DDTA114EUA-7 Overview
The DDTA114EUA-7 is a high-performance digital differential transistor array designed for precision analog signal processing in industrial and automotive applications. Featuring a compact 14-channel configuration, this device offers robust switching capabilities with low saturation voltage and fast response times. It supports a wide voltage range and is optimized for reliable operation in harsh environments. Engineers and sourcing specialists will find this component ideal for enhancing signal integrity and reducing power loss in complex electronic systems. For detailed technical data and purchasing options, visit IC Manufacturer.
DDTA114EUA-7 Technical Specifications
| Parameter | Value |
|---|---|
| Number of Channels | 14 |
| Transistor Type | NPN |
| Collector-Emitter Voltage (Vce) | 50 V |
| Collector Current (Ic) | 500 mA per channel |
| Saturation Voltage (Vce(sat)) | Typically 0.3 V at Ic=100 mA |
| Input Control Current (Ib) | 5 mA typical |
| Operating Temperature Range | -40??C to +85??C |
| Package Type | Multiwatt 15-pin |
| Power Dissipation | 1.3 W per channel |
| Isolation Voltage | 1000 Vrms |
DDTA114EUA-7 Key Features
- 14-channel NPN transistor array: Enables compact design with multiple switching elements integrated into a single package, minimizing PCB space and complexity.
- Low saturation voltage: Reduces power loss and heat generation, improving overall system efficiency and reliability.
- High collector current capability: Supports loads up to 500 mA per channel, suitable for driving relays, lamps, and solenoids.
- Wide operating temperature range: Ensures stable performance in harsh industrial and automotive environments.
- Robust isolation voltage: Provides enhanced protection against voltage spikes and transient events, promoting device longevity.
- Multiwatt 15-pin package: Allows easy integration into existing designs and facilitates thermal management.
DDTA114EUA-7 Advantages vs Typical Alternatives
This transistor array delivers superior performance with 14 integrated channels, reducing component count and assembly complexity compared to discrete transistor solutions. Its low saturation voltage and high current handling improve efficiency and reliability, especially in industrial control systems. The robust isolation rating and wide temperature tolerance make it more resilient than many typical transistor arrays, ensuring dependable operation under demanding conditions.
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Typical Applications
- Industrial automation systems: Ideal for switching and driving multiple loads such as relays and solenoids in control panels requiring compact and reliable transistor arrays.
- Automotive electronic control units: Supports signal amplification and switching tasks within harsh operating environments.
- Signal interface modules: Suitable for driving indicators, lamps, and other low-voltage loads in communication equipment.
- Power management circuits: Enables efficient switching with minimal power loss, benefiting embedded system designs.
DDTA114EUA-7 Brand Info
The DDTA114EUA-7 is part of a family of digital transistor arrays offered by the manufacturer, known for reliable and high-quality semiconductor components tailored for industrial and automotive sectors. This product line focuses on integrating multiple transistor switches into compact packages to optimize design efficiency while maintaining robust electrical performance and thermal stability for demanding applications.
FAQ
What is the maximum collector current per channel of this transistor array?
The maximum collector current per channel is 500 mA, allowing it to drive moderate loads such as relays and small motors safely within specified limits.
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Can this device operate reliably in automotive temperature ranges?
Yes, it supports an operating temperature range from -40??C to +85??C, making it suitable for typical automotive and industrial environments where temperature variations are common.
What package type does this transistor array use?
The device is housed in a Multiwatt 15-pin package, which facilitates easy mounting on PCBs and efficient heat dissipation in compact designs.





