AC-DC|Evaluation
Critical checkpoint: Aluminum electrolytic capacitors
2017.07.06
Points of this article
・Aluminum electrolytic capacitors should be selected with particular attention paid to the lifetime.
・The lifetime of an aluminum electrolytic capacitor is shortened dramatically at higher temperatures; in general, the "10-degree rule" for halving of the lifetime applies.
・Capacitance loss due to degradation is highly likely to cause malfunctions in circuit operation.
We have explained that in addition to the specifications, the following “Critical checkpoints” should be examined when evaluating the performance of an isolated flyback converter. This time, we will consider the last of these checkpoints, “Electrolytic capacitors”.
- MOSFET VDS and IDS, and rated voltage of output rectifier diode
- Transformer saturation
- Vccvoltage
- Output transient response and rising output voltage waveform
- Measuring temperature and loss
- Electrolytic capacitor
Lately, electrolytic capacitors have come to include tantalum and functional polymer electrolytic capacitors, in addition to aluminum electrolytic capacitors. In this discussion, however, we shall essentially focus on aluminum electrolytic capacitors, which remain the most standard type. Aluminum electrolytic capacitors are comparatively cheap and can attain high capacitances, and so should be thought of as the default choice for the input/output bulk capacitors used in AC-DC converters in particular. For this reason, often Aluminum electrolytic capacitors are used without too much detailed study, but here we mention some matters that require attention.
Aluminum Electrolytic Capacitors Require an Awareness of Service Lifetime
All components have a lifetime, but in the case of ICs and other semiconductor components, for example, excluding ramdom failures, their anticipated lifetimes are sufficiently long that they will outlast the useful life of the equipment without requiring any special consideration. However, in general aluminum electrolytic capacitors have relatively short lifetimes, and there is the possibility of performance degradation as a consequence of ageing in an operating power supply.
The lifetime of aluminum electrolytic capacitors is shortened considerably at higher temperatures. In general, they conform to the Arrhenius rule, also known as the “10-degree rule”. That is, for every 10°C increase in temperature, the coefficient of ageing acceleration is doubled, which means the lifetime is halved. Of course this also means that, conversely, if the temperature can be lowered by 10°C, the lifetime is doubled (actual lifetime calculations for separate components should be performed according to equations or the like provided by the capacitor manufacturer).
If a ripple current flows in a capacitor, heat generation occurs due to losses caused by the internal impedance. Aluminum electrolytic capacitors have a comparatively high ESR, and it is important to recognize that should a large ripple current flow, the resulting heat generation would be substantial.
For example, if an aluminum electrolytic capacitor with a predicted lifetime of “2000 hours at 105°C” could be used at 75°C, then the predicted lifetime would be extended to 16,000 hours, but if the temperature is 95°C, a lifetime of 4000 hours would need to be assumed. And from such predicted lifetimes it should be clear that they have dramatically shorter lifetimes than do ICs or other components.
When an Aluminum Electrolytic Capacitor Deteriorates
So, what happens when an aluminum electrolytic capacitor degrades as it reaches its lifetime? In essence, its electrostatic capacitance decreases. This phenomenon may be called liquid leakage or capacitance loss. When the capacitance decreases, the power supply circuit cannot obtain the capacitance it would need to function normally, and so the following issues occur, and problems appear in the operation of devices being fed by the power supply.
- In the case of an input capacitor ⇒ Rise in ripple voltage, reduced retention time (because only a small amount of charge can be stored)
- In the case of an output capacitor ⇒ Rise in ripple voltage, reduced stability of output control loop (response is affected)

Points to be Noted
The essential point is to keep the capacitor temperature as low as possible. The following should be memorized as basic principles.
- Check the rated ripple current for capacitors that are to be used, and select only capacitors with ratings that are sufficiently higher than any ripple currents in the circuit.
- During evaluations, check the actual ripple current, as in the graph on the right.
- Similarly, thoroughly confirm the capacitor temperature and predict its lifetime.
- Depending on the conditions, perform derating, distance the capacitor from heat-generating sources, or take other measures to lower the temperature even a little bit.
- Perform a lifetime prediction, and based on the result, display the predicted lifetime and perform maintenance, including preventive maintenance.
We have described various points to be noted pertaining to aluminum electrolytic capacitors. This information may already be well known to designers of power supplies, but one hears of cases in which these matters are taken into consideration when selecting components in the design stage, but upon mass production a changeover is made to a general-purpose aluminum electrolytic capacitor with the same capacitance value, so that problems arise in actual use. Even components one is familiar with often have aspects that demand attention, as we have seen in the above.
【Download Documents】 Isolated Flyback Converters: Performance Evaluation and Checkpoints
This handbook explains how to evaluate the performance of isolated flyback type AC-DC converters using power supply ICs, with examples of actual measurement data. Important checkpoints are also explained.
AC-DC
Basic
- AC-DC Basics
- DC-DC Conversion (Regulated) System after Smoothing
- Design Procedure for AC-DC Conversion Circuits (Overview)
- Issues and considerations in AC-DC Conversion Circuit Design
- Summary
- Extra Plus Basic Knowledge
Design
-
Overview of Design Method of PWM AC-DC Flyback Converters
- Isolated Flyback Converter Basics: Flyback Converter Operation and Snubber
- Isolated Flyback Converter Basics: What are Discontinuous Mode and Continuous Mode?
- Want are Isolated Flyhback Convertors?
- Design Procedure
- Isolated Flyback Converter Basics: What is Switching AC-DC Conversion?
- Determining Power Supply Specifications
- Designing Isolated Flyback Converter Circuits
- Isolated Flyback Converter Basics: What are Characteristics of Flyback Converter?
- Designing Isolated Flyback Converter Circuits: Transformer Design (Calculating numerical values)
- Choosing an IC for Design
- Designing Isolated Flyback Converter Circuits: Transformer Design (Structural Design) – 1
- Designing Isolated Flyback Converter Circuits: Transformer Design (Structural Design) – 2
- Designing Isolated Flyback Converter Circuits: Selecting Critical Components ? MOSFET related – 1
- Designing Isolated Flyback Converter Circuits: Selecting Critical Components ? MOSFET related – 2
- Designing Isolated Flyback Converter Circuits: Selecting Critical Components ? CIN and Snubber
- Designing Isolated Flyback Converter Circuits: Selecting Critical Components ? Output Rectifier and Cout
- Designing Isolated Flyback Converter Circuits: Selecting Critical Components ? VCC of IC
- Designing Isolated Flyback Converter Circuits: Selecting Critical Components – IC Settings Etc.
- Designing Isolated Flyback Converter Circuits: Addressing EMI and Output Noise
- Example Board Layout
- Summary
-
Overview of Design Examples of AC-DC Non-isolated Buck Converters
- What are Buck Converters? – Basic Operation and Discontinuous Mode vs. Continuous Mode
- Selection of Power Supply ICs and Design Examples
- Selecting Critical Components: Input Capacitor C1 and VCC Capacitor C2
- Selecting Critical Components: Inductor L1
- Selecting Critical Components: Current Sense Resistor R1
- Selecting Critical Components: Output Capacitor C5
- Selecting Critical Components: Output Rectifying Diode D4
- EMI Countermeasures
- Board Layout and Summary
-
Introduction
- Design Procedure
- IC Used in Design
- Power Supply Specifications and Replacement Circuit
- Synchronous Rectifying Circuit Section: Selection of Synchronous Rectifying MOSFET
- Synchronous Rectification Circuit Section: Power Supply IC Selection
- Troubleshooting ①: Case When Secondary-Side MOSFET Suddenly Turns OFF
- Synchronous Rectification Circuit Section: Selection of Peripheral Circuit Components-C1, R3 at MAX_TON Pin, and VCC Pin
- Troubleshooting ②: Case When Secondary-Side MOSFET Turns On Due to Resonance Under Light Loading
- Troubleshooting ③: Case When, Due to Surge, VDS2 Rises to Above Secondary-Side MOSFET VDS Voltage
- Comparison of Efficiency of Diode Rectification and Synchronous Rectification
- Points to Note Relating to PCB Layout
- Summary
- Synchronous Rectification Circuit Section: Selection of Peripheral Circuit Components-D1, R1, R2 at DRAIN Pin
- Shunt Regulator Circuit Section: Selection of Peripheral Circuit Components
-
Introduction
- Power Supply ICs Used in Design: Optimized for SiC MOSFETs
- Design Example Circuit
- Transformer T1 Design – 1
- Transformer T1 Design – 2
- Selecting Critical Components: MOSFET Q1
- Selecting Critical Components: Input Capacitor and Balancing Resistor
- Selecting Critical Components: Switch Setting Resistors for Overload Protection Points
- Selecting Critical Components: VCC-Related Components of Power Supply ICs
- Selecting Critical Components: Components Related to Power Supply IC BO (Brownout) Pins
- Selecting Critical Components: Components Related to Snubber Circuits
- Selecting Critical Components: MOSFET Gate Drive Adjustment Circuit
- Selecting Critical Components: Output Rectifying Diode
- Selecting Critical Components: Output Capacitors, Output Setting and Control Components
- Selecting Critical Components: Current Sense Resistors and Components Related to Detection Pins
- Selecting Critical Components: Components for Dealing with EMI and Output Noise
- PCB Layout Example
- Example Circuit and Component List
- Evaluation Results: Efficiency and Switching Waveform
- Summary
Evaluation
-
What are Isolated Flyback Converters Performance Evaluation and Checkpoints?
- Overview and important features of a power supply IC used in example performance evaluation
- Design goals and circuits in performance evaluation
- Performance evaluation using an evaluation board: Measurement method and results
- Critical checkpoint: Output transient response and rising output voltage waveform
- Critical checkpoint: Measuring temperature and loss
- Critical checkpoint: Aluminum electrolytic capacitors
- Summary
- Critical checkpoint: Transformer saturation
- Critical checkpoint: MOSFET VDS and IDS, and rated voltage of output rectifier diode
- Critical checkpoint: Vcc voltage
Product Information
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