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VIPER0PHDTR

In Stock 36726 pcs Reference Price(In US Dollars)
1+
$0.5293
Manufacturer Part Number:
VIPER0PHDTR
Manufacturer / Brand
STMicroelectronics
Part of Description:
IC OFFLINE SWITCH MULT TOP 16SO
Datasheets:
VIPER0PHDTR(1).pdfVIPER0PHDTR(2).pdfVIPER0PHDTR(3).pdfVIPER0PHDTR(4).pdf
Lead Free Status / RoHS Status:
ROHS3 Compliant
Stock Condition:
New original, 36726 pcs Stock Available.
ECAD Model:
Ship From:
Hong Kong
Shipment Way:
DHL/Fedex/TNT/UPS

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Part Number VIPER0PHDTR
Manufacturer / Brand STMicroelectronics
Stock Quantity 36726 pcs Stock
Category Integrated Circuits (ICs) > Power Management (PMIC) - AC DC Converters, Offline Switchers
Description IC OFFLINE SWITCH MULT TOP 16SO
Lead Free Status / RoHS Status: ROHS3 Compliant
Voltage - Supply (Vcc/Vdd) 4.5V ~ 30V
Voltage - Start Up 8 V
Voltage - Breakdown 800V
Topology Buck, Buck-Boost, Flyback
Supplier Device Package 16-SO
Series VIPer™ plus
Power (Watts) 12 W
Package / Case 16-SOIC (0.154', 3.90mm Width)
Package Tape & Reel (TR)
Output Isolation Either
Operating Temperature -40°C ~ 150°C (TJ)
Mounting Type Surface Mount
Internal Switch(s) Yes
Frequency - Switching 120kHz
Fault Protection Current Limiting, Over Load, Over Temperature, Short Circuit
Duty Cycle 80%
Control Features -
Base Product Number VIPER0

Packaging & ESD

Industry-standard static shielding packaging is used for electronic components.Anti-static, light-transparent materials allow easy identification of ICs and PCB assemblies.
The packaging structure provides electrostatic protection based on Faraday cage principles.This helps protect sensitive components from static discharge during handling and transportation.


All products are packed in ESD-safe anti-static packaging. Outer packaging labels include part number, brand, and quantity for clear identification. Goods are inspected prior to shipment to ensure proper condition and authenticity.

ESD protection is maintained throughout packing, handling, and global transportation. Secure packaging provides reliable sealing and resistance during transit. Additional cushioning materials are applied when required to protect sensitive components.

QC(Part Testing by IC Components)Quality Warranty

We can offer worldwide express delivery service, such as DHLor FedEx or TNT or UPS or other forwarder for shipment.

Global Shipment by DHL/FedEx/TNT/UPS

Shipping Fees reference DHL/FedEx
1). You can offer your express delivery account for shipment, ifyou haven’t any express account for shipment, we can offer our account inadvance.
2). Use our account for shipment, Shipment charges(Reference DHL/FedEx, Different Countries has different price.)
Shipment charges: (Reference DHL and FedEX)
Weight(KG): 0.00kg-1.00kg Price(USD$) : USD$60.00
Weight(KG): 1.00kg-2.00kg Price(USD$) : USD$80.00
* The price of cost is reference with DHL/FedEx. The detail charges, please contact us. Different country the express charges are different.



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VIPER0PHDTR Product Details:

The STMicroelectronics VIPER0PHDTR is a sophisticated power management integrated circuit (PMIC) designed for advanced offline switching applications, representing a versatile solution in the AC-DC converter technology landscape.

This high-performance IC is specifically engineered to address complex power conversion challenges across multiple topologies, including Buck, Buck-Boost, and Flyback configurations. Its remarkable design enables efficient power management with impressive operational capabilities, supporting a wide input voltage range of 4.5V to 30V and capable of delivering up to 12W of power output.

A standout feature of this integrated circuit is its robust fault protection mechanisms, which include comprehensive safeguards such as current limiting, overload protection, over-temperature monitoring, and short circuit prevention. These protective features ensure reliable and safe operation across demanding electronic environments.

The device operates with exceptional thermal resilience, functioning effectively across an extended temperature range from -40°C to 150°C, making it suitable for extreme industrial and automotive applications. Its 16-SOIC surface mount package facilitates easy integration into compact electronic designs, while maintaining high performance standards.

Key technical highlights include an 800V breakdown voltage, 120kHz switching frequency, and an 80% duty cycle, which collectively contribute to its superior power conversion efficiency. The internal switch technology and flexible voltage handling make it an ideal solution for diverse power supply designs.

Primary application areas encompass consumer electronics, industrial control systems, automotive electronics, and power supply units requiring robust, compact power management solutions. Its RoHS3 compliance further underscores its environmental compatibility and modern manufacturing standards.

Equivalent or alternative models in the VIPer Plus series might include similar STMicroelectronics variants like VIPER0HN, VIPER0LN, and VIPER0DN, which share comparable architectural principles but may offer slight variations in specific performance parameters.

VIPER0PHDTR Key Technical Attributes

Power: 12 W

Voltage - Breakdown: 800V

Frequency - Switching: 120kHz

VIPER0PHDTR Packing Size

The VIPER0PHDTR is supplied in an industry-standard 16-pin SOIC (Small Outline Integrated Circuit) package, measuring 3.90mm in width, specifically designed for surface mount applications to optimize space on printed circuit boards. The packaging type is Tape & Reel (TR), which ensures mechanical protection and supports automated assembly processes for medium to large quantity handling. This package maintains robust thermal characteristics, suitable for operation up to 150°C junction temperature, and is compliant with advanced RoHS3 environmental standards. The pin configuration is tailored for multifunctional use in power management, supporting various switching topologies with integrated isolation options and internal switch functionality.

VIPER0PHDTR Application

The VIPER0PHDTR is ideal for offline AC-DC power conversion solutions in consumer electronics, industrial controls, home appliances, and auxiliary power supplies. It efficiently supports multiple topologies, including buck, buck-boost, and flyback, enabling its deployment in diverse environments where space-saving and high performance are necessary. Its capacity to operate across a wide temperature range of -40°C to 150°C and handle supply voltages from 4.5V to 30V further broadens its usability in demanding power management scenarios.

VIPER0PHDTR Features

This IC integrates an advanced high-voltage start-up circuit and delivers up to 12W output power with 800V breakdown voltage, ensuring reliable operation even in harsh electrical environments. Its versatile design supports duty cycles up to 80%, allowing efficient regulation and control for switching modes. The part offers integrated current limiting, over-load, over-temperature, and short-circuit fault protection mechanisms, contributing to enhanced safety and longevity of end applications. Output isolation is selectable, allowing designers flexibility for a variety of power structures. The internal switch and optimized switching frequency of 120kHz provide high efficiency while minimizing electromagnetic interference. As a member of the VIPer plus series, it incorporates updates for improved energy efficiency, reduced standby power, and easy compliance with global energy regulations.

VIPER0PHDTR Quality and Safety Features

VIPER0PHDTR is RoHS3 Compliant, signifying the highest standards in environmental safety and hazardous component management. The device features comprehensive fault protection, including current limiting, overload, thermal shutdown, and short circuit defenses, helping to secure system integrity and protect downstream circuitry. Its robust operating temperature range and reliable switching behavior ensure consistent performance in mission-critical environments.

VIPER0PHDTR Compatibility

This power management IC is compatible with a wide spectrum of power supply architectures, supporting topologies such as buck, buck-boost, and flyback. Its standard 16-SOIC footprint and surface-mount design facilitate integration into existing PCB layouts with minimal reconfiguration. Designed for use with VIPer plus series products, it can be seamlessly incorporated into new or replacement designs aiming for energy-efficient and reliable offline switching.

VIPER0PHDTR Datasheet PDF

Customers are invited to access the most authoritative and updated datasheet for the VIPER0PHDTR directly from our website. We strongly recommend downloading the datasheet on the current product page to ensure you have the official technical documentation for precise design and implementation guidance.

Quality Distributor

IC-Components is a premium authorized distributor for STMicroelectronics products, including the VIPER0PHDTR. Trust in our commitment to quality and top-level service—request a quote or make your purchase with confidence on our website. Get the best value, verified inventory, and professional support by choosing IC-Components as your preferred sourcing partner.

Frequently Asked Questions

How do I determine if the VIPER0PHDTR is suitable for my application with a 12W power requirement and a wide input voltage range?
The VIPER0PHDTR supports up to 12W power output with an input voltage range of 4.5V to 30V. Ensure your application’s input supply remains within this range and that the load does not exceed 12W. Consider the topology (buck, buck-boost, flyback) for your specific energy conversion needs, and verify that the maximum switching frequency (120kHz) aligns with your EMI and layout constraints.
Can I replace a different offline switcher with VIPER0PHDTR in an existing design, and what are the key considerations?
Replacing with VIPER0PHDTR requires matching voltage, power, and topology requirements. Ensure the alternative component supports at least 800V breakdown voltage, similar or higher switching frequency, and comparable fault protection features (current limiting, over-temperature). Pay particular attention to package size, layout constraints, and thermal management, as differences may affect reliability and performance.
What are the critical thermal considerations when using the VIPER0PHDTR in a high-temperature environment up to 150°C TJ?
The VIPER0PHDTR is rated for operation up to 150°C TJ. Ensure adequate PCB copper area, proper heatsinking, and good thermal conduction paths. Avoid hotspots and verify that the PCB layout minimizes thermal stress points. Consider derating the component’s current if ambient conditions are near maximum operating temperature.
How does the internal switch architecture of the VIPER0PHDTR impact design decisions for EMI filtering?
The internal switch within the VIPER0PHDTR operates at 120kHz, which influences the design of input and output EMI filters. Implement snubbers or filter components tailored for switching noise at this frequency to meet electromagnetic compliance requirements and reduce conducted emissions without compromising efficiency.
What impact does the 80% duty cycle capability of VIPER0PHDTR have on the system efficiency and output voltage regulation?
An 80% duty cycle allows for a broader output voltage regulation range and improved efficiency at higher duty cycles, especially in buck configurations. Ensure your feedback loop compensates for this maximum duty cycle to prevent instability or saturation, and verify that your output voltage remains stable under varying load conditions.
When designing a power supply using VIPER0PHDTR, what should I consider regarding start-up voltage and soft-start implementation?
The minimum start-up voltage is 8V; design your input supply to reliably reach this level under all operating conditions. Incorporate soft-start circuitry to prevent surge currents during startup, which can stress the device and downstream components. Use the device’s fault protection features to enhance reliability during power-up sequences.
What are the key differences between VIPER0PHDTR and other similar features from different manufacturers that I should weigh during component selection?
Consider factors like voltage ratings (800V breakdown), fault protection (current limiting, over-temperature), switching frequency, package type, and temperature range. VIPER0PHDTR offers a compact 16-SO package, RoHS3 compliance, and robust fault protections, which may differ from alternative brands. Evaluate the long-term reliability, thermal performance, and compatibility with your design’s layout when making a choice.
How suitable is the VIPER0PHDTR for applications requiring galvanic isolation, and what are the recommendations?
The VIPER0PHDTR provides output isolation properties, suitable for isolated power supplies. For specific galvanic isolation requirements, verify the isolation voltage specifications in datasheets and include proper creepage and clearance distances in your PCB layout. For high-isolation demands, consider additional isolation barriers or opt for dedicated isolated modules.
Are there any special considerations when operating the VIPER0PHDTR at extreme temperatures, especially near -40°C or 150°C TJ?
The device is rated for -40°C to 150°C TJ; however, performance parameters such as switching characteristics and fault protection thresholds may shift at temperature extremes. Implement tight component tolerances, ensure proper thermal management, and validate the design across the entire temperature range during testing to ensure consistent operation.
How does the use of the Tape & Reel (TR) packaging influence manufacturing integration for the VIPER0PHDTR?
Tape & Reel packaging facilitates high-volume automated assembly processes, ensuring consistent component placement. Verify your pick-and-place equipment compatibility with 16-SO tape dimensions, and plan for handling static sensitive devices (ESD precautions). Proper reel storage and handling are essential to maintain component integrity during production.
Can I operate the VIPER0PHDTR at the maximum switching frequency of 120kHz in a noisy industrial environment?
Yes, but it requires careful PCB layout, proper filtering, and shielding to mitigate electromagnetic interference. Ensure that your layout minimizes parasitic inductances and that filtering components are correctly selected for this frequency to maintain stable operation and compliance with electromagnetic compatibility (EMC) standards.
What are the main trade-offs when choosing a power supply topology (buck, buck-boost, flyback) with VIPER0PHDTR?
Each topology offers different advantages and constraints. Buck topology provides simplicity and high efficiency for step-down applications. Buck-boost extends the voltage range to both step-up and step-down scenarios but may introduce more complexity and EMI considerations. Flyback topology offers galvanic isolation and is suitable for multiple outputs but can be less efficient and more EMI-sensitive. Choose based on your voltage range, isolation needs, and efficiency targets.
How long-term reliability and fault tolerance are guaranteed when using VIPER0PHDTR in industrial applications?
The VIPER0PHDTR features comprehensive fault protections such as current limiting, over-temperature, overload, and short circuit protections, ensuring robustness in harsh conditions. Ensure proper thermal management, input voltage margins, and adherence to recommended operating conditions for long-term reliability and to prevent device failure under continuous industrial use.
Are there specific layout best practices I should follow when integrating VIPER0PHDTR for optimal performance?
Yes, keep the high-current paths short and wide, implement proper grounding and filtering techniques, and place snubber or EMI components close to the IC. Maintain appropriate clearances in the layout for isolation and thermal dissipation, and follow the manufacturer’s recommended PCB layout guidelines to maximize efficiency and minimize noise.
How does the VIPER0PHDTR handle transient voltage spikes on the input supply, and what protective measures should I incorporate?
The device supports an 800V breakdown voltage, offering some robustness against transients. However, it’s advisable to include input TVS diodes or varistors, along with appropriate filtering components, to clamp voltage spikes and safeguard the IC. Proper layout and filtering are critical to prevent transient-induced stress and ensure stable operation.

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