DSC1001CI2-033.3333B Allicdata Electronics
Allicdata Part #:

DSC1001CI2-033.3333B-ND

Manufacturer Part#:

DSC1001CI2-033.3333B

Price: $ 0.00
Product Category:

Crystals, Oscillators, Resonators

Manufacturer: Microchip Technology
Short Description: OSC MEMS 33.3333MHZ CMOS SMD
More Detail: 33.3333MHz XO (Standard) CMOS Oscillator 1.8 V ~ 3...
DataSheet: DSC1001CI2-033.3333B datasheetDSC1001CI2-033.3333B Datasheet/PDF
Quantity: 1000
1 +: 0.00000
Stock 1000Can Ship Immediately
$ 0
Specifications
Frequency Stability: ±25ppm
Current - Supply (Disable) (Max): 15µA
Height - Seated (Max): 0.035" (0.90mm)
Size / Dimension: 0.126" L x 0.098" W (3.20mm x 2.50mm)
Package / Case: 4-SMD, No Lead
Mounting Type: Surface Mount
Ratings: AEC-Q100
Current - Supply (Max): 7.2mA
Operating Temperature: -40°C ~ 85°C
Series: DSC1001
Voltage - Supply: 1.8 V ~ 3.3 V
Output: CMOS
Function: Standby (Power Down)
Frequency: 33.3333MHz
Type: XO (Standard)
Base Resonator: MEMS
Part Status: Active
Packaging: Tape & Reel (TR) 
Description

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Oscillators refer to periodic electronic circuit components that generate an AC waveform with frequencies ranging from 0.1hz to 300 GHz. The DSC1001CI2-033.3333B (hereinafter referred to as the “device”) is a type of oscillator, specifically designed as the main device for frequency control and voltage tuning with applications in a variety of fields including broadcasting, communication, electronic equipment, medical equipment, and consumer electronics. The device allows users to modify its frequency and voltage without the need of an external device except for the power source. Given its unique design, the device works in optimal performance with minimal power and still generates stable output signals even under harsh conditions.

The working principle of the device is based on an LC (inductance-capacitance) parallel resonant circuit. An LC circuit is composed of two components, an inductor and a capacitor, and is able to convert electrical energy into magnetic energy (stored in the inductor) and vice versa with alternating current. This is known as inductive reactance. At the same time, the capacitor stores electrical energy directly in the electric field and is known as capacitive reactance. When an AC current of a specific frequency is introduced into the LC circuit, the circuit can be induced to oscillate. The two components in the circuit act in equal and opposite directions to form resonance and cause oscillation to happen. This type of oscillation is known as LC oscillation. When a suitable load is attached, the frequency of the oscillation waveform can be output.

The DSC1001CI2-033.3333B is composed of three main components: a power source, an inductance-capacitance (LC) parallel resonant circuit, and a load. Two bias current control circuits are also included to control the frequency and voltage. The power source provides the circuit with electrical energy. The LC parallel resonant circuit is made up of a parallel combination of two fundamental components: a capacitor and an inductor. The capacitor and inductor store electrical and magnetic energy respectively and together form the LC oscillation circuit. As the frequency of the power source is changed, the LC resonance circuit acts to generate a frequency that is proportional to the square root of the LC product. The load can act as a detector to capture output from the LC circuit.

In addition to the LC oscillator, the device contains two other portions, the current-controlling circuits. These circuits act as a control signal for frequency and voltage tuning. The first circuit is the inductor-capacitor (L-C) circuit, the equivalent of a tiny transformer with an adjustable frequency. The second circuit is the frequency-voltage (F-V) control, which works by controlling the magnitude and direction of the biasing current to adjust the resonance frequency of the LC parallel resonant circuit. In this way, both frequency and voltage can be conveniently adjusted without the need of external devices.

The DSC1001CI2-033.3333B oscillator is a highly customizable device which has great applications in a variety of fields. Since it does not require an external device apart from the power source, it significantly reduces the complexity of the design. With its feature of high performance and stability even under harsh conditions, it is a go-to for the design of frequency-regulating products.

The specific data is subject to PDF, and the above content is for reference

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