Allicdata Part #: | TS320T23CDT-ND |
Manufacturer Part#: |
TS320T23CDT |
Price: | $ 0.22 |
Product Category: | Crystals, Oscillators, Resonators |
Manufacturer: | CTS-Frequency Controls |
Short Description: | CRYSTAL 32.000000 MHZ |
More Detail: | 32MHz ±20ppm Crystal 18pF 80 Ohms HC-49/US |
DataSheet: | TS320T23CDT Datasheet/PDF |
Quantity: | 1000 |
1000 +: | $ 0.20412 |
Series: | ATSSMTS |
Packaging: | Tape & Reel (TR) |
Part Status: | Active |
Type: | MHz Crystal |
Frequency: | 32MHz |
Frequency Stability: | ±30ppm |
Frequency Tolerance: | ±20ppm |
Load Capacitance: | 18pF |
ESR (Equivalent Series Resistance): | 80 Ohms |
Operating Mode: | 3rd Overtone |
Operating Temperature: | -20°C ~ 70°C |
Ratings: | -- |
Mounting Type: | Surface Mount |
Package / Case: | HC-49/US |
Size / Dimension: | 0.437" L x 0.190" W (11.10mm x 4.83mm) |
Height - Seated (Max): | 0.169" (4.30mm) |
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Crystals are a type of components used in electrical, electronic and mechanical devices, and reference to the theory of internal and external periodic arrangements, which has been part of metallurgy and crystal growth since antiquity. Crystals form the basis for semiconductor technology, which powers modern electronics and comprises of components that are driven for the purpose of making electronic circuits and systems.
One such component made of crystal is the TS320T23CDT, which stands for the Tension mode Spherical Wave Transducer. It is a resonator crystal manufactured from the Farinfrared Pyroelectric material, including tellurite and lithium tantalate. This crystal has found a variety of applications, and its working principle draws upon utilizing its pyroelectric behavior.
The TS320T23CDT constitutes a high quality waveguide mode resonator with an extra wide band, low insertion loss and a high quality line-width. It can be used in applications such as terahertz wave oscillators, phase stability of microwave filters and nonlinear behavior characterization in pyroelectric materials. It is also used in radio astronomy and THz heterodyne receivers.
The underlying principle of working of the TS320T23CDT can be explained in two-phases - as one of pyroelectricity in reaction to external temperature variations and as a resonator material that can oscillate freely. Pyroelectricity occurs due to a crystal’s mechanical polarization and electricity generated from the variation of temperature. When the palm is exposed to the temperature, the electric polarization in the crystal varies and it generates an alternate current. It exhibits anisotropic behavior within its electrical experience, where it has unique properties in three different directions.
Furthermore, in its resonator material form, the TS320T23CDT is also a highly efficient absorber that absorbs energy soundly in a particular frequency range. It has a wide frequency range of low acoustic wave resistance with a nice resonance frequency. This leads to excellent convergent and radiative properties, as well as wide attenuation regions. The crystal effectively resists electrical noise, and is an optical light insulator. Therefore, crystalline material is an ideal resonator material.
The TS320T23CDT finds wide applications in metrology such as surface charging of magnetic and acoustic materials, spatiotemporal Cryocon performance in ultra-high vacuum firing, and ultrasound generation and detection. Additionally, it is also used in the the combination of thermoacoustic and electroacoustic transducers, and in the spectrometric absorption of infrared radiation. Furthermore, it is also used in acoustic picture recognition.
To conclude, the TS320T23CDT is a component of crystal that finds wide range of applications ranging from radio astronomy, THz heterodyne receivers, terahertz wave oscillators, and more. Its underlying principle of work dwells upon the theory of pyroelectricity and a resonator material that is highly efficient absorber. The combination of the two properties makes it the ideal component for a variety of applications.
The specific data is subject to PDF, and the above content is for reference
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