
Allicdata Part #: | MC10E016FNGOS-ND |
Manufacturer Part#: |
MC10E016FNG |
Price: | $ 7.34 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | ON Semiconductor |
Short Description: | IC COUNTER 8BIT SYNC ECL 28PLCC |
More Detail: | Counter IC Binary Counter 1 Element 8 Bit Positive... |
DataSheet: | ![]() |
Quantity: | 82 |
1 +: | $ 6.67170 |
10 +: | $ 6.02784 |
100 +: | $ 4.99023 |
500 +: | $ 4.34542 |
1000 +: | $ 3.78473 |
Timing: | Synchronous |
Base Part Number: | 10E016 |
Supplier Device Package: | 28-PLCC (11.51x11.51) |
Package / Case: | 28-LCC (J-Lead) |
Mounting Type: | Surface Mount |
Operating Temperature: | 0°C ~ 85°C |
Voltage - Supply: | 4.2V ~ 5.7V |
Trigger Type: | Positive Edge |
Count Rate: | 900MHz |
Series: | 10E |
Reset: | Asynchronous |
Number of Bits per Element: | 8 |
Number of Elements: | 1 |
Direction: | Up |
Logic Type: | Binary Counter |
Part Status: | Active |
Packaging: | Tube |
Due to market price fluctuations, if you need to purchase or consult the price. You can contact us or emial to us: sales@allicdata.com
MC10E016FNG is a general purpose monolithic Logic - Counters, Dividers used in a wide variety of applications which require efficient and reliable technology. This device can be used in many different applications such as digital signal processing, switch control and motor control.
The MC10E016FNG has three main sections, namely the D-Counters, Dividers and the Pulse Width Modulators. Each one has a different purpose and can be used for different tasks. D-Counters are used to generate digital signals from analog inputs and can be used for counting, sequencing, sampling and filtering. Dividers are used to divide a signal into a specific number of evenly spaced pulses. These pulses can then be used for various tasks such as timing and counting. Finally, the Pulse Width Modulators are used to control the pulse width of a signal to achieve a desired phase relationship.
The MC10E016FNG has a maximum input frequency of 500MHz and a data rate of 2Mbps. Its operating voltage is between 2.5 and 5.5V and it has an output current of up to ± 1μA. Moreover, it is able to function under temperature conditions of -55 to +125 degrees Celsius and its power consumption is incredibly low.
The working principle of the MC10E016FNG is fairly simple. Incoming data is fed into the D-Counters section. The D-Counters section processes the data and sends it to the Dividers. The Dividers then divide the signal into the specified number of evenly spaced pulses. The Pulse Width Modulators then adjust the width of the pulses to achieve a desired phase relationship. For example, the MC10E016FNG can be used to generate multiple outputs with a fixed period of one second, where the Pulse Width Modulators can be used to adjust the timing of the outputs.
The MC10E016FNG can be used for a variety of applications, such as signal timing and control, signal generation, and frequency synthesis. For example, the device can be used to generate multiple output signals with a fixed period of one second and with different pulse widths. It is particularly useful in the telecommunications industry and in embedded systems where it can be used to provide efficient, reliable and low-power solutions. Furthermore, due to its low power consumption, it is also ideal for battery powered applications.
In summary, the MC10E016FNG is a general purpose logic - Counters, Dividers used for many different applications. Its design enables the device to have a high input frequency, a low power consumption and an operating temperature range of -55 to +125 degrees Celsius. The MC10E016FNG has three main sections, which are the D-Counters, Dividers and the Pulse Width Modulators. Each one has a different purpose and can be used for different tasks. Finally, the working principle of the MC10E016FNG is that incoming data is processed by the D-Counters and sent to the Dividers, which in turn divide the signal into the specified number of evenly spaced pulses. The Pulse Width Modulators then adjust the width of the pulses to achieve a desired phase relationship.
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