ELECTRICAL GENERATOR SYSTEM
20230208310 · 2023-06-29
Inventors
- Ferenc ANTAL (Budapest, HU)
- Tamás Attila FODOR (Sárospatak, HU)
- András Zsigmond LÉGÁR (Budapest, HU)
- Tibor SÜLE (Budapest, HU)
Cpc classification
H05K7/14329
ELECTRICITY
H02K2213/03
ELECTRICITY
International classification
Abstract
An electrical generator system includes a generator unit and an inverter unit. The generator unit is coupled to the inverter unit through a coupling mechanism, wherein the coupling mechanism includes at least one busbar connection.
Claims
1. An electrical generator system comprising: a generator unit; and an inverter unit, wherein the generator unit is coupled to the inverter unit through a coupling mechanism, and wherein the coupling mechanism comprises a busbar connection.
2. The electrical generator system of claim 1, wherein the generator unit comprises a male part of the busbar connection, and wherein the inverter unit comprises a female part of the busbar connection.
3. The electrical generator system of claim 2, wherein the male part of the busbar connection has a length to diameter ratio in a range of 7:1 to 3:1.
4. The electrical generator system of claim 1, wherein a busbar insulator element is configured to electrically insulate at least one component of the busbar connection against other elements of the electrical generator system.
5. The electrical generator system of claim 4, wherein the at least one component of the busbar connection is a female part of the busbar connection.
6. The electrical generator system of claim 4, wherein the busbar insulator element comprises a tubular section for an electrical insulation in a radial direction and/or a disc element.
7. The electrical generator system of claim 6, wherein the disc element of the busbar insulator element is attached to the tubular section of the busbar insulator element for an electrical insulation in an axial direction.
8. The electrical generator system of claim 7, wherein the disc element of the busbar insulator element has an outer diameter being 1.2 to 2 times an inner diameter of the tubular section.
9. The electrical generator system of claim 1, wherein a male part and/or a female part of the busbar connection is thermally coupled to a cooling device.
10. The electrical generator system of claim 9, wherein the cooling device is a heat sink, an active cooling medium, or a combination thereof.
11. The electrical generator system of claim 1, wherein a female part and/or a male part of the busbar connection is electrically coupled to a transducer for measuring a current and/or a voltage at the busbar connection.
12. The electrical generator system of claim 1, wherein the busbar connection comprises a receiving element, and wherein the receiving element comprises a female part of the busbar connection.
13. The electrical generator system of claim 12, wherein terminal electrical contacts of the receiving element are radially offset from each other.
14. The electrical generator system of claim 12, wherein the female part of the busbar connection comprises a tubular part and at least one connection element for establishing an electric connection with the inverter unit and/or the generator unit.
15. The electrical generator system of claim 14, wherein the at least one connection element is positioned above or below a plane of an axis of the tubular part of the female part of the busbar connection.
16. The electrical generator system of claim 12, wherein the receiving element comprises copper.
17. The electrical generator system of claim 12, wherein the receiving element comprises an insulation material.
18. The electrical generator system of claim 17, wherein the insulation material is a foil material.
19. The electrical generator system of claim 1, wherein at least one part of a heat sink and/or the busbar connection with a receiving element is axially adjustable with an adjustment mechanism relative to a fixed part in the generator unit and/or the inverter unit.
20. The electrical generator system of claim 19, wherein the fixed part in the generator unit and/or the inverter unit is a generator unit housing and/or an inverter unit housing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Embodiments of the disclosure are shown in the figures, wherein:
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DETAILED DESCRIPTION
[0033] In the following
[0034]
[0035] In an assembled, electrically connected situation (in part, e.g., shown in
[0036] The generator unit 10 is coupled to the inverter unit 20 through a coupling mechanism or device 30, wherein the coupling mechanism 30 includes at least one busbar connection 41, 42.
[0037] As depicted in
[0038] In other embodiments, the generator unit 10 includes the female parts and the inverter unit 20 the male parts. Also, mixed arrangement of male parts 41 and female parts 42 are possible.
[0039] The busbar connection with the male and female parts 41, 42 enables a direct, non-cable connection between the generator unit 10 and the inverter unit 20, saving volume and weight.
[0040] The male part 41 is dimensioned as a cylindrical plug with a circular cross-section. The ratio of the length to diameter is about 5:1. The plug-shaped male part 41 of the busbar connection (and the corresponding female part 42) defines an axial direction A, which is referred to in the following description.
[0041] In other embodiments, the length-diameter ratio of the male part 41 may be in a range of 7:1 and 3:1, therein providing a stable, robust electrical connection. In further embodiments, the male part 41 may have a different shape, e.g., a rectangular, plate-like shape, or a tubular shape. The cross-section may also be non-circular, e.g., polygonal or elliptic. The female part 42 of the busbar connection is complementary shaped to the male part 41.
[0042] The female part 42 of the busbar connection is shown in more detail in
[0043] As the electrical current flows through the male and female parts 41, 42, some electrical insulation against other parts is introduced circumferentially on the outside of the female part 42 in the form of a busbar insulator element 43, shown in more detail in
[0044] The busbar insulator element 43 may include a tubular section 48 (seen in the front of
[0045] As indicated above, the axial direction A defines the axis along the male part 4 of the busbar connection is inserted into the female part 42. The axis A extends along a tubular part of the female part 42 of the busbar connection (see, e.g.,
[0046] In the assembly shown in
[0047] The heat sink 47, (e.g., as a passive and/or active device), is just one of the possible cooling devices to cool the busbar connection. An active cooling device might use a cooling fluid thermally coupled to the busbar connection.
[0048] The busbar connection with the male part 41 and the female part 42 should remain in place relative to other parts of the inverter unit 20 for providing a safe electrical connection between the generator unit 10 and the inverter unit 20. But it is also an issue to keep the busbar connection free (as far as technically possible) from dynamic stresses, e.g., mechanical stresses. Furthermore, the busbar connection should have a good heat exchange with the cooling device, here the heat sink 47. Therefore, a tight screw connection with fastening screes 53 (see, e.g.,
[0049] In
[0050] The clamping element 44 fixes the busbar insulator element 43 against a rigid part of the inverter unit 10 by using the fastening screws 53. Thereby, it suppresses vibrations in the busbar connection. The clamping also improved the heat transfer from the busbar connection to the heat sink 47.
[0051] In
[0052] The electrical transducer 45 is connected through a board with the body of the inverter unit 20. Further details are shown in
[0053] A cross-section of the electrical transducer 45 is shown in
[0054] In
[0055]
[0056]
[0057]
[0058] The female part 42 of the busbar connection is part of a receiving element 46 which includes two connection elements 51. As depicted in more detail in
[0059] In other embodiments, only one connection element 51 or more than two connection elements 51 (not necessarily shaped as a plate) may be used to establish the electrical connection through the busbar connection.
[0060] In
[0061]
[0062]
[0063] This shows that the receiving element 46 may have a more complex busbar form to transport the current within the inverter unit 20. This means that the female part 42 of the busbar connection and the other parts of the inverter unit 20 may be configured independently from each other. The busbar connection with the receiving element 46 may bridge, e.g., radial distances if that helps to keep the overall volume small.
[0064] The receiving element 46, or at least parts of it, are made from copper 1000, which may be produced by milling. Alternatively, the receiving element 46 may be manufactured by a casting process. The surface of the receiving element 46 is at least partially coated with nickel. To electrically insulate the receiving element 46 against other parts of the inverter unit 20, the receiving element 46 includes insulation material 54, such as, e.g., Kapton foil.
[0065] In
[0066] In
[0067] In
[0068] To that effect, within the clamping element 44, axial gaps 56 (encircled in
[0069] The axial adjustment enables an easier assembly as tolerances may be overcome. Additionally, the axial adjustment may help in adjusting for thermal expansions.
[0070] It is to be understood that the elements and features recited in the appended claims may be combined in different ways to produce new claims that likewise fall within the scope of the present disclosure. Thus, whereas the dependent claims appended below depend on only a single independent or dependent claim, it is to be understood that these dependent claims may, alternatively, be made to depend in the alternative from any preceding or following claim, whether independent or dependent, and that such new combinations are to be understood as forming a part of the present specification.
[0071] While the present disclosure has been described above by reference to various embodiments, it may be understood that many changes and modifications may be made to the described embodiments. It is therefore intended that the foregoing description be regarded as illustrative rather than limiting, and that it be understood that all equivalents and/or combinations of embodiments are intended to be included in this description.
LIST OF REFERENCE NUMBERS
[0072] 10 generator unit [0073] 11 generator housing [0074] 20 inverter unit [0075] 21 inverter housing [0076] 30 coupling mechanism [0077] 41 male part of busbar connection [0078] 42 female part of busbar connection [0079] 43 busbar insulator element [0080] 44 clamping element [0081] 45 current transducer [0082] 46 receiving element of busbar connection [0083] 47 heat sink [0084] 48 tubular section [0085] 49 disc element [0086] 50 radial fastener [0087] 51 connection element of receiving element [0088] 52 fixing nut for the fastener [0089] 53 fastening screws [0090] 54 insulation material of receiving element [0091] 55 screw connecting heat sink with inverter housing [0092] 56 axial gap in clamping element [0093] 100 generator system [0094] A axis of male/female part of the busbar connection