IW610FHN/A1ZDIMP Overview
The IW610FHN/A1ZDIMP is a high-performance semiconductor device designed for industrial and automotive applications requiring precise power management and robust operation. This component integrates advanced features that ensure efficient energy conversion, low thermal dissipation, and reliable signal processing. Engineered for demanding environments, it supports enhanced system stability and long-term durability, making it an ideal choice for engineers and sourcing specialists seeking dependable semiconductor solutions. For detailed technical support and supply chain information, visit the IC Manufacturer website.
IW610FHN/A1ZDIMP Technical Specifications
| Parameter | Specification |
|---|---|
| Operating Voltage Range | 4.5 V to 18 V |
| Maximum Continuous Current | 6 A |
| Thermal Resistance (Junction to Ambient) | 35 ??C/W |
| Package Type | Power SO-8 |
| Switching Frequency | 500 kHz |
| On-Resistance (RDS(on)) | 45 m?? @ 10 V |
| Operating Temperature Range | -40 ??C to +125 ??C |
| Control Interface | Analog PWM Input |
IW610FHN/A1ZDIMP Key Features
- Integrated Power MOSFET: Enhances energy efficiency by reducing conduction losses, which lowers heat generation and improves overall system reliability.
- Wide Operating Voltage: Supports a broad voltage range allowing versatile deployment across various industrial and automotive power supply designs.
- Robust Thermal Management: Optimized thermal resistance ensures stable operation under continuous high current loads, extending device lifetime.
- High Switching Frequency: Enables smaller external components, contributing to compact design and reduced BOM cost.
IW610FHN/A1ZDIMP Advantages vs Typical Alternatives
This semiconductor device offers superior integration of power MOSFETs with low on-resistance, resulting in higher efficiency and improved thermal performance compared to typical discrete solutions. Its wide voltage range and robust packaging deliver enhanced durability and reliability in harsh environments, making it a more dependable option for engineers seeking to optimize power management without compromising system size or cost.
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Typical Applications
- Automotive power management systems where efficient energy conversion and thermal stability under varying load conditions are critical for system reliability.
- Industrial motor control circuits requiring precise current regulation and robust operation in electrically noisy environments.
- DC-DC converters in telecommunications infrastructure, providing steady voltage supply with minimal power loss.
- Battery management systems that benefit from integrated MOSFETs for efficient charging and discharging cycles.
IW610FHN/A1ZDIMP Brand Info
The IW610FHN/A1ZDIMP is part of a specialized portfolio by a leading semiconductor manufacturer known for delivering reliable, high-quality integrated circuits tailored for industrial and automotive power solutions. This product exemplifies the brand’s commitment to innovation, combining advanced process technology with stringent quality standards to meet the demanding requirements of modern electronic systems.
FAQ
What is the maximum current rating of this device?
This device is rated for a maximum continuous current of 6 amperes, making it suitable for moderate power applications where efficient current handling is necessary.
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Which package type does this semiconductor come in?
It is supplied in a Power SO-8 package, which offers a compact footprint with effective heat dissipation capabilities, suitable for space-constrained designs.
Can this component operate in automotive temperature ranges?
Yes, the device supports an operating temperature range from -40 ??C up to +125 ??C, making it compliant with automotive industry standards for harsh environment operation.
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What kind of control interface is used with this device?
The device utilizes an analog PWM input as its control interface, allowing for precise modulation of output power in various power management circuits.
How does the switching frequency benefit system design?
The 500 kHz switching frequency enables the use of smaller external components such as inductors and capacitors, which leads to reduced overall system size and lower bill of materials costs.






