The present invention generally relates to a method of controlling an electrical machine. More particularly, but not exclusively, the present invention relates to the operation of a switched reluctance machine.
One form of switched reluctance machine has a singly excited, doubly salient magnetic structure which is typically free from hard magnetic material. The presence of a rotor position detector and the use of an energisation (commonly known as ‘excitation’) strategy which is completely dependent on the instantaneous position of the rotor leads to these machines having the generic description of “rotor position switched”. A general treatment of variable speed drives which incorporate these machines can be found in various textbooks, e.g. “Electronic Control of Switched Reluctance Machines” by TJE Miller, Newnes, 2001, incorporated herein by reference. Further details of the characteristics and operation of these drives are described in, for example, “The characteristics, design and application of switched reluctance motors and drives” by Stephenson and Blake, PCIM'93, Nürnberg, 21-24 Jun. 1993, incorporated herein by reference.
Many different power converter topologies are known, several of which are discussed in the Stephenson paper cited above. One of the most common configurations is shown in
a) shows a schematic cross section of a typical 3-phase switched reluctance machine, in which the stator has three pairs of salient poles and the rotor has four poles. Each stator pole carries a coil and diametrically opposite pairs of coils are connected, either in series or in parallel, to form a phase winding 16.
An idealised form of the inductance curve for a phase is shown in
The performance of a switched reluctance machine depends, in part, on the accurate timing of phase energisation with respect to rotor position. Detection of rotor position is conventionally achieved by using a transducer 15, shown schematically in
The sensors are distributed around the perimeter of the vane at angles which correspond to the displacement angles of the inductance profiles of the phases, and are typically positioned relative to the stator poles so that the rising and falling edges of their output waveform occur at Lmin and Lmax, respectively. This results in the signals from the sensors having relationships with each other as shown in
At the end of the conduction angle, the “off angle” θoff is reached, the switches are opened and the current transfers to the diodes, placing the inverted link voltage across the winding and hence forcing down the flux and the current to zero. At zero flux and zero current, the diodes cease to conduct and the circuit is inactive until the start of a subsequent conduction period. Although the current in the phase winding is unidirectional, the current on the DC link reverses when the switches are opened, as shown in
With this excitation procedure, which is typically adopted at higher speeds in the speed range of the drive, the shape of the current waveform varies depending on the operating point and on the switching strategy adopted, though the triangular flux waveform is essentially unchanged.
As is well-known and described in, for example, the Stephenson paper cited above, low-speed operation generally involves the use of current chopping to contain the peak currents, and switching off the switches non-simultaneously gives an operating mode generally known as “freewheeling”.
UK Patent GB 2302222 (Samsung) discloses a method of driving a switched reluctance motor by altering the sequence of energisation of the phases of a machine as a function of speed.
U.S. Pat. No. 4,942,345 (Horst) discloses a method of starting a machine using all its phase windings and continuing operation on a single phase winding above a certain speed.
The prior art does not contemplate an advance in the way an electrical machine can be operated without modifying the sequence in which the phases are energised while a machine is in operation.
Two particular points about the conventional operation described above have been noted by the inventor. Firstly, the repetition rate at which each phase is energised corresponds exactly to the rate at which the rotor poles pass any given stator pole. For example, if the pole A in
Secondly, the sequence of operation of the phases is important. Inspection of
The present invention is defined in the accompanying independent claims. Some preferred features of the invention are recited in the claims respectively dependent thereon.
According to embodiments there is provided a method of operating an electrical machine, the machine having a stator defining stator poles, a rotor defining rotor poles, the rotor being movable relative to the stator so that the rotor poles are successively alignable with any stator pole, and independently energisable phase windings, each associated with at least a pair of stator poles and having an inductance cycle determined by the passage of the rotor poles past the stator poles, the method comprising: in a first mode of operation, initiating the energisation of the phase windings in a predetermined sequence and for consecutive inductance cycles of each phase in turn; and in a second mode of operation, initiating the energisation of the phase windings in the same sequence, in which initiation of energisation of each phase winding is followed by at least one inductance cycle of that phase with no initiation of energisation.
According to another embodiment there is provided a method of operating an electrical machine, the machine having a stator defining stator poles, a rotor defining rotor poles, the rotor being movable relative to the stator so that the rotor poles are successively alignable with any stator pole, and independently energisable phase windings, each associated with at least a pair of stator poles and having an inductance cycle determined by the passage of the rotor poles past the stator poles, the method comprising: in a first mode of operation initiating energisation of the phase windings in a predetermined sequence, in which the rate of initiating energisation is equal to the rate at which rotor poles coincide with a given stator pole, and in a second mode of operation initiating energisation of the phase windings in the same sequence, in which the rate of initiating energisation of the phase windings is less than the rate at which rotor poles coincide with a given stator pole.
By selecting which occurrences of the phase inductance cycles in which to begin the energisation of the phase windings, it is possible to increase the interval for growth and decay of the flux in a phase before the start of the next energisation
The consequent increased interval between energisations of the same phase can be realised by beginning the energisation in successive occurrences of the phase inductance cycle for consecutive phases in sequence followed by a plurality of consecutive inductance cycles with no energisation. For example, the plurality may comprise a number of occurrences of the phase inductance cycle equal to the number of phases or an integer multiple of the number of phases. In this particular form the sequence is maintained in a ‘burst’ of energisations of the phases followed by one or more groups of occurrences of the phase inductance cycle in which no energisation takes place.
Alternatively, the increased interval between energisations of the same phase can be realised by having the start of an energisation period for a first one of the phases in the sequence, followed by a plurality of consecutive inductance cycles with no energisation and, thereafter, having the start of an energisation period for a second phase in the sequence, and so on. Energisation is left until the rotor and stator positions are arranged for subsequent energisation of the next phase in the sequence, and so on. Thus, the plurality of consecutive unenergised inductance cycles for a given phase is equal to an integer multiple of the number of the phases in the machine.
Embodiments of the invention also have the advantage of reducing the overall switching frequency in the controller, and in the machine itself. This has beneficial implications for the efficiency of the machine operation.
Embodiments of the invention also extend to an electrical machine drive system comprising: a stator defining stator poles; a rotor defining rotor poles, the rotor being rotatable relative to the stator so that the rotor poles are successively alignable with any stator pole, independently energisable phase windings each associated with at least a pair of stator poles, a controller operable to initiate the energisation of the phase windings in a predetermined sequence, the initiation of the energisation of the phase windings occurring in some part of consecutive inductance cycles of the windings in turn in a first mode of operation, and energisation of the phase windings being initiated in the same sequence in which initiation of each phase winding being followed by at least one inductance cycle of that phase with no initiation of energisation, in a second mode of operation.
The initiation of energisation of the phase windings in the second mode may comprise the sequence of consecutive energisations of the phase windings followed by a plurality of consecutive inductance cycles with no energisation.
Alternatively, the initiation energisation of the windings in the second mode may comprise having the start of an energisation period for a first phase winding in the sequence followed by a plurality of inductance cycles not having the start of an energisation period and, thereafter, energisation of a second phase winding in the sequence.
In general, the plurality of consecutive unenergised inductance cycles corresponds to the number of phases in the machine, but could be an integer multiple of the number of phases.
According to other embodiments there is provided a method of operating an electrical machine having: a stator defining stator poles; a rotor defining rotor poles; independently energisable phase windings, each associated with at least a pair of the stator poles, the rotor poles being movable past each at least pair of stator poles to produce a machine output when the phase windings are energised, the method comprising: energising the phase windings consecutively in a fixed sequence in which the starts of energisation periods of the phases is separated by an interval in which the rotor poles align with the stator poles of the phases a number of times equal to an integer multiple of the number of phases of the machine.
According to other embodiments there is provided a method of operating an electrical machine having: a stator defining stator poles; a rotor defining rotor poles; independently energisable phase windings each associated with at least a pair of the stator poles, the rotor being movable past each at least pair of stator poles to produce a machine output when the phase windings are energised, the method comprising: energising the phase windings in a fixed sequence in which the start of an energisation period of one of the phase windings is separated from the next energisation in the sequence by an interval in which the rotor poles align with the stator poles of the phases a number of times equal to an integer multiple of the number of phases of the machine.
Other aspects and advantages of the invention will become apparent upon reading the following detailed description of exemplary embodiments of the invention and upon reference to the accompanying drawings, in which:
a) shows a schematic cross section of a switched reluctance machine;
b) shows another cross section of the machine of
c) shows an inductance waveform for a phase winding;
a) shows a schematic view of a rotor position transducer with three sensors;
b) shows the output waveforms of the sensors of
a) shows voltage and flux waveforms;
b) shows phase current waveforms corresponding to
c) shows supply current waveforms corresponding to
By inspection of
The invention is not limited to 3-phase systems.
Another embodiment will now be described.
One of the advantages of embodiments described is that, for a given speed, the period available to build and reduce the flux is greatly extended. Consider the conventional operation of the 3-phase system as shown in
While
Likewise, the invention can be operated in the ‘continuous current’ mode of a switched reluctance machine, in which the current does not reach zero, but is kept from operating in an unstable manner by controlling the volt-seconds applied to the windings. This is described in U.S. Pat. No. 5,563,488, which is incorporated herein by reference. In this continuous current mode, the initiation of energisation in each phase in sequence is as described above in relation to the single pulse mode of operation but the current will not, of course, return to zero within an inductance cycle.
As before, the depiction of the points at which the supply voltage is applied to the winding in
Another advantage of operating according to the described embodiments is that the switching frequency in both the electronic controller and the machine is significantly reduced, which will lead to a reduction in the associated losses, thereby raising the efficiency of the drive system.
The disclosed embodiments effect selective energisation of the phases so that there are occurrences of the phase inductance cycle in a given machine sequence that could be used to ‘pull’ the rotor around, but that are left unenergised. The machine can run conventionally at (for example) lower speeds and/or from start-up where the switching duty is more easily handled by the control and switching apparatus of the drive. For higher speed operation, the invention can be used to relax the switching burden and to gain efficiency without changing the sequence of operation of the phases. Alternatively, the machine can be operated exclusively according to any of the disclosed embodiments according to a fixed sequence of energisation of the phase windings.
The skilled person will appreciate that variation of the disclosed arrangements are possible without departing from the invention. For example, the rotor may have more than 2 (for example 3 or 4) pairs of rotor poles that are magnetically salient. Also, the specific embodiments are disclosed in relation to reluctance machines, but it will be appreciated that the invention is applicable to any electrical machine with salient poles and independently energisable phase windings. Likewise, the invention is equally applicable to any such switchable machine whether acting as a motor or a generator. Further, the invention is also equally applicable to both rotary and linear machines. The movable part of a linear machine is often referred to by those of ordinary skill in the art as the rotor. Accordingly, the above description of several embodiments is made by way of example and not for the purposes of limitation. The present invention is intended to be limited only by the scope of the following claims.
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0702975.4 | Feb 2007 | GB | national |
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20080197793 A1 | Aug 2008 | US |