FD
CERAMIC RES 3MHz 30pF SMD6030
FD
CERAMIC RES 12MHz 10pF SMD3213
CERAMIC RES 10MHz 10pF SMD3213
CERAMIC RES 30MHz 8pF SMD2520
CERAMIC RES 40MHz SMD2520
CERAMIC RES 40MHz SMD3731
CERAMIC RES 12MHz SMD4741
CERAMIC RES 40MHz 5pF SMD2520
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Mfr.Part #
In Stock
Manufacturer
Description
Package
CSTLS24M0X51-A0 CSTLS24M0X51-A0 382780 Murata Electronics FD Radial - 3 Lead, 2.50mm Pitch
CP3M000000S030 CP3M000000S030 288679 TGS CERAMIC RES 3MHz 30pF SMD6030 3-SMD, No Lead
CSTLS33M8X53-B0 CSTLS33M8X53-B0 112562 Murata Electronics FD Radial - 3 Lead, 2.50mm Pitch
CH12M00000S010 CH12M00000S010 459511 TGS CERAMIC RES 12MHz 10pF SMD3213 3-SMD, No Lead
CH10M00000S010 CH10M00000S010 11028 TGS CERAMIC RES 10MHz 10pF SMD3213 3-SMD, No Lead
CN30M00000S008 CN30M00000S008 433887 TGS CERAMIC RES 30MHz 8pF SMD2520 3-SMD, No Lead
CJ40M00000S001 CJ40M00000S001 295220 TGS CERAMIC RES 40MHz SMD2520 2-SMD, No Lead
CG40M00000S001 CG40M00000S001 378050 TGS CERAMIC RES 40MHz SMD3731 2-SMD, No Lead
CS12M00000S001 CS12M00000S001 56696 TGS CERAMIC RES 12MHz SMD4741 2-SMD, No Lead
CN40M00000S005 CN40M00000S005 337088 TGS CERAMIC RES 40MHz 5pF SMD2520 3-SMD, No Lead

Resonators

1. Resonators Overview

The resonator is a device used to store or limit electromagnetic/acoustic energy, and achieves frequency control or energy resonance through the piezoelectric effect (such as quartz or ceramic) or specific structural design (such as an intake system). The core function is to stabilize frequency output, reduce interference, and improve energy efficiency in specific scenarios. It is a passive electronic component, which is mainly divided into two categories:

‌Quartz Crystal Resonator‌

It uses the piezoelectric effect of quartz crystal to generate a high-precision resonant frequency, and the frequency stability is better than that of a ceramic resonator. Common packaging forms include DIP plug-in and SMD patch type.

 

‌Ceramic Resonator‌

It uses the piezoelectric effect of ceramic materials to achieve resonant frequency, which is low in cost but relatively weak in accuracy.

 

2. What are the Core Characteristics of Resonators?

‌Frequency Control‌

By adjusting the load capacitance or internal inductance/capacitance parameters, the operating frequency can be fine-tuned to near the nominal value.

 

‌Stability Parameters‌

‌Temperature frequency difference‌: the maximum allowable deviation value of the frequency within the operating temperature range (such as ±10 ppm); ‌Aging rate‌: the long-term drift error of the frequency over time.

 

‌Impedance Characteristics‌

The load resonant resistance (RL) represents the equivalent resistance value when connected in series with the specified capacitor.

 

3. Difference between Resonators and Oscillators

‌Resonator‌: It needs to rely on an external circuit drive and only provides a frequency reference. It is a passive device.

‌Oscillator‌: It integrates amplification and feedback circuits and can directly output stable oscillation signals. It is an active device.

 

4. What are Resonators Used for?

‌Wireless Communication System‌: It is used for RF signal filtering and frequency selection.

‌Clock Circuit‌: Scenarios that require high-precision timing control, such as computer motherboards and microcontrollers (mainly quartz resonators).

‌Industrial Control‌: High-frequency noise suppression in filter circuits (such as resonant reactors).

‌Consumer Electronics‌: Ceramic resonators are often used in low-cost electronic devices (such as remote controls).

 

5. Selection and Use Precautions for Resonators

‌Load Matching‌: The load capacitance needs to match the circuit design to avoid frequency deviation.

‌Environmental Adaptability‌:

Quartz resonators need to pay attention to the temperature range (such as -40℃~85℃) and temperature compensation requirements;

 

Ceramic resonators need to prevent frequency drift caused by mechanical vibration.

 

‌Aging Effect‌: Long-term use requires a reserve of aging rate tolerance.