electronics learning.

    Op-Amp Voltage and Gain Calculator

    Op-Amp Voltage and Gain Calculator

    86

    Calculate output voltage together with inverting and non-inverting gain for operational-amplifier circuits. Enter V1, V2, Vp, Vn, and resistor values R1 through R4 to obtain accurate results for circuit design, troubleshooting, and op-amp learning.

    Inverting Op-Amp Resistor Calculator

    Inverting Op-Amp Resistor Calculator

    87

    Analyze an inverting operational-amplifier circuit by entering the desired gain, output voltage (Vout), R1 resistance, and input voltages V1, V2, Vp, and Vn. The calculator automatically determines the required R2, R3, and R4 resistor values, helping you design and verify inverting op-amp configurations.

    Hot Products
    02-N101-1
    02-N101-1
    Unknown
    HOT
    A03402
    A03402
    AOS
    HOT
    A4911KJPTR-T-1
    A4911KJPTR-T-1
    Allegro
    HOT
    ACS711ELCTR-12AB-T
    ACS711ELCTR-12AB-T
    Allegro
    HOT
    A333
    A333
    Allwinner
    HOT
    T113-S3
    T113-S3
    Allwinner
    NEW
    10M04SCU324C8G
    10M04SCU324C8G
    Altera
    NEW
    AD8656ARZ-REEL7
    AD8656ARZ-REEL7
    Analog Devices
    HOT
    ADA4932-1YCPZ-R7
    ADA4932-1YCPZ-R7
    Analog Devices
    HOT
    ADG453BRZ-REEL7
    ADG453BRZ-REEL7
    Analog Devices
    BEST SELL
    ACPL-P343-500E
    ACPL-P343-500E
    Broadcom
    HOT
    AEDR-8710-100
    AEDR-8710-100
    Broadcom