SN74ALVCH16820DLR Integrated Circuits (ICs) |
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Allicdata Part #: | 296-5248-2-ND |
Manufacturer Part#: |
SN74ALVCH16820DLR |
Price: | $ 0.00 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | Texas Instruments |
Short Description: | IC FF D-TYPE SNGL 10BIT 56SSOP |
More Detail: | N/A |
DataSheet: | SN74ALVCH16820DLR Datasheet/PDF |
Quantity: | 1000 |
1 +: | 0.00000 |
Max Propagation Delay @ V, Max CL: | 4.8ns @ 3.3V, 50pF |
Base Part Number: | 74ALVCH16820 |
Package / Case: | 56-BSSOP (0.295", 7.50mm Width) |
Mounting Type: | Surface Mount |
Operating Temperature: | -40°C ~ 85°C (TA) |
Input Capacitance: | 3.5pF |
Current - Quiescent (Iq): | 40µA |
Voltage - Supply: | 1.65 V ~ 3.6 V |
Current - Output High, Low: | 24mA, 24mA |
Trigger Type: | Positive Edge |
Series: | 74ALVCH |
Clock Frequency: | 150MHz |
Number of Bits per Element: | 10 |
Number of Elements: | 1 |
Output Type: | Tri-State, Non-Inverted |
Type: | D-Type |
Function: | Standard |
Part Status: | Obsolete |
Packaging: | Tape & Reel (TR) |
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A logic flip-flop designed for use in high-speed and low-power applications is the SN74ALVCH16820DLR. This device is designed to provide increased performance by utilizing logic gates that offer high speed switching and low power loss. It is also designed with a wide range of operating conditions, allowing for a wide range of applications. This article provides an overview of the application field and working principle of the SN74ALVCH16820DLR.
Application Field:
The SN74ALVCH16820DLR is designed for use in a variety of high-speed applications, including clocking and memory systems, signal processing, signal generation, and signal conditioning. It can be used in logic mapping, signal routing, signal conditioning, synchronization, and data transmission. The device is also suitable for data acquisition systems and advanced communications systems. Additionally, the device can be used in the health care, aerospace, and automotive industries.
Working Principle:
The SN74ALVCH16820DLR works using the concept of a logic flip-flop. A flip-flop is a circuit whose output is determined by the values of its two internal inputs, usually referred to as the set and reset inputs. The device operates by taking an input signal, storing it in a memory cell, and then outputting it when both the set and reset inputs have the same polarity. This enables the output of the device to change between two levels without any external control.
The device operates in two modes, the set/reset and dual-edge triggering mode. In the set/reset mode, a logic 1 is input at either the set or reset input, while a logic 0 is input at the other. This causes the output of the device to become the logic level that was input first. In the dual-edge triggering mode, both inputs are logic 1, causing the output of the device to switch between both logic levels based on the timing of the set and reset transitions.
The SN74ALVCH16820DLR is designed for use with a nominal supply voltage of 3.3V and an operating range of 1.2V to 3.6V. It consumes very little power, usually between 25µA and 50µA, and can handle high-frequency inputs up to 50MHz. The device has been tested and validated to work in harsh auto-insertion and drop-in conditions.
Advantages:
The main advantage of the SN74ALVCH16820DLR over other devices is its low power consumption and high speed. Its low power consumption makes it an ideal choice for applications where high power is not available but low power is still required. Its high speed makes it suitable for applications that require fast switching and response times, such as memory systems, signal routing and signal conditioning applications. The device also features a wide range of operating conditions, allowing for a wide range of applications.
Conclusion:
The SN74ALVCH16820DLR is a logic flip-flop designed for use in high-speed and low-power applications. It works by taking an input signal, storing it in a memory cell, and then outputting it when both the set and reset inputs have the same polarity. The device has been designed for a wide range of applications, including clocking and memory systems, signal processing, signal generation, and signal conditioning. It also consumes very little power and can handle high-frequency inputs up to 50MHz. Finally, the device is tested and validated to work in harsh auto-insertion and drop-in conditions.
The specific data is subject to PDF, and the above content is for reference
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