Control loop analysis

Control loop analysis

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Bode plots and frequency response analysis

The power supply of an electronic device must maintain a constant output level, even under varying load. To achieve this, the power supply relies on a closed control loop that continuously monitors the output and provides near-instantaneous feedback. This feedback enables the system to rapidly respond to load changes while avoiding excessive oscillations. As such, the accuracy and speed of the feedback mechanism are critical to control loop performance.

In modern electronics, switch-mode power supplies (SMPS) are the most frequently used due to their compact size, low weight, high efficiency and cost effectiveness, as well as their ability to operate across a wide range of input voltages. Control loop analysis is necessary to ensure that an SMPS operates correctly under varying conditions, including changes in load current, input voltage, temperature and switching frequency.

Control loop analysis involves injecting a known stimulus signal into the loop and measuring how the system responds in terms of gain and phase shift across a range of frequencies. A Bode plot provides insights into both the dynamic performance and stability of the control loop. It simultaneously represents gain (in decibels) and phase shift (in degrees) as functions of frequency.

A Bode plot is a dual-graph chart that visualizes how a system alters the strength and timing of signals across a frequency spectrum. The gain crossover frequency (where the system’s gain drops to 1, or 0 dB) measures how fast the control loop responds. Generally, a higher crossover frequency makes the system faster but less stable. This stability is measured by the phase margin at that exact crossover point. Designers must balance these two metrics to achieve a control loop that is both fast enough to meet performance targets and stable enough to prevent oscillation.

Bode plot

Your control loop analysis challenges

A key challenge in control loop analysis is choosing the right injection level. If the injection level is too low, the measured response can become noisy, especially at low frequencies where loop gain is high. If the injection level is too high, it can disturb sensitive control loops, causing nonlinear behavior and incorrect results.

Other challenges include:

  • Optimizing injection level across frequency: A static injection level rarely works. Typically, a higher injection level is necessary for lower frequencies to overcome loop rejection, while a lower injection level is needed for higher frequencies to prevent distortion.
  • Maintaining high sensitivity and low signal-to-noise ratio (SNR): For small signal analysis in the millivolt range, probes must feature a very low noise floor. This requires a measurement instrument with high resolution and adequate filtering to maximize the SNR.
  • Avoiding loop loading: To ensure the measurement does not alter the native loop behavior, the injection point needs to be carefully chosen such that the impedance in the forward direction is significantly larger than in the backward direction.

High-performance solutions for control loop analysis

Rohde & Schwarz oscilloscopes are excellent instruments for control loop analysis. By combining frequency response analysis (FRA) with time-domain waveform visibility, our oscilloscopes allow engineers to correlate loop stability directly with switching behavior correlation on a single measurement platform.

The MXO oscilloscopes offer an advanced FRA option that characterizes the frequency response, control loop stability and power supply rejection ratio (PSRR). These oscilloscopes integrate single-frequency testing, user-defined measurement delays and amplitude profile control for the injection signal. This enables them to handle complex testing environments.

Frequency Response Analysis

Benefits of our control loop analysis solutions

  • Good performance-cost balance: General-purpose bench oscilloscopes deliver the necessary precision for most frequency-response measurements a fraction of cost of specialized alternatives.
  • Wide frequency range coverage: Our oscilloscopes span the critical testing from near DC to few MHz, perfectly matching the requirements for thorough control loop analysis.
  • Real-time waveform display: Beyond displaying gain and phase plots, our oscilloscopes show the live waveform at each frequency step. This allows engineers to instantly detect signal distortion or clipping that could invalidate measurement data.
  • Global expert support: Access our global network of application engineers for expert technical guidance, no matter where your design team is located.

Discuss your control loop test cases with our experts.

FAQs for control loop analysis

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