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LM5117 Circuit: Step Down DC Switching Power Supply

  • Contents

I Description

What is LM5117? LM5117 is a synchronous step-down controller produced by TI. It is widely used in communications and automotive electronics. It can be used as a core control device for low-voltage and high-power DC stabilized power supplies with high stability and anti-interference. In this bolg, we introduces the design process of a 5V/3A step-down DC switching power supply with LM5117 chip that has the features of high efficiency and low ripple.

In this blog, the specific method of circuit parameter design and debugging process is given, which is of great help for you to learn the design of DC switching power supply.

lm5117

Catalog

I Description

II Introduction

III Synchronous Step-down Circuit Design

3.1 Design Goal and Block Diagram

3.2 Main Circuit Design

3.3 Control Circuit Design

3.4 Design of Inductance

3.5 Design of Current Sampling Resistor

IV Test Results

V Conclusion

Ordering & Quantity

II Introduction

What are the advantages of DC-DC converter? As a secondary power supply, DC-DC converters have the advantages of small size, light weight, high efficiency, and cost-effective, and have been widely used in machinery, communications, automobiles and other fields.

And why do we choose LM5117 as the core device circuit? That is because, the circuit designed with LM5117 as the core device has the characteristics of stable operation, high efficiency and low output ripple, that reduces the overall loss of the low-voltage working circuit. In addition, the value of LM3117 is that, LM5117 can also be used in step-up and step-down low-voltage high-power DC regulated power supplies, which is of great significance to the development of automotive electronics.

III Synchronous Step-down Circuit Design

3.1 Design Goal and Block Diagram

Our design goal here, is to build a step-down DC switching power supply:

  • Input voltage: 16 V
  • Output voltage: 5 V
  • Maximum output current: 3 A
  • Conversion efficiency: over 85%
  • Output voltage ripple factor: less than 50 mV
  • When the output current Io changes from full load Iomax to light load 0.2 Iomax, the load regulation rate is less than 5%.

 synchronous step down circuit design

 Figure 1. Block Diagram

As shown in Figure 1, the composition of the switching power supply circuit is as follows:

  • A switch main circuit
  • An input and output filter circuit
  • APWM wave control circuit
  • Acurrent and voltage feedback circuit
  • Switch circuit uses the classic buck step-down circuit model
  • PWM wave control circuit is composed of LM5117
  • Output filter circuit is composed of a π-type filter circuit

3.2 Main Circuit Design

synchronous step down main circuit

Figure 2. Main Circuit

As shown in Figure 2, the composition of the main circuit as follows:

  • Capacitors C1~C4
  • Inductors L1~L2
  • Switching tubes Q1~Q2
  • Sampling resistor R1

Among them, C1 and C2 constitute the input filter circuit, L1 has the function of energy storage and wave smoothing, and C3, C4 and L2 constitute the π-type filter circuit, which is beneficial to reduce the output voltage ripple.

3.3 Control Circuit Design

As shown in Figure 3, the circuit switching frequency is programmed by R11 (that is, RT resistance). At 230 KHz, the product design is small in size and high in efficiency, which is a compromise solution. When the switching frequency is set to 230 KHz, RT=21.6 K is obtained from the relationship between the switching frequency and RT resistance, and the standard value of 20 K is selected for RT.

In terms of voltage feedback, it is formed by connecting VR1 and R10 in series, collecting the output voltage to the FB pin in real time, and comparing with the reference voltage (0.8 V) inside the LM5117 chip to adjust the output PWM width, so that the output voltage reaches a stable value.

What about the current detection feedback? We have adopted the method of series sampling resistor. The R7 resistor is connected to the high side of the current detection resistor. The high side voltage signal is proportional to the current. It is transmitted to the CS pin and amplified by the amplifier, and then compared with the error amplifier voltage to adjust the output pulse width to achieve the purpose of controlling the output current peak value.

lm5117

Figure 3. Control Circuit

3.4 Design of Inductance

The inductance value is calculated by formula (1) to obtain 13 μH. In the following formula, we take the inductance as the standard value of 10 μH

In the above formula:

  • VOUT is the nominal output voltage
  • IPP (MAX) is the maximum ripple current
  • fSW is the switching frequency
  • VIN (MAX) is the maximum input voltage.

3.5 Design of Current Sampling Resistor

In order to obtain the required output power, we should select the appropriate resistance value of the current sampling resistor Rs. But...What if we don’t?

Too high?  The required output power will not be achieved; 

Too low?  Excessive peak current will be cuased, large circuit loss, and possible damage to the components.

In the above formula:

  • IOUT(MAX)is the maximum output current capability, which is 130% of 3 A;
  • K is the relationship coefficient between RRAMP and CRAMP that simulates the positive efficiency inductor current ramp.(Here, we select k=1, just aiming to control the sub-harmonic oscillation and realize the single Cycle damping )
  • IPP is the peak-to-peak ripple current value of the inductor.

 

Calculated by formula (3), we can learn that the inductor peak-to-peak ripple current value at the minimum input voltage is 1.37 A.

Calculated by formula (4), we can learn that the magnitude of the sampling resistor is 9.3 mΩ, and the constantan wire of 10 mΩ is actually used in the design.

IV Test Results

  • Input voltage: 0 V
  • Output voltage is 5.02 V when the output is loaded with 1.65 Ω
  • Input current: 12 A
  • Circuit efficiency: 2%
  • When the load becomes 8.3 Ω, the output current is 0.61 A, and the test load adjustment rate is 1%.

Figure 4 below shows the driving waveform of the switch tube:

The two columns of waveforms are complementary, and the dead time is adaptive. The high-side drive waveform is shown in the first waveform, and the low-side drive waveform is shown in the second waveform. Due to the bootstrap circuit, the high-side drive waveform voltage is greater than the low-side drive voltage.

  

Figure 4. Driving Waveform

V Conclusion

From the experimental test data and waveform, we can infer that the output voltage, power efficiency, load regulation rate, and voltage ripple of this circuit design all meet the design requirements!

Consequently, we can conclude from the above analysis that switching regulated power supply with LM5117 as the core device has the features of stable operation, high efficiency and low ripple, and this is the reason why LM5117 has been widely used in the field of automotive electronics.

 

After reading the blog, have you better understand LM5117? 

Finally, if you have any questions about LM5117, please do not hesitate to leave a message in the comment section below!

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