Circuit for conducting an electric current
09796348 · 2017-10-24
Assignee
Inventors
- Jakob SCHILLINGER (Gaimersheim, DE)
- Dietmar Huber (Rödermark, DE)
- Klaus Rink (Rodenbach, DE)
- Wolfgang Jöckel (Gersfeld, DE)
- Martin Haverkamp (Frankfurt, DE)
Cpc classification
G01R1/203
PHYSICS
G01R31/382
PHYSICS
B60R16/033
PERFORMING OPERATIONS; TRANSPORTING
Y10T29/49117
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
G01R31/364
PHYSICS
H05K13/00
ELECTRICITY
International classification
B60L1/00
PERFORMING OPERATIONS; TRANSPORTING
H05K13/00
ELECTRICITY
B60R16/033
PERFORMING OPERATIONS; TRANSPORTING
B60L3/00
PERFORMING OPERATIONS; TRANSPORTING
H02G3/00
ELECTRICITY
Abstract
The invention relates to a circuit for conducting an electric current, by an electrical component, between a vehicle battery and an electrical network component that can be connected to the vehicle battery. The circuit includes a first electrical line segment and a second line segment that is separated from the first line segment by a spacer. The line segments are connected to one another by the electrical component.
Claims
1. A circuit for conducting an electric current between a vehicle battery and an electrical network component, the circuit comprising: a first electrical line section; a second electrical line section connected to the first electrical line section via an electrical element; and a spacer separating the second electrical line section from the first electrical line section, wherein the first electrical line section and the second electrical line section are interlocked with one another on a first axis and on a second axis in a labyrinth to impede movement between the first electrical line section and the second electrical line section in the first axis and the second axis.
2. The circuit as claimed in claim 1, wherein the labyrinth interlocking of the electrical line sections is resilient.
3. The circuit as claimed in claim 1, wherein the spacer is a premold material.
4. The circuit as claimed in claim 3, wherein the premold material envelops a surface of the electrical line sections in such a way that an opening for making electrical contact with the electrical element remains free on the electrical line sections.
5. The circuit as claimed in claim 1, wherein a distance between the first electrical line section and the second electrical line section is dependent on a breakdown field strength of the spacer.
6. The circuit as claimed in claim 1, wherein contact areas on the electrical line sections for making contact with the electrical element are coated.
7. The circuit as claimed in claim 1, comprising the electrical element, which is covered by a protective compound.
8. The circuit as claimed in claim 1, wherein the electrical line sections are mounted on a component part mount, referred to as leadframe.
9. A method for producing a circuit for conducting an electric current between a vehicle battery and an electrical network component which can be connected to the vehicle battery via an electrical element, comprising: arranging a first electrical line section and a second electrical line section with a gap separating the first electrical line section from the second electrical line section, introducing a spacer into the gap, and bridging the gap having the spacer with the electrical element, with the result that the electrical element electrically connects the first and second electrical line sections to one another, wherein the first electrical line section and the second electrical line section are interlocked with one another on a first axis and on a second axis in a labyrinth to impede movement between the first electrical line section and the second electrical line section in the first axis and the second axis.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
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DETAILED DESCRIPTION
(7) Identical technical elements are provided with the same reference symbols in the figures and are only described once.
(8) Reference is hereby made to
(9) In the present embodiment, the circuits 2 are intended to be used for current sensors 6, yet to be described, which can be connected in series between a vehicle battery (not illustrated in any more detail) and an electrical consumer (not illustrated in any more detail) or between the vehicle battery and an electrical connection (not illustrated in any more detail) for charging the vehicle battery. In
(10) In the present embodiment, the leadframe 4 has two main rails 8, from which electrical busbars 10, also referred to as webs 10, protrude at right angles, wherein contact is made between said electrical busbars and electrical connections 12, 14, 16 (yet to be described) of the circuits 2. Index holes 18 are formed on the main rails 8, with it being possible to detect the longitudinal dimensions of the circuits 2 by measurement technology using said index holes in order to transport and separate the circuits 2 in automated fashion.
(11) In
(12) Hereinafter, two current sensors 6 on each circuit 2 bridge two of the line sections 20, 22, 24, with the result that an electrical current can flow either between the battery connection 12 and the consumer connection 14 or between the battery connection 12 and the electrical connection 16. In this way, a vehicle battery connected to the battery connection 12 can be discharged and possibly charged via the consumer connection 14 and charged and possibly discharged via the electrical connection 16.
(13) In the present embodiment, the current sensors 6 are mounted on one of the line sections 20, 22, 24 and electrical contact is also made between said current sensors and said line section and between said current sensors and the respective further line section 20, 22, 24 via a bond 26. In
(14) Furthermore, the line sections 20, 22, 24 can also connect EMC and ESD capacitors 28 and protective switching elements 30, which can be in the form of, for example, a protective diode, a protective capacitor or a protective varistor. The EMC capacitors are used for filtering undesired signal components from the current to be conducted and thus improve electromagnetic compatibility and resistance to electrostatic discharges. In
(15) Finally, temperature sensors 32 which can be provided for detecting a temperature of the circuit 2 in order to introduce suitable protective measures in the event of overheating of the circuit 2 can be arranged on the battery line section 12 and/or one of the other line sections 14, 16. In
(16) The above-described gap 25 is thus necessary for current measurement, for increasing electromagnetic compatibility (EMC) and resistance to electrostatic discharges (ESD) and for implementing the protective switching elements 30. It therefore needs to be ensured that the individual line sections 12, 14, 16 do not have any electrical contact with one another.
(17) On the other hand, the individual line sections 20, 22, 24 also require a certain mechanical hold with respect to one another, however. Otherwise, the bonding wires 26, the EMC capacitors 28 and the protective switching elements 30 would be subjected to excessively severe mechanical tensile loading, which could release the electrical contact between these elements or damage the elements themselves and could thus render the circuit 2 inoperative. In addition, the line sections 20, 22, 24 themselves can also be stressed and transfer these stresses to the electrical elements which are mounted on said line sections, such as the current sensors 6 and the temperature sensors 32, which in this case could also result in release of the electrical contact-making or damage to the elements themselves.
(18) In order to circumvent these disadvantages, in the present embodiment it is therefore proposed to interlock the line sections 20, 22, 24 with one another in labyrinth-like fashion and to embed said line sections in a premold compound 34, with the result that the premold compound 34 holds together the individual line sections 20, 22, 24 in an inflexible manner.
(19) This will be explained in more detail below with reference to
(20) As can be seen from
(21) In order to maintain the mechanical stability between the line sections 20, 22, 24, at least the gap 25 is cast with the premold compound 34. In the present embodiment, however, all of the line sections 20, 22, 24 are coated with the premold compound 34, wherein openings 40 remain into which the electrical elements mentioned above and shown in
(22) If, in the design shown in
(23) As a result of the fact that the premold compound 34 additionally also extends over the surface of the line sections 20, 22, 24, the line sections 20, 22, 24 are prevented from rotating inwards, resulting in surface tensions which could then be transferred to the abovementioned elements. Thus, an electrically and mechanically stable circuit 2 is provided which also meets very high demands in terms of reliability, as are expected in automotive engineering, for example.
(24) Reference is made to
(25)
(26) In the present embodiment, the current sensor 6 and the bonds 26 are surrounded by a protective compound 42 consisting of a glob-top or silicone gel material, which protective compound protects the current sensor 6 and the bonds 26 from the ingress of moisture and other impurities.
(27) The line sections 20, 22, 24 can be encapsulated by injection molding with the premold material 34, for example, with the result that some of the premold material 34 passes through the gap 25. Therefore, a relatively small accumulation of premold material 34 is located beneath the bond 26 in the region of the gap 25, and this accumulation provides additional anchoring for the line sections 20, 22, 24 in the premold compound 34.
(28) Reference is made to
(29) As can be seen in
(30) Reference is made to
(31) As can be seen in
(32)