74HCT138S16-13 Diodes Incorporated HC HIGH PIN COUNT SO-16
Интегральные схемы (ИС)
Номер производителя:
74HCT138S16-13
Производитель:
Категория продукции:
Описание:
HC HIGH PIN COUNT SO-16
Состояние RoHs:
Без свинца / в соответствии с RoHS
Таблицы данных:
Circuit :
Current - Output High, Low :
Independent Circuits :
Mounting Type :
Operating Temperature :
Package / Case :
Packaging :
Part Status :
Series :
Supplier Device Package :
Type :
Voltage - Supply :
Voltage Supply Source :
в наличии
26,802
Unit Price:
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Предложение
74HCT138S16-13 Конкурентные цены
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74HCT138S16-13 Особенности
74HCT138S16-13 is produced by Diodes Incorporated, belongs to Logic - Сигнальные коммутаторы, мультиплексоры, декодеры.
74HCT138S16-13 Подробная информация о продукции
:
74HCT138S16-13 — это Logic - Сигнальные коммутаторы, мультиплексоры, декодеры, буферные усилители, разработанные и
произведенные
Diodes Incorporated.
74HCT138S16-13 производства Diodes Incorporated можно приобрести на сайте CHIPMLCC.
Здесь вы можете найти различные виды электронных деталей от ведущих производителей мира.
74HCT138S16-13 компании CHIPMLCC прошел строгий контроль качества и соответствует всем требованиям.
Статус запасов, отмеченный на CHIPMLCC, предназначен только для справки.
Если вы не нашли запчасть, которую ищете, вы можете связаться с нами для получения дополнительной информации, такой как количество запасов в таблице данных 74HCT138S16-13 (PDF), цена 74HCT138S16-13, Распиновка 74HCT138S16-13, руководство 74HCT138S16-13 и решение на замену 74HCT138S16-13.
74HCT138S16-13 производства Diodes Incorporated можно приобрести на сайте CHIPMLCC.
Здесь вы можете найти различные виды электронных деталей от ведущих производителей мира.
74HCT138S16-13 компании CHIPMLCC прошел строгий контроль качества и соответствует всем требованиям.
Статус запасов, отмеченный на CHIPMLCC, предназначен только для справки.
Если вы не нашли запчасть, которую ищете, вы можете связаться с нами для получения дополнительной информации, такой как количество запасов в таблице данных 74HCT138S16-13 (PDF), цена 74HCT138S16-13, Распиновка 74HCT138S16-13, руководство 74HCT138S16-13 и решение на замену 74HCT138S16-13.
74HCT138S16-13 FAQ
:
1. What is the function of the 74HCT138S16-13 semiconductor?
The 74HCT138S16-13 is a 3-to-8 line decoder/demultiplexer with address latches. It is designed to convert binary information from the input pins to a maximum of 8 unique outputs.
2. What are the typical applications for the 74HCT138S16-13 semiconductor?
This semiconductor is commonly used in microprocessor systems, memory selection, and various other digital systems where data needs to be routed to multiple devices based on specific address information.
3. What is the operating voltage range for the 74HCT138S16-13 semiconductor?
The operating voltage range for this semiconductor is typically between 4.5V and 5.5V.
4. Can the 74HCT138S16-13 handle high-speed data signals?
Yes, the 74HCT138S16-13 is capable of handling high-speed data signals, making it suitable for applications requiring rapid data processing.
5. What is the maximum output current capability of the 74HCT138S16-13 semiconductor?
The maximum output current capability of this semiconductor is approximately 4mA per output.
6. Does the 74HCT138S16-13 have built-in protection features?
Yes, it includes built-in diode protection to safeguard against damage from static electricity and transient voltage.
7. What is the typical power consumption of the 74HCT138S16-13 semiconductor?
The typical power consumption of this semiconductor is relatively low, making it energy-efficient for various applications.
8. Is the 74HCT138S16-13 available in different package types?
Yes, it is available in different package types such as SO16, TSSOP16, and DHVQFN16.
9. Can the 74HCT138S16-13 operate in harsh environmental conditions?
The 74HCT138S16-13 is designed to operate within standard industrial temperature ranges, making it suitable for a wide range of environmental conditions.
10. Are there any known common failure modes for the 74HCT138S16-13 semiconductor?
Common failure modes include overvoltage stress, excessive current loading, and exposure to extreme temperatures, so proper design considerations should be taken into account to mitigate these risks.
The 74HCT138S16-13 is a 3-to-8 line decoder/demultiplexer with address latches. It is designed to convert binary information from the input pins to a maximum of 8 unique outputs.
2. What are the typical applications for the 74HCT138S16-13 semiconductor?
This semiconductor is commonly used in microprocessor systems, memory selection, and various other digital systems where data needs to be routed to multiple devices based on specific address information.
3. What is the operating voltage range for the 74HCT138S16-13 semiconductor?
The operating voltage range for this semiconductor is typically between 4.5V and 5.5V.
4. Can the 74HCT138S16-13 handle high-speed data signals?
Yes, the 74HCT138S16-13 is capable of handling high-speed data signals, making it suitable for applications requiring rapid data processing.
5. What is the maximum output current capability of the 74HCT138S16-13 semiconductor?
The maximum output current capability of this semiconductor is approximately 4mA per output.
6. Does the 74HCT138S16-13 have built-in protection features?
Yes, it includes built-in diode protection to safeguard against damage from static electricity and transient voltage.
7. What is the typical power consumption of the 74HCT138S16-13 semiconductor?
The typical power consumption of this semiconductor is relatively low, making it energy-efficient for various applications.
8. Is the 74HCT138S16-13 available in different package types?
Yes, it is available in different package types such as SO16, TSSOP16, and DHVQFN16.
9. Can the 74HCT138S16-13 operate in harsh environmental conditions?
The 74HCT138S16-13 is designed to operate within standard industrial temperature ranges, making it suitable for a wide range of environmental conditions.
10. Are there any known common failure modes for the 74HCT138S16-13 semiconductor?
Common failure modes include overvoltage stress, excessive current loading, and exposure to extreme temperatures, so proper design considerations should be taken into account to mitigate these risks.
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