Internal structure for an electrical heating device with heating element freely coiled at least in sections and electrical heating device
10880957 · 2020-12-29
Assignee
Inventors
Cpc classification
H05B2203/002
ELECTRICITY
H05B3/44
ELECTRICITY
International classification
H05B3/44
ELECTRICITY
H05B3/06
ELECTRICITY
Abstract
An internal structure for an electrical heating device includes an electrical heating element. The internal structure includes a connection section for holding an end section of the electrical heating element or a connecting wire, with which one of the two end sections is connected. A turnaround section is positioned opposite the connection section. A spacer runs between the connection section and the turnaround section and is topped by the turnaround section in a radial direction relative to the profile of the spacer. The turnaround section has, for a turned-around electrical heating element or for a turned-around connecting wire in the area topping the spacer, a connecting bar by means of which the electrical heating element or the connecting wire is guided and thus turned around, with this connecting wire being connected to an end section.
Claims
1. An internal structure for an electrical heating device having an electrical heating element freely coiled at least in sections, wherein the internal structure comprises: a connection section for holding at least one of two end sections of the electrical heating element freely coiled at least in sections and/or at least one connecting wire, with which at least one of the two end sections of the electrical heating element freely coiled at least in sections is connected, a turnaround section that is arranged opposite the connection section and at which the electrical heating element freely coiled at least in sections and/or the at least one connecting wire is turned around, with the at least one connecting wire being connected to at least one of the two end sections of the electrical heating element freely coiled at least in sections is connected, the turnaround section including a middle area and a connecting bar extending radially outwardly from the middle area, and a spacer that runs between the connection section and the turnaround section and is topped at least by the turnaround section at least in a radial direction relative to a profile of the spacer, wherein the electrical heating element freely coiled and/or the at least one connecting wire is turned around at the connecting bar, with the at least one connecting wire being connected to at least one of the two end sections of the electrical heating element freely coiled at least in sections.
2. The internal structure according to claim 1, wherein the connecting bar runs from the profile of the spacer in the radial direction.
3. The internal structure according to claim 1, wherein the electrical heating element freely coiled and/or the at least one connecting wire, with which at least one of the two end sections of the electrical heating elements freely coiled at least in sections is connected, is supported on the connection section so that a freely coiled section of the electrical heating element is tensioned.
4. The internal structure according to claim 1, wherein the connection section has at least one slot in which a section of the electrical heating element freely coiled and/or the at least one connecting wire is held.
5. The internal structure according to claim 1, wherein the turnaround section has, a lug at a distal end of the connecting bar for preventing slippage of the electrical heating element freely coiled and/or the at least one connecting wire.
6. The internal structure according to claim 1, wherein the connection section and/or the turnaround section has support surfaces for supporting internal structure on tubular metal sheathing of the electrical heating device.
7. The internal structure according to claim 1, wherein a position of the connection section and/or the turnaround section on the spacer is variable and there are fixing agents for fixing the connection section and/or the turnaround section.
8. The internal structure according to claim 1, wherein the at least one connecting wire forms the spacer.
9. The internal structure according to claim 1, wherein at least one of a controller, a sensor, and a detecting element is installed in the spacer or mounted on the spacer.
10. The internal structure according to claim 1, wherein the electrical heating element includes multiple electrical heating elements freely coiled at least in sections.
11. The internal structure according to claim 10, wherein at least some of the multiple electrical heating elements freely coiled at least in sections are separated galvanically and/or have different heat outputs and/or can be switched individually.
12. The internal structure according to claim 1, wherein the electrical heating element freely coiled at least in sections is connected in series with a thermal fuse.
13. The internal structure according to claim 1, wherein the internal structure is arranged in an interior of a tubular metal sheathing and is insulated from the tubular metal sheathing by an electrically insulating material.
14. The internal structure according to claim 13, wherein the electrically insulating material is impregnated.
15. The internal structure according to claim 13, wherein one of an outer contour and an inner contour of the tubular metal sheathing is adapted to an outer contour of the internal structure.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
(1) The foregoing summary, as well as the following detailed description of the invention, will be better understood when read in conjunction with the appended drawings. For the purpose of illustrating the invention, there are shown in the drawings embodiments which are presently preferred. It should be understood, however, that the invention is not limited to the precise arrangements and instrumentalities shown. In the drawings:
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DETAILED DESCRIPTION OF THE INVENTION
(8)
(9) The internal structure 100 has a connection section 120, a turnaround section 140 and a spacer 110 that runs between the connection section 120 and the turnaround section 140. The profile of the here rod-shaped spacer 110 or its center axis between the connection section 120 and turnaround section 140 defines a direction relative to which both the connection section 120 and also the turnaround section 140 top the spacer 110 in the radial direction, wherein the measure of this topping varies as a function of the respective polar angle.
(10) Furthermore, on the internal structure 100, electrical heating element 160 constructed as a resistive wire is arranged, whose end sections are connected in an electrically conductive and mechanical way to connecting wires 170a,170b. The connecting wires 170a,170b are each held in the connection section 120. Starting from the end section connected to the connecting wire 170a, there follow a first freely coiled area 161, a turnaround area 162, and a second freely coiled area 163 of the electrical heating element 160, before it is connected in its second end section to the connecting wire 170b.
(11) The basic geometric shapes of the connection section 120 and the turnaround section 140 are essentially identical in this preferred embodiment. Both have a middle area 121 and 141, respectively, in whose center they are connected detachably or permanently to the spacer 110. Starting from the middle area 121 and 141, three arms 122 and 142, respectively, extend outward in the radial direction, so that a three-count rotational symmetry is produced with respect to the center axis.
(12) This basic geometric shape is varied in different ways by different shaping of the arms 122 and 142.
(13) The arms 122 of the connection section 120 essentially have a circular sector-shaped design. They each have slots 123 in which the connecting wires 170a,170b are inserted and held from the side in the circumferential direction. This can be realized, in particular, such that the connecting wires 170a,170b locally have a larger cross section than the dimensions of the slots 123, as can be seen by comparing the sections of the connecting wires 170a,170b located on different sides of the connection section 120, so that this larger cross section is supported on the connection-side surface of the connection section 120. In this way, in particular, a defined mechanical stress on the electrical heating element 160 can be achieved.
(14) The end surfaces of the arms 122 of the connection section 120 are used as support surfaces 124, with which the internal structure 100 is supported on the tubular metal sheathing 15 of the electrical heating device 10. By means of the groove 125 present in the support surfaces 124 and holes 126, the filling of electrically insulating material into the volume that is still empty after the internal structure 100 has been inserted in the tubular metal sheathing 15 is also made easier or improved in the areas of the arms 122 of the connection section 120.
(15) The arms 142 of the turnaround section 140 each have three sections: a section 143 that becomes wider outward in the radial direction, a connecting bar 144 that runs in the radial direction and provides the turnaround area 162 for the electrical heating element 160, and a lug 145 that becomes wider relative to the connecting bar 144 and whose end side forms a support surface 146, with which the internal structure 100 is supported on the tubular metal sheathing 15 of the electrical heating device 10.
(16) The electrical heating device 20 shown in
(17) The internal structures 200, 300, 400, 500 shown in
(18) In
(19) The internal structure 200 according to
(20) On the other hand, the profile of the electrical heating element 260 that has the internal structure 200 as resistive wire differs from the internal structure 100. Indeed, in both cases there are three electrical heating elements 260 or 160, but in contrast to the electrical heating elements 160, the electrical heating elements 260 have only one freely coiled section 261 that is connected on its one side to a connecting wire 270a held in the connection section 220 and extends on its other side into a long connecting area 262 that is guided and turned around by means of a connecting bar 244 of the turnaround section 240, so that it runs through the coils of the freely coiled section 261 back in the direction toward the connection section 220 and is electrically contacted to a second connecting wire 270b held in this section.
(21) The internal structure 300 according to
(22) The internal structure 400 according to
(23) The internal structure 400 provides an asymmetrically arranged electrical heating element 460, whose end sections are connected in an electrically conductive and mechanical way with connecting wires 470a, 470b that are suspended and thus held as previously described in slots 423 provided in the arm 420 of the connection section.
(24) Starting from the end section connected to the connecting wire 470a, there follow a first freely coiled area 461, a turnaround area 462 that is provided by means of a connecting bar 444 of the turnaround section 440 running in the radial direction, and a second freely coiled area 463 of the electrical heating element 460, before it is connected in its second end section to the connecting wire 470b. As in the internal structure 100, here the end surfaces of the arms 420 and 440 are also used as support surfaces 424 and 446, respectively.
(25) The internal structure 500 according to
(26) It is understood that the connection sections and turnaround sections of all embodiments are each preferably made from an electrically insulating material.
(27) It will be appreciated by those skilled in the art that changes could be made to the embodiments described above without departing from the broad inventive concept thereof. It is understood, therefore, that this invention is not limited to the particular embodiments disclosed, but it is intended to cover modifications within the spirit and scope of the present invention as defined by the appended claims.