TOP100YN Power Integrations IC OFFLINE SWIT PWM OTP HV TO220

Интегральные схемы (ИС)     TO-220-3
Номер производителя:
TOP100YN
Производитель:
Описание:
IC OFFLINE SWIT PWM OTP HV TO220
Состояние RoHs:
Без свинца / в соответствии с RoHS
Таблицы данных:
Control Features :
-
Duty Cycle :
67%
Fault Protection :
Current Limiting, Over Temperature
Frequency - Switching :
100kHz
Internal Switch(s) :
Yes
Mounting Type :
Through Hole
Operating Temperature :
-40°C ~ 150°C (TJ)
Output Isolation :
Isolated
Package / Case :
TO-220-3
Packaging :
Tube
Part Status :
Obsolete
Power (Watts) :
30W
Series :
TOPSwitch®
Supplier Device Package :
TO-220-3
Topology :
Boost, Buck, Flyback, Forward
Voltage - Breakdown :
350V
Voltage - Start Up :
-
Voltage - Supply (Vcc/Vdd) :
-
в наличии
31,067
Unit Price:
Свяжитесь с нами Предложение
 

TOP100YN Конкурентные цены

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TOP100YN Особенности

TOP100YN is produced by Power Integrations, belongs to Преобразователи постоянного тока PMIC - AC, автономные коммутаторы, and its best working temperature is -40°C ~ 150°C (TJ), the size is TO-220-3, and Tube is its most common packaging method, which belongs to the TOPSwitch® series, using TO-220-3.
  

TOP100YN Подробная информация о продукции

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TOP100YN — это Преобразователи постоянного тока PMIC - AC, автономные коммутаторы, буферные усилители, разработанные и произведенные Power Integrations.
TOP100YN производства Power Integrations можно приобрести на сайте CHIPMLCC.
Здесь вы можете найти различные виды электронных деталей от ведущих производителей мира.
TOP100YN 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 TOP100YN (PDF), цена TOP100YN, Распиновка TOP100YN, руководство TOP100YN и решение на замену TOP100YN.
  

TOP100YN FAQ

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1. What is the difference between NPN and PNP transistors?
NPN and PNP transistors are both bipolar junction transistors, but they have opposite polarities. In an NPN transistor, current flows from the collector to the emitter when a small current is applied to the base, while in a PNP transistor, current flows from the emitter to the collector when a small current is applied to the base.

2. How does a diode work?
A diode is a semiconductor device that allows current to flow in only one direction. When a positive voltage is applied to the anode and a negative voltage to the cathode, the diode conducts and allows current to flow. When the polarity is reversed, the diode blocks the current flow.

3. What is the function of a voltage regulator?
A voltage regulator is used to maintain a constant output voltage in a circuit, regardless of changes in input voltage or load conditions. It ensures that the voltage supplied to the load remains within specified limits, providing stable and reliable operation.

4. What are the key differences between analog and digital circuits?
Analog circuits process continuous signals, while digital circuits process discrete signals represented by binary digits (0s and 1s). Analog circuits are sensitive to noise and require precise component values, whereas digital circuits are more immune to noise and can perform logical operations.

5. How does a MOSFET differ from a BJT?
MOSFETs (Metal-Oxide-Semiconductor Field-Effect Transistors) are voltage-controlled devices, while BJTs (Bipolar Junction Transistors) are current-controlled devices. MOSFETs have high input impedance and are suitable for high-frequency applications, whereas BJTs have low input impedance and are commonly used in low-frequency amplification.

6. What is the purpose of a Schottky diode?
A Schottky diode is known for its fast switching speed and low forward voltage drop. It is commonly used in high-frequency and high-speed applications, such as rectification, clamping, and RF detection.

7. How do you calculate the power dissipation in a semiconductor device?
The power dissipation in a semiconductor device can be calculated using the formula P = I^2 * R, where P is the power dissipation, I is the current flowing through the device, and R is the resistance of the device. Additionally, the power dissipation can be affected by the ambient temperature and thermal resistance of the device.

8. What is the significance of the bandgap energy in semiconductors?
The bandgap energy determines the electrical conductivity of a semiconductor material. A larger bandgap results in lower conductivity, making the material suitable for insulating or high-temperature applications. Conversely, a smaller bandgap leads to higher conductivity, making the material suitable for electronic and optoelectronic devices.

9. How does doping affect the behavior of a semiconductor?
Doping introduces impurities into a semiconductor to modify its electrical properties. N-type doping adds electrons to the semiconductor, increasing its conductivity, while P-type doping creates "holes" in the crystal lattice, leading to decreased conductivity. Doping is essential for creating p-n junctions and controlling the behavior of semiconductor devices.

10. What are the advantages of using gallium nitride (GaN) in power electronics?
Gallium nitride offers several advantages over traditional silicon-based power devices, including higher breakdown voltage, lower on-resistance, and faster switching speeds. These characteristics make GaN devices well-suited for high-efficiency power conversion applications, such as in electric vehicles, renewable energy systems, and telecommunications infrastructure.
  

TOP100YN Связанные ключевые слова

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Минимальный заказ: 1

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