Method for operating a converter with time-dependent PWM frequency
By dynamically varying PWM frequencies based on load and thermal conditions, the method addresses noise and vibration issues in PWM inverter systems, achieving reduced noise and lower switching losses.
Patent Information
- Application Number
- DE102007003737
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2006-02-14
- Filing Date
- 2007-01-25
- Publication Date
- 2026-01-22
- Estimated Expiration
- 2027-01-25
AI Technical Summary
Existing pulse-width modulated (PWM) inverter systems generate significant noise and vibration due to fixed PWM frequencies, leading to unpleasant noise emissions and increased switching losses.
The method involves varying the PWM frequency over time between a lower and upper frequency, with the frequencies being spaced apart by at least 20% of the center frequency, and adjusting these frequencies based on load and thermal conditions to minimize noise and switching losses.
This approach reduces noise perception by distributing sound over a wide frequency band, minimizing switching losses and reducing mechanical stress, resulting in a more pleasant and quieter operation.
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Abstract
Description
[0001] The invention relates to a method for operating a converter with a time-dependent PWM frequency.
[0002] A method for current measurement in inverters is known from DE 102 48 375 C2. The current values measured at the pulse width modulation frequency (PWM frequency) are used to control the speed and / or torque of the electric motor supplied by the inverter.
[0003] From the Fig. 5 to Fig. It is clear that one current value can be recorded per PWM period. In some applications, it is sufficient to record only one current value every second, third, or fourth PWM period.
[0004] The PWM frequency is, for example, 4 kHz. At this frequency, the inverter's control characteristics are good and switching losses are low. However, components of the system in which the inverter is installed always exhibit different vibration modes. It is possible that a constant partial energy flow may enter one or more of these modes, resulting in large vibration amplitudes within those modes. These amplitudes, among other things, also lead to significant noise emission.
[0005] Instead of a PWM frequency of 4 kHz, other frequencies such as 8 kHz or 16 kHz are also common. However, the switching losses of the power semiconductors are higher in these cases.
[0006] A switching power supply is known from JP 2002-34 240 A.
[0007] US Patent 6,107,776 A discloses a pulse-width modulated inverter that powers an electric motor.
[0008] EP 0 483 894 A1 also discloses a pulse-width modulated inverter that powers an electric motor.
[0009] From DE 39 12 706 A1 a method for the low-noise operation of a machine powered by a pulse inverter is known.
[0010] A modulation method for noise reduction in frequency converters is known from DE 196 51 281 A1.
[0011] Pulse-width modulated inverters are known from US 4,691,269 A.
[0012] The invention is therefore based on the objective of achieving lower and / or more pleasant noise emissions from electrical appliances.
[0013] According to the invention, the problem is solved in the method according to the features specified in claim 1.
[0014] Important features of the invention in the method are that it is designed to operate an electrical device, comprising pulse-width modulated power electronics, wherein the PWM frequency is changed depending on the time.
[0015] The advantage here is that the noise emission is lower and more pleasant than when using only one frequency. Furthermore, switching losses are low. In particular, this allows for lower and / or more pleasant noise emissions with inverter-fed electric motors or geared motors.
[0016] In a preferred embodiment, the PWM frequency is varied over time between a lower and an upper frequency. The advantage here is that at frequencies near the upper limit, noises that are less perceptible to the human ear can be generated. At the lower limit, switching losses are low.
[0017] In a preferred design, the lower and upper frequencies are 20% or more removed from the center frequency, i.e., the arithmetic mean of the lower and upper frequencies. The advantage here is that the sound pressure is distributed over such a wide frequency band that the human ear perceives a distinct, whooshing noise rather than a single frequency. This reduces the annoyance.
[0018] In a preferred design, the upper PWM frequency is varied depending on the load, and in particular, it is reduced as the output power of the electrical device increases. This has the advantage of reducing switching losses.
[0019] In a preferred design, the lower PWM frequency is varied depending on the load, and in particular, it is increased as the output power of the electrical device decreases. This has the advantage of making the noise more pleasant.
[0020] In an advantageous design, the lowest lower PWM frequency is 4 kHz and the highest upper frequency is 16 kHz. It is advantageous that the upper limit is an integer multiple of the lower limit. With integer multiples of the upper and lower limits, software implementation is simple and quick.
[0021] In an advantageous design, different discrete values can be specified for the PWM frequency depending on the time.
[0022] In an advantageous embodiment, the PWM frequency is changed essentially continuously over time, in particular by assigning each subsequent PWM period a different PWM frequency value than the previous one. The advantage here is that the frequency changes can be implemented so quickly that alternating load operation of the power semiconductors is avoided.
[0023] In an advantageous embodiment, the PWM frequencies are distributed essentially uniformly between the minimum and maximum frequencies, particularly in the time average. This is advantageous because the noise is perceived as more pleasant and the amplitudes are lower, meaning the noise is also quieter. The amplitudes of the tonal components of the noise are reduced and replaced by noise in the frequency range between the minimum and maximum frequencies. Tonal noises are subjectively perceived as unpleasant. Thus, the invention achieves a subjectively less disturbing noise emission.
[0024] In an advantageous embodiment, the reciprocal of the rate of change of the PWM frequency f, i.e., Δt / Δf, is smaller than a thermal time constant of a layer or component of a power semiconductor switch in the power electronics. The advantage here is that the temperature changes only slightly and mechanical stresses are avoided.
[0025] In an advantageous embodiment, the reciprocal of the rate of change of the PWM frequency f, i.e., Δt / Δf, is smaller than a time constant that characterizes the energy input into a vibration mode. This is advantageous because it allows for keeping the amplitudes in the vibration modes of the device components small.
[0026] In an advantageous embodiment, the device comprises a converter, an inverter, a regenerative power supply, or another power semiconductor switch. A further advantage is that the invention is applicable to any electrical device whose switches are operated using pulse-width modulation.
[0027] In a preferred design, the upper PWM frequency is reduced as the speed of the electric motor supplied by the inverter increases. This has the advantage of reducing switching losses.
[0028] In a preferred embodiment, the lower PWM frequency is increased as the speed of the electric motor supplied by the inverter decreases. An advantage of this is that the noise can be reduced.
[0029] Key features of the electrical device are that it includes pulse-width modulated power electronics, and the device is designed to be operable with different PWM frequencies.
[0030] The advantage here is that overall noise levels can be reduced, the sound can be made more pleasant for the human ear, and switching losses can still be kept to a minimum.
[0031] In an advantageous design, at least four different discrete values for the PWM frequency can be specified depending on the time. The advantage here is that low software and computational effort is required, while still achieving a very good reduction in noise pollution.
[0032] In an advantageous embodiment, the time interval during which a particular discrete value of the PWM frequency is specified is shorter than a critical duration. An advantage here is that the critical duration can be selected based on the characteristics of human hearing.
[0033] In an advantageous design, the critical time is the duration at which the human ear is just barely unable to perceive the presence of a discrete frequency. The advantage here is that only noise, rather than individual frequencies which are much more disturbing, is perceptible.
[0034] In an advantageous embodiment, the critical time is the Nth part of the time at which the human ear is just no longer able to detect the presence of a discrete frequency, where N is the number of discrete values and / or the number of time intervals with a constant frequency in a periodic sequence of several discrete frequencies. In particular, the critical time is shorter than the persistence of hearing, especially according to the principles of technical acoustics or psychoacoustics, or shorter than the temporal after-capping of human hearing, especially according to the principles of technical acoustics or psychoacoustics. An advantage of this is that individual frequencies are no longer perceptible.
[0035] In an advantageous embodiment, the critical time duration is less than 50 ms, particularly less than 35 ms. The advantage here is that the pulse sequences are no longer perceptible as individual frequencies. Very good results were achieved when the critical time duration was less than 35 ms.
[0036] In an advantageous embodiment, the critical time duration is between 0.5 ms and 5 ms, particularly between 1.5 ms and 2.5 ms. The lower limit mentioned here ensures that the computational and software overhead remains low. The upper limit mentioned here is chosen such that further reduction would not result in any perceptible improvement.
[0037] In an advantageous embodiment, the medium frequency is selected such that the drive, comprising the device and an electric motor and / or a gearbox, does not exhibit any natural frequency in the region of the medium frequency, and in particular, the medium frequency is positioned between two natural frequencies. The advantage here is that, although natural resonances occur in every drive, such as an inverter-fed geared motor, the energy fluxes introduced by the inverter into these associated vibration modes are low, thus preventing the amplification of vibrations in such modes.
[0038] In an advantageous embodiment, the PWM frequency is changed over time such that a sequence, particularly a periodic sequence, of time intervals is defined, each of which is assigned a value of a discrete frequency. The advantage here is that the sequence can be selected in such a way as to minimize disturbance, because only small amplitude values are assigned to the corresponding frequency spectrum.
[0039] In an inventive method for operating an electrical device comprising pulse-width modulated power electronics, the PWM frequency is adjusted depending on the operating state. - is kept constant at the middle frequency, meaning the upper and lower frequencies are the same - or is changed depending on the time.
[0040] An advantage of this design is that, for example, at low power levels, a high constant frequency can be used, which is perceived as less disruptive. At high power levels, while the pulse width modulation frequency can be lowered, thus reducing the losses of the power semiconductors in the inverter stage of the device, the pulse width modulation frequency can also be varied within a band around the center frequency, resulting in less disruptive noise. Therefore, the center frequency changes depending on the operating state.
[0041] According to the invention, the number of frequency values used between the upper and lower frequencies increases monotonically with decreasing mean frequency, particularly below a critical mean frequency, approaching infinity. An advantage of this is that while a lower frequency can be used if thermal load, another operating condition, or a requirement for increased service life necessitates it, countermeasures can be implemented to reduce noise pollution.
[0042] In an advantageous embodiment, a finite number of discrete frequency values are used below a first critical mid-frequency, and a quasi-continuous spectrum of frequencies is used below a second critical mid-frequency. The advantage here is that when lowering the mid-frequency, several discrete frequencies can initially be used, switching between them after respective time intervals. With further lowering, it is even possible to transition to white noise or other continuous distributions to achieve a further reduction in nuisance.
[0043] In a preferred embodiment, the medium frequency is reduced depending on the thermal load of the device's inverter and / or the required power output of the device. The advantage here is that, depending on the power output, a medium frequency is selected that allows for maximum thermal load. It is also advantageous that the thermal load of the device's inverter can be kept constant or only minimally affected – even with changes in power output. This increases the inverter's service life.
[0044] Further advantages arise from the sub-claims.
[0045] The invention will now be explained in more detail with the help of illustrations: In the Fig. Figure 1 schematically depicts a method according to the invention. It shows that the PWM frequency is changed between an upper PWM frequency f_ob and a lower PWM frequency f_un depending on the time.
[0046] The individual frequencies are therefore only present for a short time.
[0047] The device's components can exhibit various natural frequencies, which are excited. In each such mode, a progressively higher amplitude can be achieved with a longer excitation time, as the energy fed into the device at the PWM frequency is distributed across the different modes. Thus, a partial energy current flows into each mode, increasing its respective amplitude. The magnitude of this partial energy current for each mode depends on the PWM frequency.
[0048] In this invention, the PWM frequency is only held at a specific value for a very short time. This prevents the amplitude of the respective oscillations of the device components from becoming too large, as the size of the partial energy flow in this mode is varied accordingly.
[0049] In other words, the short duration of the constant PWM frequency means that, on average over long periods, only a small amount of energy can flow into the corresponding mode, i.e., the corresponding oscillation pattern. The peak values of the oscillation amplitudes are therefore kept small.
[0050] This also reduces noise generation.
[0051] The sound that is nevertheless emitted is much more pleasant because the energy is distributed across the entire frequency spectrum. This is because the constant change in the excitation PWM frequency prevents a single oscillation pattern from becoming too dominant, and thus the sound does not consist of just one strong frequency.
[0052] The lower PWM frequency can be set to 4 kHz, for example, and the upper to 16 kHz. However, other limits are also advantageous. Values between 500 Hz and 20 or 25 kHz are also beneficial for the lower limit, and between 5 kHz and 25 or 100 kHz for the upper limit, with the upper value always being higher than the lower value. This protects not only human hearing but also the hearing of animals. The values for the lower and upper limits can be adjusted according to individual hearing needs.
[0053] If there is no load, the upper limit can be selected as the PWM frequency. This is because at high frequencies, the amplitudes of the modes are small, and therefore so is the sound radiation. Furthermore, modes with frequencies above 20 kHz produce sound that is no longer perceptible to humans.
[0054] It is also advantageous that, in another embodiment of the invention, the PWM frequency can be selected differently for each PWM interval. Alternatively, one could choose a constant PWM frequency for two or more PWM periods and only then change the PWM frequency. The exact profile is advantageously optimized for each individual device.
[0055] In further embodiments according to the invention, the PWM frequencies are selected only from a frequency range that is changed depending on the load.
[0056] At low frequencies, the switching losses of power semiconductor switches are lowest; however, at these frequencies, the noise is most disruptive and unpleasant to the human ear. Similarly, noise generated by using a constant PWM frequency is unpleasant and disruptive.
[0057] By varying the PWM frequencies, the resulting noise is more pleasant and, on average, vibrations of the device's components are less strongly excited.
[0058] The PWM frequency is changed so quickly that the characteristic time constant for changing the PWM frequency is smaller than the thermal time constant of the power semiconductors.
[0059] In this way, alternating load operation can be avoided, thus extending the service life of the power semiconductors. This is because thermally induced mechanical stress changes caused by temperature fluctuations negatively impact service life. Therefore, to keep temperature fluctuations small, the individual time intervals should be shorter than the thermal time constant of a layer or component of the power semiconductor switch or the chip package of the power semiconductor switch.
[0060] In further embodiments of the invention, the frequencies are selected from the frequency range in a uniformly distributed manner. This essentially corresponds to so-called white noise, whereby, however, the lower and upper frequencies of the frequency band are never exceeded.
[0061] In further embodiments according to the invention, the rate of change of the PWM frequencies is selected such that the alternating load operation of the power semiconductors can be avoided.
[0062] Fig. Figure 2 illustrates the frequencies fv used as a function of the mean frequency f0. The lower the mean frequency, the more frequency values are used. At the lowest mean frequency shown, an entire frequency band is used essentially without gaps, i.e., a uniformly distributed noise such as white noise or similar is applied.
[0063] When using discrete frequencies, sequences can also be used, in particular periodic sequences, where time intervals are specified, each assigned a value of a discrete frequency. The advantage here is that the sequence can be chosen in such a way as to minimize disturbance, because only small amplitude values are assigned to the corresponding frequency spectrum. For example, with an ordered set of frequencies for which f1
Claims
[1] Method for operating an electrical appliance, namely an inverter that supplies an electric motor, comprehensive pulse-width modulated power electronics of the inverter, where the PWM frequency changes depending on the time, a distinction is made between a lower and an upper frequency, with a mean frequency as the arithmetic mean of the lower and upper frequencies, where the number of frequency values used between upper and lower frequency increases monotonically with decreasing mean frequency, especially tending towards infinity below a critical mean frequency. [2] Method according to claim 1, characterized by that the lower and upper frequencies are 20% or more away from the center frequency. [3] Method according to at least one of the preceding claims, characterized by , that the smallest lower PWM frequency is 500 Hz and the largest upper frequency is 25 kHz. [4] Method according to at least one of the preceding claims, characterized by that different discrete values can be specified for the PWM frequency depending on the time. [5] Method according to at least one of the preceding claims, characterized by , that the reciprocal of the rate of change of the PWM frequency f, i.e. Δt / Δf, is smaller than a thermal time constant of a layer or component of a power semiconductor switch in power electronics. [6] Method according to at least one of the preceding claims, characterized by , that the reciprocal of the rate of change of the PWM frequency f, i.e. Δt / Δf, is smaller than a time constant that characterizes the inflow of energy into a vibration mode, in particular to keep the amplitudes in the vibration modes of the components of the device small. [7] Method according to at least one of the preceding claims, characterized bythat the device is a converter, an inverter, a regenerative power supply unit or other device comprising a power semiconductor switch. [8] Method according to at least one of the preceding claims, characterized by , that the upper PWM frequency is reduced as the speed of the electric motor supplied by the inverter increases. [9] Method according to at least one of the preceding claims, characterized by , that the lower PWM frequency is increased as the speed of the electric motor supplied by the inverter decreases. [10] Method according to at least one of the preceding claims, characterized by that at least four different discrete values can be specified for the PWM frequency, depending on the time. [11] Method according to at least one of the preceding claims, characterized by , that the time interval in which a respective discrete value of the PWM frequency is specified is smaller than a critical time duration. [12] Method according to claim 11, characterized by , that the critical time period is the time period at which the human ear is just no longer able to recognize the application of a discrete frequency. [13] Method according to claim 11 or 12, characterized by , that the critical time period is the Nth part of the time period at which the human ear is just no longer able to detect the presence of a discrete frequency, where N is the number of discrete values and / or the number of time intervals with constant frequency in a periodic sequence of several discrete frequencies. [14] Method according to claim 11, 12 or 13, characterized bythat the critical time duration is smaller than the inertia of human hearing, in particular according to the teachings of technical acoustics or psychoacoustics, or is smaller than the temporal after-coverage of human hearing, in particular according to the teachings of technical acoustics or psychoacoustics. [15] Method according to any one of claims 11 to 14, characterized by that the critical time duration is less than 50ms, in particular less than 35ms. [16] Method according to any one of claims 11 to 15, characterized by , that the critical time duration is between 0.5 ms and 5 ms, in particular between 1.5 ms and 2.5 ms. [17] Method according to at least one of the preceding claims, characterized by, that the medium frequency is chosen such that the drive comprising the device and an electric motor and / or a gearbox does not have a natural frequency in the range of the medium frequency, in particular that the medium frequency is placed between two natural frequencies. [18] Method according to at least one of the preceding claims, characterized by , that the PWM frequency is changed in a time-dependent manner such that a sequence, in particular a periodic sequence, of time intervals is specified, to which a respective value of a discrete frequency is assigned. [19] Method according to at least one of the preceding claims, characterized by , that below a first critical mean frequency a finite number of discrete frequency values are used and below a second critical mean frequency a quasi-continuous spectrum of frequencies is used. [20] Method according to at least one of the preceding claims, characterized by, that the medium frequency is lowered depending on the thermal load of an inverter of the device. [21] Method according to at least one of the preceding claims, characterized by , that depending on the power output, such a medium frequency is selected that the thermal load can be selected to the maximum extent, in particular while adhering to the permissible limits of the device.
Citation Information
Patent Citations
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