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    H10S-8.000-18-2020-TR-NS1

    CRYSTAL 8.0000MHZ 18PF SMD

    Raltron Electronics

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    H10S-8.000-18-1020-EXT-TR

    CRYSTAL 8.0000MHZ 18PF SMD

    Raltron Electronics

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    H10S-6.000-20-3050-TR

    CRYSTAL 6.0000MHZ 20PF SMD

    Raltron Electronics

  • img

    H10S-20.000-18-1010-TR

    CRYSTAL 20.0000MHZ 18PF SMD

    Raltron Electronics

  • img

    H10S-18.432-18-EXT-TR

    CRYSTAL 18.4320MHZ 18PF SMD

    Raltron Electronics

  • img

    H10S-16.384-18-1030-TR

    CRYSTAL 16.3840MHZ 18PF SMD

    Raltron Electronics

  • img

    H10S-16.000-20-3050-EXT-TR

    CRYSTAL 16.0000MHZ 20PF SMD

    Raltron Electronics

  • img

    H10S-14.7456-16-1020-TR

    CRYSTAL 14.7456MHZ 16PF SMD

    Raltron Electronics

  • img

    H10S-13.560-10-1010-TR

    CRYSTAL 13.5600MHZ 10PF SMD

    Raltron Electronics

  • img

    H10S-12.000-18-5050-EXT-TR

    CRYSTAL 12.0000MHZ 18PF SMD

    Raltron Electronics

  • img

    H10S-12.000-18-2020-TR-NS1

    CRYSTAL 12.0000MHZ 18PF SMD

    Raltron Electronics

  • img

    H10S-10.000-18-EXT-TR

    CRYSTAL 10.0000MHZ 18PF SMD

    Raltron Electronics

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    R1210-48.000-8-F-1015-EXT-TR

    CRYSTAL 48.0000MHZ 8PF SMD

    Raltron Electronics

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    R1210-32.000-8-F-2020-EXT-TR

    CRYSTAL 32.0000MHZ 8PF SMD

    Raltron Electronics

  • img

    H13-6.000-20-3030-EXT-TR-NS1

    CRYSTAL 6.0000MHZ 20PF SMD

    Raltron Electronics

  • img

    TT-SMDC-4.9152-20-TR

    CRYSTAL 4.9152MHZ 20PF SMD

    Raltron Electronics

  • img

    TT-SMDC-14.7456-18-TR

    CRYSTAL 14.7456MHZ 18PF SMD

    Raltron Electronics

  • img

    TT-SMDC-20.000-18-TR

    CRYSTAL 20.0000MHZ 18PF SMD

    Raltron Electronics

  • img

    TT-SMDC-16.000-16-TR-NS1

    CRYSTAL 16.0000MHZ 16PF SMD

    Raltron Electronics

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    TT-SMDC-4.000-18-TR

    CRYSTAL 4.0000MHZ 18PF SMD

    Raltron Electronics

  • Total 738
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    What Are Crystal In Electronics?

    Crystal products are passive components primarily utilized as time or frequency references in electronic systems. They consist of a piezoelectric crystal that vibrates mechanically at a specific frequency. To function properly, they need an external oscillator circuit with carefully calibrated capacitance, drive voltage, and series resistance to produce a signal at the crystal's indicated frequency. This setup must operate effectively across the specified temperature range without harming the crystal element. Active devices that incorporate this essential circuitry are classified as oscillators and listed separately.


    Crystal


    How Does a Crystal Work in Electronics?

    A crystal operates in electronics by utilizing its unique physical properties to produce a stable and accurate frequency. The key to its functionality lies in its ability to vibrate at a specific frequency.

    When an electrical voltage is applied, the crystal experiences the piezoelectric effect, which causes it to deform or vibrate at its natural or resonant frequency. This resonant frequency is influenced by the crystal's physical characteristics, including its shape, size, and lattice structure.

    The vibrating crystal generates electrical signals at a precise frequency, which are used to regulate timing in electronic circuits. These signals serve as clock signals in digital circuits, ensuring synchronized operations and accurate timing intervals.

    The inherent stability of the crystal's frequency is essential for reliable performance. It maintains its resonant frequency with minimal variation, even under changing environmental conditions like temperature and pressure. This stability is crucial for accurate timekeeping and synchronization in electronic devices.

    Incorporating a crystal into electronic circuits provides a reference point for generating stable and predictable frequencies. The oscillation frequency is determined by the crystal's physical attributes, such as its thickness and cut, and can be adjusted with external components to meet specific device requirements.

    Overall, the precise vibrations of a crystal enable it to act as a dependable frequency-determining element in electronic circuits. Its ability to maintain stable frequencies makes it an essential component for various applications that depend on accurate timing and synchronization.

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