The present invention generally applies to the technical field of electric machines and in particular it regards an off-grid system for generating electrical energy for feeding an external load.
The invention also regards a method for controlling the fluxation of the energy produced by the aforementioned generation system.
Electric machines of the generator type comprising a stator and a rotor coupled to a driven shaft driven in rotation by an external driving power source, for example of the mechanical, wind energy and hydraulic type have long been known.
Typically, electric generators of considerable power are of the asynchronous type, wound field synchronous type or of the type with permanent magnets.
Asynchronous generators reveal the drawback of having considerable electrical losses that reduce the efficiency thereof, while permanent magnet generators are particularly expensive and require complex and over-dimensioned control means. Reluctance synchronous generators comprising a stator and a transversal lamination rotor made up by a plurality of laminar elements gathered into a pack was designed in order to at least partly overcome such drawbacks.
The laminar elements of the rotor have extended and curved-shaped cavities, closed at the ends and defining, in the peripheral portion of each laminar element, ribs for saturating the electromagnetic field.
Document 102016000027721, owned by the applicant, discloses a reluctance synchronous generator comprising a squirrel cage structure associated to the rotor and connected to the system for supplying the produced electrical energy.
In particular, the squirrel cage comprises a plurality of longitudinal conductor elements peripherally distributed with respect to the pack of laminar elements and connected by means of respective short-circuiting rings integrally joined to the rotor and arranged at the ends thereof.
Such configuration enables reducing any torque oscillations on the generator and producing frequency electrical energy and constant voltage, with respect to the reluctance synchronous generators described above.
However, a first drawback of such solution lies in the fact that such generator should not be used in an off-grid system, i.e. a system in which the generator is connected to an isolated load of the power supply mains.
As a matter of fact, the generator described above has an operating nominal voltage below the reference voltage value, i.e. the optimal operating voltage, following connection with the load.
A further drawback lies in the fact that the connection of a load with reactive component to the generator could cause a reduction of the power factor and an ensuing further reduction of the voltage at the heads of the generator.
Furthermore, a further drawback lies in the possible presence of harmonics produced by the connection with the isolated load.
In view of the prior art, the technical problem to be overcome lies in increasing the operating nominal voltage in a reluctance synchronous electric generator used in an off-grid system by means of fluxation with compensation of the reactive power.
An object of the present invention is to solve the aforementioned technical problem overcoming the drawbacks outlined above, by means of an off-grid system for generating electrical energy for feeding an external load that is highly efficient and relatively inexpensive.
A particular object of the present invention is to provide an electrical energy generation system of the type described above capable of enabling maintaining the voltage generated during operation at a value proximal to the optimal operating voltage.
A further object of the present invention is to provide an electrical energy generation system of the type described above capable of enabling obtaining a power factor the closest possible to 1.
Another object of the present invention is to provide an electrical energy generation system of the type described above, capable of efficiently reducing the harmonic distortion.
A further object of the present invention is to provide an electrical energy generation system of the type described above comprising a software for controlling the fluxation of an off-grid reluctance synchronous electric generator. These and other objects which will be more apparent hereinafter, are attained by an off-grid electrical power generation system for feeding an external load according to claim 1, comprising at least one electric generator actuated by an external driving power source and connected to a load by means of an electrical circuit, a control unit connected to the circuit to detect the output voltage produced by the generator and fluxation regulation means connected to the electrical circuit to control and stabilise the voltage produced by the generator.
The control unit is connected to fluxation means for controlling the activation thereof and the generator is of the reluctance synchronous type and comprises a squirrel cage.
According to a further aspect of the invention, a method is provided for controlling the fluxation of electrical energy produced by the aforementioned generation system, according to claim 11.
Advantageous embodiments of the invention are defined according to the dependent claims.
Further characteristics and advantages of the invention will be more apparent in view of the detailed description of some preferred but non-exclusive embodiments of an off-grid system for generating electrical energy for feeding an external load according to the invention, illustrated by way of non-limiting example with reference to the following drawings, wherein:
With reference to the mentioned figures, an off-grid system is illustrated, generally indicated with reference number 1, for generating electrical energy for feeding an external load C.
The isolated load C may be constituted by any machine which requires electrical current for the operation thereof and the system 1 is connected to an external driving power source S having a predetermined drive torque.
In particular, the system 1 may be applied to systems for producing electrical energy starting from renewable energy sources, such as for example wind or water energy and the drive source S may be a water turbine.
It is clear that a water turbine may be replaced by a wind or vapour turbine, or a fossil fuel internal combustion engine, without departing from the scope of protection of the invention.
In a preferred embodiment of the invention, the system 1 comprises at least one electric generator 2 operatively connected to a driven shaft 3 of the driving power source S and connected to an isolated load C by means of an electrical circuit 4. The generator 2 may be of the type described in the patent application number 102016000027721, on behalf of the applicant, i.e. a reluctance synchronous generator.
In particular, the generator 2 may comprise a stator 5 provided with a plurality of poles and corresponding grooves 6 in a predetermined number and a rotor 7 formed by a plurality of laminar elements 8 gathered in a pack 8′ and integrally joined to the driven shaft 3.
Each laminar element 8 comprises a plurality of adjacent cavities 9 and a central through hole 10 so as to be inserted onto the driven shaft 3 without clearance. Furthermore, the cavities 9 are in a number corresponding to the number of grooves 6 of the stator 5 and they may have a substantially circle arc shape extended base.
In a preferred embodiment of the invention, illustrated in
Advantageously, as illustrated in
The conductor elements 13 may be connected by means of respective short-circuiting rings 14 integrally joined to the rotor 7 and arranged at the longitudinal ends thereof.
Furthermore, the conductor elements 13 may be present in a number proportional to the number of poles of the rotor 7 and they be inserted into the cavities 9 in proximity of the peripheral edge of each laminar element 8.
As illustrated in
For example, the latter is equivalent to 380V at a frequency value of 50 Hz and in absence of suitable fluxation regulation means 16 the produced voltage is much lower with respect to this value, as illustrated in the diagram of
In the system 1 subject of the present invention, the generated voltage V1 may be maintained at a value proximal to the optimal operating voltage V2 and the reactive power required by the load C will be compensated when connecting the generator 2, as illustrated in the diagram of
The control unit 15 comprises a logic sub-unit 17 on which a suitable software is installed together with a two-ring control algorithm with PID control and a first sub-unit 18 for converting the detected voltage V1 into an effective value V3 for comparison thereof with the optimal operating voltage V2, illustrated in
The innermost ring of the software will compare the reference current I1 with the detected current I2 suitably transformed into a synchronous quantity by a second conversion sub-unit 19 which uses the angular position of the rotor ϑ.
The result of the adjustment is processed by an algorithm SVM 20 for generating a suitable activation signal Sc intended for the fluxation regulation means 16.
The sending of the activation signal to the fluxation means 16 will guarantee the dispensing of a synchronous current with the electrical quantities of the generator 2 and with suitable module and phase values to carry out voltage compensation. The fluxation regulation means 16 may comprise at least one capacitor 21 or, alternatively, one or more batteries 21′ for capacitors 21 connected—in parallel fashion—to each other and with respect to the load C, in presence of one or more reluctance synchronous generators 2.
In a per se known manner, capacitors 21 may be selected from among the group comprising static and electromechanical switches and they enable obtaining an improvement of the power factor, or a reactive power compensation required by the load C following the connection thereof with the generator 2.
In the embodiment schematically illustrated in
Advantageously, both the compensator circuit 22 and the capacitors 21 may be directly fed by the reluctance synchronous generator 2 and they may be selectively activated by the software of the control unit 15, as described above. Furthermore, the fluxation regulation means 16 may enable reducing any harmonic distortion produced by the load C.
According to a further aspect of the invention, a method is provided for controlling the fluxation of the electrical energy produced by the generation system 1, described above.
The method comprises a step a) for empty activating the synchronous generator 2 actuated by the driving source S and a step b) for detection by the control unit 15 of the voltage V1 output by the generator 2 and comparison of the latter with the optimal operating voltage V2.
Subsequently, a step c) is provided for activating the batteries 21′ of the capacitors 21 by the control unit 15 to bring and maintain the voltage V1 output by the generator 2 at/to a value proximal to the optimal operating voltage V2. Advantageously, the output voltage V1 may correspond to about 80% of the overall optimal voltage.
Subsequently, provision is made for a step d) for electrical connection between the generator 2 and the isolated load C and a step e) for detecting the current output by said generator 2 for comparing the same with 1 the optimal operating voltage V2 by the control unit 15.
Should the output voltage V1 be lower than the optimal one, the control unit 15, during step f), activates the voltage compensator 22 and the latter fluxes the capacitive current into the circuit 4 during step g), so as to compensate the reactive power required by the connected load C.
Thus, the amount of initial capacitive current to be fluxed will be the one required by the synchronous generator 2 while the further capacitive current will be the one required by the load C following connection thereof.
The latter can be adjusted by the compensator circuit 22 to maintain the voltage of the system 1 at a value proximal to the optimal operating voltage.
Even though the off-grid electrical energy generation system has been described with particular reference to the attached figures, the reference numbers have been used to improve the intelligibility of the invention and shall not be deemed to limit the scope of protection subject of the claims.
The present invention can be applicable at industrial level in that it can be produced in an industrial scale by industries belonging to the field of electric machines used in off-grid systems.
The off-grid electrical energy generation system described above can be subjected to numerous modifications and variants falling within the scope of protection of the claims that follow.
Number | Date | Country | Kind |
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102016000096849 | Sep 2016 | IT | national |
Filing Document | Filing Date | Country | Kind |
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PCT/IB2017/055966 | 9/28/2017 | WO | 00 |