
Allicdata Part #: | SN74HC175NG4-ND |
Manufacturer Part#: |
SN74HC175NG4 |
Price: | $ 0.13 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | Texas Instruments |
Short Description: | IC FF D-TYPE SNGL 4BIT 16DIP |
More Detail: | N/A |
DataSheet: | ![]() |
Quantity: | 1000 |
2200 +: | $ 0.11132 |
Max Propagation Delay @ V, Max CL: | 26ns @ 6V, 50pF |
Base Part Number: | 74HC175 |
Package / Case: | 16-DIP (0.300", 7.62mm) |
Mounting Type: | Through Hole |
Operating Temperature: | -40°C ~ 85°C (TA) |
Input Capacitance: | 3pF |
Current - Quiescent (Iq): | 8µA |
Voltage - Supply: | 2 V ~ 6 V |
Current - Output High, Low: | 5.2mA, 5.2mA |
Trigger Type: | Positive Edge |
Series: | 74HC |
Clock Frequency: | 60MHz |
Number of Bits per Element: | 4 |
Number of Elements: | 1 |
Output Type: | Differential |
Type: | D-Type |
Function: | Master Reset |
Part Status: | Active |
Packaging: | Tube |
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The SN74HC175NG4 is a Quad D-type Flip-Flop with data storage register and three-state output capability. This device is primarily used to store binary data in the form of a high or low logic level. The SN74HC175NG4 is a logic function which can be used in digital systems that require data storage and logic control over a given time. It is typically used in applications such as frequency counters, an address register, clock generator, shift register, memory control circuits, and multiplexer systems.
By entering data on the four Data pins, these can be stored to appear at the four outputs as long as the enable pin (E) is held high. The data is stored in the Flip-Flops until the Clock pin (CP) is toggled, or until enable (E) is taken low.
The SN74HC175NG4 Flip-Flop is comprised of four independent D-type Flip-Flops which are triggered by a low-to-high pulse on the Clock pin (CP). D-type Flip-Flops each store one bit of information. Each Flip-Flop has two outputs; one (Q) stores the Logic “1” state, the other (Q!) stores the Logic “0” state.
The SN74HC175NG4 consists of four D-type Flip-Flops, each with a separate Clock input (CP) and asynchronous Clear inputs (R). The Clear inputs on each Flip-Flop are connected together internally to allow them to be used simultaneously when required. Each Flip-Flop can be set or reset individually by taking one of the Clear inputs low. The Clear pins (R) can also be held high to allow the data stored in the Flip-Flop to remain unaffected.
When the Clock pin (CP) is triggered with a low-to-high edge transition, the data present on the Data pins is transferred serially into each of the individual Flip-Flops. The rising edge of the Clock pin can occur at any time independently of the data present on the Data pins, ensuring that the output state of each Flip-Flop is always determined by the state of the Data pins at the time the Clock pin was triggered.
In the SN74HC175NG4, the output state of each Flip-Flop is determined by the state of the Data pin at the time the Clock pin is triggered. When the output pin is logic “1”, it is in the “Voltage High” state. When the output pin is logic “0”, it is in the “Voltage Low” state. In addition, the output pins can also be placed in the “Open Collector (OC)” state, which allows the output pins to be bipolar, or capable of carrying either a positive or negative voltage, depending on the application.
The SN74HC175NG4 Flip-Flop is a versatile device which can be applied in many different applications. It can be used to store binary data and can be used in frequency counters, an address register, clock generator, shift register, memory control circuits, and multiplexer systems. It is also used in logic circuits to detect changes in input state, as well as for storing data from peripheral devices such as a keyboard, mouse, or other input device. Additionally, its three-state outputs make it suitable for use in multiplexer systems as well.
In conclusion, the SN74HC175NG4 is a versatile logic circuit which can be used to store data, detect changes in input state, and provide three-state outputs for multiplexer systems. It is applicable in a wide range of digital systems, from frequency counters to address registers and memory control circuits, and offers high levels of reliability.
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