Power supply is an indispensable component of various electronic devices, and its performance is directly related to the technical indicators of electronic devices and whether they can work safely and reliably. Since the key components inside the switching power supply work in a high-frequency switching state, the power consumption is small, the conversion rate is high, and the volume and weight are only 20% to 30% of the linear power supply, it has become the mainstream product of voltage-stabilized power supply .
1. Composition of switching power supply
The switching power supply is generally composed of four parts: main circuit, control circuit, detection circuit, and auxiliary power supply (see figure)
1. Main circuit
Inrush current limiter: Limits the instantaneous inrush current on the input side when the power is turned on.
Input filter: Its function is to filter out the noise in the power grid and prevent the noise generated by the machine from being fed back to the power grid.
Rectification and filtering: directly rectify the grid AC power into smoother DC power.
Inversion: Converts rectified DC power into high-frequency AC power, which is the core part of high-frequency switching power supply.
Output rectification and filtering: Provide stable and reliable DC power supply according to load requirements.
2. Control circuit
On the one hand, samples are taken from the output end and compared with the set value, and then the inverter is controlled to change its pulse width or pulse frequency to stabilize the output. On the other hand, based on the data provided by the test circuit and identified by the protection circuit, the control circuit is provided with various protection measures for the power supply.
3. Detection circuit
Provide various parameters and instrument data in operation of the protection circuit.
4. Auxiliary power supply
Realize software (remote) startup of the power supply to provide power for the protection circuit and control circuit (PWM and other chips).
2. Working principle of switching power supply
The switching power supply uses power semiconductor devices as switching elements, and adjusts the output voltage by periodically switching on and off and controlling the duty cycle of the switching elements. The switching element is repeatedly turned on and off at a certain time interval. When the switch is turned on, the input power supply Vi provides energy to the load RL through the switch S and the filter circuit. When the switch S is turned off, the energy storage device in the circuit (the circuit composed of L1, C2, and diode D) releases the energy stored when the switch is turned on to the load RL, so that the load obtains continuous and stable energy.
VO=TON/T*Vi
VO is the average voltage across the load
TON is the time the switch is turned on each time
T is the on-off duty cycle of the switch
It can be seen from the formula that by changing the ratio of the switch on time and the duty cycle, the average voltage between VO will also change. Therefore, as the load and input power voltage change, the ratio of TON and T is automatically adjusted to keep the output voltage VO unchanged. Changing the ratio of the on time TON and the duty cycle is also called changing the duty cycle of the pulse. This method is called "Time Ration Control" (abbreviated as TRC).
According to the TRC control principle, there are three ways:
1. Pulse Width Modulation (PWM): The switching period is constant and the duty cycle is changed by changing the pulse width.
2. Pulse Frequency Modulation (PFM): The on-pulse width is constant and the duty cycle is changed by changing the switching operating frequency.
3. Mixed modulation: The on-pulse width and the switching operating frequency are not fixed, and both can be changed. It is a mixture of the above two methods.
Previous article:Design and implementation of power management circuits in embedded systems
Next article:Detailed explanation of low voltage isolated power supply output voltage regulation
- Popular Resources
- Popular amplifiers
- New Technologies and Equipment for Communication Power Supply Series High Frequency Switching Power Supply for Communication
- A 25mA 0.13μm CMOS LDO Regulator with Power- Supply Rejection Better...
- Switching Power Supply Design & Optimization
- Measuring 2nV/√Hz Noise and 120dB Power Supply Rejection on a Linear Regulator
- MathWorks and NXP Collaborate to Launch Model-Based Design Toolbox for Battery Management Systems
- STMicroelectronics' advanced galvanically isolated gate driver STGAP3S provides flexible protection for IGBTs and SiC MOSFETs
- New diaphragm-free solid-state lithium battery technology is launched: the distance between the positive and negative electrodes is less than 0.000001 meters
- [“Source” Observe the Autumn Series] Application and testing of the next generation of semiconductor gallium oxide device photodetectors
- 采用自主设计封装,绝缘电阻显著提高!ROHM开发出更高电压xEV系统的SiC肖特基势垒二极管
- Will GaN replace SiC? PI's disruptive 1700V InnoMux2 is here to demonstrate
- From Isolation to the Third and a Half Generation: Understanding Naxinwei's Gate Driver IC in One Article
- The appeal of 48 V technology: importance, benefits and key factors in system-level applications
- Important breakthrough in recycling of used lithium-ion batteries
- Innolux's intelligent steer-by-wire solution makes cars smarter and safer
- 8051 MCU - Parity Check
- How to efficiently balance the sensitivity of tactile sensing interfaces
- What should I do if the servo motor shakes? What causes the servo motor to shake quickly?
- 【Brushless Motor】Analysis of three-phase BLDC motor and sharing of two popular development boards
- Midea Industrial Technology's subsidiaries Clou Electronics and Hekang New Energy jointly appeared at the Munich Battery Energy Storage Exhibition and Solar Energy Exhibition
- Guoxin Sichen | Application of ferroelectric memory PB85RS2MC in power battery management, with a capacity of 2M
- Analysis of common faults of frequency converter
- In a head-on competition with Qualcomm, what kind of cockpit products has Intel come up with?
- Dalian Rongke's all-vanadium liquid flow battery energy storage equipment industrialization project has entered the sprint stage before production
- Allegro MicroSystems Introduces Advanced Magnetic and Inductive Position Sensing Solutions at Electronica 2024
- Car key in the left hand, liveness detection radar in the right hand, UWB is imperative for cars!
- After a decade of rapid development, domestic CIS has entered the market
- Aegis Dagger Battery + Thor EM-i Super Hybrid, Geely New Energy has thrown out two "king bombs"
- A brief discussion on functional safety - fault, error, and failure
- In the smart car 2.0 cycle, these core industry chains are facing major opportunities!
- The United States and Japan are developing new batteries. CATL faces challenges? How should China's new energy battery industry respond?
- Murata launches high-precision 6-axis inertial sensor for automobiles
- Ford patents pre-charge alarm to help save costs and respond to emergencies
- New real-time microcontroller system from Texas Instruments enables smarter processing in automotive and industrial applications
- Active RFID Design Based on MSP430 and CC1100
- I have a question about 7060 chip burning!
- Looking for a chip that drives multiple indicator lights
- Brief analysis of the application principles of common protective devices in security products
- In the LM5118 datasheet, Application and Implementation section, "Minimum load current (CCM operation) = 600mA", what does it mean?
- Autonomous low-power Tesla coil "Experimental"
- What medium is used to start the pins when they are all low level?
- Is ADI technology still here?
- Hot topic: 2019 College Entrance Examination: What impact will the arrival of the 5G era have on the college entrance examination and universities?
- 12/06 @Shanghai World Peace Group ADAS-NXP S32V in-depth technical seminar invites you to participate!