CAPACITOR, PARTICULARLY AN INTERMEDIATE CIRCUIT CAPACITOR FOR A MULTIPHASE SYSTEM
20220165507 · 2022-05-26
Inventors
Cpc classification
H01G4/38
ELECTRICITY
International classification
Abstract
The invention relates to a capacitor (1), particularly an intermediate circuit capacitor for a multiphase system, having a plurality of identical capacitor elements (10), which are connected in parallel and together form the capacitor (1), wherein at least one intermediate space (20) is formed between the capacitor elements (10), at least one intermediate capacitor element (30) is arranged in the intermediate space (20) and is connected in parallel to the capacitor elements (10), and thus together with the capacitor elements (10) forms the capacitor (1).
Claims
1. A capacitor (1) having a plurality of main capacitor elements (10) of identical design, which are mutually connected in parallel and/or in series and, in combination, constitute the capacitor (1), wherein at least one interspace (20) is constituted between the main capacitor elements (10), characterized in that at least one intermediate capacitor element (30) is arranged in the interspace (20), wherein the intermediate capacitor element (30) is connected in parallel with the main capacitor elements (10) and thus, in combination with the main capacitor elements (10), constitutes the capacitor (1).
2. The capacitor as claimed in claim 1, characterized in that the at least one intermediate capacitor element (30) assumes a smaller volume than each of the main capacitor elements (10).
3. The capacitor as claimed in claim 1, characterized in the main capacitor elements (10) are in mutual contact.
4. The capacitor as claimed in claim 1, characterized in that the main capacitor elements (10) are configured in the form of foil capacitors.
5. The capacitor as claimed in claim 1, characterized in that the intermediate capacitor element (30) is configured in the form of a foil capacitor.
6. The capacitor as claimed in claim 1, characterized in that, between the plurality of main capacitor elements (10), a plurality of interspaces (20) are constituted, wherein an intermediate capacitor element (30) is arranged in each of the interspaces (20).
7. The capacitor as claimed in claim 1, characterized in that an interspace (30) is constituted between four main capacitor elements (10) respectively, wherein an intermediate capacitor element (30) is arranged between said four main capacitor elements (10) in the interspace (20).
8. The capacitor as claimed in claim 7, characterized in that the intermediate capacitor element (30) engages with each of the four main capacitor elements (10) in the interspace (20).
9. The capacitor as claimed in claim 1, characterized in that the main capacitor elements (10) have respective longitudinal axes (L), and with respect to the longitudinal axes (L), are arranged in parallel with one another.
10. The capacitor as claimed in claim 9, characterized in that the intermediate capacitor element (30) has a longitudinal axes (Z), and with respect to the longitudinal axis (Z), is arranged in parallel with the longitudinal axes (L) of the main capacitor elements (10).
11. The capacitor as claimed in claim 1, wherein the capacitor (1) is an intermediate circuit capacitor for a multi-phase system.
12. The capacitor as claimed in claim 4, characterized in that the main capacitor elements (10) are configured in the form of flat windings.
13. The capacitor as claimed in claim 5, characterized in that the intermediate capacitor element (30) is configured in the form of a round winding.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] An exemplary embodiment of the invention is represented schematically in the drawing, and is described in greater detail in the following description. In the drawing:
[0016]
[0017]
DETAILED DESCRIPTION
[0018]
[0019] In the context of the present application, a capacitor element 10 is understood as a structure which, in isolation, can constitute a capacitor. Various capacitor technologies such as, for example, stacked capacitors, round-wound capacitors or flat-wound capacitors can be employed as capacitor elements 10.
[0020] In the exemplary embodiments, the capacitor elements 10 are configured in the form of foil capacitors. Foil capacitors comprise thin metal foils, which are separated by insulating foils in the form of a dielectric material. The foils are wound, as a result of which high capacitance values are achieved in limited structural volumes. By the winding of foils, the foil capacitor assumes the form of a winding. Foils are thus wound cylindrically about a winding axis, such that a round cylindrical winding is produced. If the round winding is compressed, to some extent, in the radial direction, a “flat winding” is produced. A capacitor element which is described as a round winding assumes a circular cross section, perpendicularly to the winding axis about which the foils are wound. A capacitor element which is described as a flat winding assumes an oval-shaped cross section, or a cross section in the shape of a quadrilateral with rounded corners, perpendicularly to the winding axis about which the foils are wound. The capacitor elements 10 represented in the exemplary embodiments according to
[0021] As represented in
[0022] The capacitor elements 10 are arranged such that their longitudinal axes L are oriented parallel to one another. In
[0023] The capacitor elements 10 which, in combination, constitute the capacitor 1, are all mutually connected in parallel, such that the capacitances of the individual capacitor elements 10 are added together. For the electrical contact-connection of the capacitor elements 10, in the present exemplary embodiment, the capacitor elements 10 are contact-connected at one end face, in an electrically conductive manner, to a first voltage level 2 and, at the second end faces of the capacitor elements 10 which are arranged opposite the first end faces of the capacitor elements 10, are contact-connected to a second voltage level. The capacitor elements 10 are thus arranged, for example, between the first voltage level 2 and the second voltage level. The capacitor 1 can be electrically contact-connected to the first voltage level 2 by means of electric terminals, and electrically contact-connected to the second voltage level by means of electric terminals. The capacitor elements 10 can be referred to as “main” capacitor elements to distinguish them from the “intermediate” capacitor elements described below.
[0024]
[0025] The intermediate capacitor elements 30, for example, are of an identical design, and one intermediate capacitor element 30 assumes a smaller volume than one capacitor element 10. Accordingly, one intermediate capacitor element 30 also assumes a lower capacitance than one capacitor element 10.
[0026] In this exemplary embodiment, the intermediate capacitor elements 30 are configured in the form of foil capacitors. The intermediate capacitor elements are preferably configured as round windings, as these can be inserted particularly effectively into the interspaces 20 between the capacitor elements 10.
[0027] If the capacitor 1 in the present exemplary embodiment is constituted of capacitor elements 10 in the form of flat windings, this produces interspaces 20 in which intermediate capacitor elements 30 of circular cross section can be particularly effectively inserted, and which occupy the interspace 20 in a particularly effective manner. Accordingly, a particularly high overall capacitance of the capacitor 1 can be achieved, with an equal structural space.
[0028] As represented in
[0029] The intermediate capacitor elements 30 are preferably configured in the form of foil capacitors, and particularly as round windings. The intermediate capacitor elements 30 thus assume a cylindrical shape, with a circular cross section.
[0030] The intermediate capacitor elements 30 are arranged such that their longitudinal axes Z are oriented in parallel with the longitudinal axes L of the capacitor elements 10. In
[0031] Naturally, further forms of embodiment and combined forms of the exemplary embodiments represented are also possible.