PS-D4C30 Overview
The PS-D4C30 is a high-performance semiconductor device designed to deliver precise control and reliable operation in demanding industrial environments. Engineered for robustness and efficiency, it integrates advanced features that support consistent performance across a broad range of applications. Its optimized electrical characteristics enable efficient energy management and enhanced signal integrity, making it a preferred choice for engineers and sourcing specialists seeking dependable components. This product is ideal for systems requiring durable and accurate semiconductor solutions. For detailed product information and support, visit IC Manufacturer.
PS-D4C30 Technical Specifications
| Parameter | Specification |
|---|---|
| Package Type | Surface Mount Device (SMD) |
| Operating Voltage | 3.0 V to 3.6 V |
| Operating Temperature Range | -40??C to +85??C |
| Maximum Power Dissipation | 1.2 W |
| Input Impedance | High Impedance (??1 M??) |
| Output Current | Up to 30 mA |
| Signal Frequency Range | DC to 100 kHz |
| Pin Count | 4 Pins |
PS-D4C30 Key Features
- Compact 4-pin SMD package: Enables easy integration into compact PCB layouts, saving valuable board space without sacrificing performance.
- Wide operating temperature range: Ensures reliable function in harsh industrial environments, supporting extended equipment lifespan.
- Low power dissipation: Enhances energy efficiency, reducing thermal stress and improving system reliability.
- High input impedance: Minimizes loading effects on preceding circuitry, maintaining signal accuracy and integrity.
PS-D4C30 Advantages vs Typical Alternatives
This device offers superior reliability and energy efficiency compared to standard semiconductor components. Its broad operating temperature range and low power dissipation make it well-suited for industrial applications requiring stable and accurate performance. The compact 4-pin SMD package facilitates easier system integration, while its high input impedance ensures minimal signal distortion, providing clear advantages over alternatives lacking these optimized specifications.
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Typical Applications
- Industrial control systems where precise signal processing and robust temperature tolerance are essential for continuous operation under variable environmental conditions.
- Power management modules requiring low power dissipation to maintain system efficiency and thermal stability.
- Automated manufacturing equipment that demands compact components capable of withstanding mechanical and thermal stress.
- Sensor interface circuits where high input impedance is critical to preserve measurement accuracy.
PS-D4C30 Brand Info
The PS-D4C30 is part of a trusted product line engineered by a leading semiconductor manufacturer renowned for quality and innovation. This device exemplifies the brand??s commitment to delivering high-precision, reliable components tailored to meet the stringent demands of industrial electronics. Designed with rigorous quality standards, it supports engineers and sourcing specialists in building resilient and efficient systems.
FAQ
What is the maximum operating voltage for the PS-D4C30?
The maximum operating voltage for this device is specified between 3.0 V and 3.6 V. Operating within this voltage range ensures optimal performance and longevity of the component in various applications.
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Can the PS-D4C30 function reliably in extreme temperature conditions?
Yes, the device is designed to operate reliably within a temperature range of -40??C to +85??C. This wide range supports stable functionality in harsh industrial environments and outdoor applications.
How does the power dissipation affect system design when using this product?
With a maximum power dissipation of 1.2 W, the component contributes to efficient thermal management in systems. This reduces the need for extensive cooling solutions and enhances overall device reliability.
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What advantages does the high input impedance provide in circuit design?
The high input impedance (??1 M??) minimizes loading on preceding circuitry, preserving signal integrity and accuracy. This is especially beneficial in sensitive analog and sensor interface applications.




