Method for producing a PTC heating element
10892590 · 2021-01-12
Assignee
Inventors
Cpc classification
H01R43/16
ELECTRICITY
H05B2203/02
ELECTRICITY
International classification
H01R43/04
ELECTRICITY
H01R43/16
ELECTRICITY
H05B3/06
ELECTRICITY
Abstract
A method is disclosed for producing a PTC heating element comprising a PTC element and contact plates which are contacted to face side surfaces of the PTC element in an electrically conductive manner such that the PTC element is, at its face side surfaces, reliably electrically contacted to contact surfaces. The contact plates are connected to one another by way of electrically insulatable bridge elements while leaving a seat free for the PTC element. The method includes deforming the contact plates to shape or form a contact projection abutting against one of the face side surfaces.
Claims
1. A method for producing a positive temperature coefficient (PTC) heating element, comprising: providing a PTC element; providing contact plates for contacting face side surfaces of said PTC element in an electrically conductive manner; connecting said contact plates to one another by way of electrically insulating bridge elements while leaving a seat free for said PTC element; inserting said PTC element into said seat; and shaping a contact projection by deforming said contact plates, said contact projection abutting against one of said face side surfaces.
2. The method according to claim 1, wherein each of said contact plates is provided with a contact spring bar prior to the insertion of said PTC element into said seat, and wherein said contact spring bar of each contact plate is deformed in the direction toward said PTC element after the insertion of said PTC element into the seat.
3. The method according to claim 1, wherein said contact plates, when deforming said contact projection, are received in a tool which abuts against outer surfaces of said contact plates.
4. The method according to claim 3, wherein said tool provides a butment supporting said PTC element during the deformation.
5. The method according to claim 1, further comprising overmolding said contact plates after the deformation.
6. The method according to claim 5, wherein an insulation layer is applied to said PTC element prior to the overmolding and, wherein said contact plates and said insulation layer are enclosed at an edge by a plastic frame during the overmolding.
7. The method according to claim 1, wherein said bridge elements are connected to said contact plates by overmolding.
8. The method according to claim 7, wherein said contact plates are extended on one side beyond one of said bridge elements in order to form contact lugs.
9. A method for producing a PTC heating element that comprises a PTC element and contact plates, which are contacted to face side surfaces of said PTC element in an electrically conductive manner, the method comprising: connecting said contact plates to one another by way of electrically insulatable bridge elements while leaving a seat free for insertion of said PTC element; and deforming said contact plates to form a contact projection configured to abut against one of said face side surfaces.
10. The method according to claim 9, wherein each of said contact plates is provided with a contact spring bar prior to the insertion of said PTC element into said seat, and wherein said contact spring bar of each contact plate is deformed in the direction toward said PTC element after the insertion of said PTC element into the seat.
11. The method according to claim 9, wherein said contact plates are received in a tool which abuts against outer surfaces of said contact plates when said contact plates are deforming said contact projection.
12. The method according to claim 11, wherein said tool provides an abutment supporting said PTC element during the deformation.
13. The method according to claim 9, further comprising overmolding said contact plates with a layer of a material after the deformation.
14. The method according to claim 13, further comprising applying an insulation layer to said PTC element prior to the overmolding; and enclosing said contact plates and said insulation layer at an edge by a plastic frame during the overmolding.
15. The method according to claim 9, wherein said bridge elements are connected to said contact plates by overmolding.
16. The method according to claim 15, wherein said contact plates are extended on one side thereof beyond one of said bridge elements in order to form contact lugs.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further details and advantages of the present invention shall become apparent from the following description of an embodiment in combination with the drawing. Therein, the figures show different phases within the framework of the production of a PTC heating element, where
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DETAILED DESCRIPTION
(9)
(10) In the illustration according to
(11) The bridge elements 12, 14 each form spacers 18 which protrude into a seat 20 formed between the two sheet metal strips 2a, 2b and the bridge elements 12, 14. A PTC element 22 to be inserted into the seat 20 and provided in
(12) The intermediate product shown in
(13) On its inner surface, the insulation layer 26 can be provided with electrically well conductive adhesive. It can be completely or partially filled with highly thermally conductive particles in order to improve thermal conductivity of the adhesive. The PTC element 22 is placed onto the surface of the insulation layer 26 thus prepared (
(14) Thereafter, conical pins 30 engage in the longitudinal slots 6. For this purpose, they each have an idealized circular extension 32 which can be seen in
(15) Thereafter, the pins 30 are withdrawn. The housing 36 is removed from the tool 24. Finally, the further insulation layer 28 is placed onto the PTC element 22 in order to create an intermediate product in which the oppositely disposed main side surfaces of the PCT [sic] element 22 are each covered by one of the insulation layers 26, 28. This intermediate product is shown in
(16) The intermediate product shown in
(17) This plastic material can be TPE, silicone, a duromer or an elastomer. Good wetting of the insulation layers 26, 28 by the respective plastic material is of particular importance. The plastic material is overmolded while omitting substantially the main side surfaces of the insulation layer 26, 28 The overmolded plastic material then results in a plastic frame which substantially leaves free the main side surfaces of the insulation layers 26, 28 and forms a window 40 in which the insulation layers 26, 28 are exposed. However, the circumferential edges of the insulation layers 26, 28 are sealed by the material of the plastic frame and a seal of the insulation layers 26, 28 against the plastic frame 38 arises accordingly. As illustrated in
(18) The sealing beads 46 are provided circumferentially surrounding the plastic material of the upper bridge element 12. As a result, the contact force within the female plug element seat is improved.
(19) The product according to the invention is characterized in that the PTC element 22 is reliably contacted with its oppositely disposed face side surfaces 34. The contact surfaces 10 of the sheet metal strips 2a, 2b are there not only in abutment against the PTC element 22 in a press-fit manner. Instead, an elastic deformation is impressed upon the contact spring bar 8 by the lateral spacing between the convex contact surface 10 and the extension 32 receiving the pin 30, with which any possible settling and/or thermal expansion within the PTC heating element 42 during operation can be compensated. The heat-generating cell with the two current-carrying sheet metal strips 2a, 2b connected to different polarities and the PTC heating element 22 are sealed fully circumferentially by the plastic frame 38, since the plastic frame 38 only leaves the insulation layers 26, 28 free.
(20) The bridge elements 12, 14 can also be in a plugged connection with the sheet metal strips 2a, 2b. The attachment between the bridge elements 12, 14 and the sheet metal strips 2a, 2b can be effected, for example, by welding or gluing. Also, positive-fit connections are conceivable. In addition, the bridge elements 12, 14 can each be of a multipart design, where the multiple parts of a single bridge element can be joined together enclosing the sheet metal strips 2a, 2b. The sheet metal strips 2a, 2b in this joining are preferably locked in a positive-fit manner within the bridge element or bridge elements.
(21) Furthermore, it is conceivable to provide several seats 20 one behind the other in the direction of extension of the sheet metal strips 2a, 2b. For this purpose, the sheet metal strips are each provided with several bridge elements in the longitudinal direction, where a seat is provided between each of the adjacent bridge elements.
(22) The PTC heating element 42 illustrated is suitable as a PTC heating element in a fluid heater. Due to the plastic frame 38, there is no risk that the fluid to be heated reaches the PTC element. In this case, the sealing bead 46 is sealingly received in a partition wall, and the lower bridge element 14 protruding beyond the plastic frame 38 can be received in a receptacle recessed at the bottom of the circulation chamber. As a result, the PTC heating element 42 can be held in a predetermined arrangement and orientation within a fluid heater, as is known in principle from EP 2 607 121 B1, EP 2 440 004 B1 or EP 1 921 896 from the applicant.