Overvoltage protection device having a thermal disconnection apparatus
09640352 · 2017-05-02
Assignee
Inventors
Cpc classification
H01T1/12
ELECTRICITY
H01T1/14
ELECTRICITY
H01H2037/762
ELECTRICITY
H01C7/126
ELECTRICITY
International classification
H01H37/76
ELECTRICITY
H01T1/14
ELECTRICITY
Abstract
An overvoltage protection device comprises at least one overvoltage protection unit having at least one contact lug as well as a mechanical disconnection apparatus that is activated in the event of a thermal overload. The mechanical disconnection apparatus comprises a connection element that can be moved from a closed position to a current-interrupting or voltage-disconnecting position by a slider that is preloaded by spring force.
Claims
1. An overvoltage protection device comprising: at least one overvoltage protection unit having at least one contact lug as well as a mechanical disconnection apparatus activated in the event of thermal overload, wherein the disconnection apparatus comprises a connection element able to be moved from a closed position into a current-interrupting or voltage cut-off position by a slider preloaded by a spring force; wherein the connection element consists of a pair of current-dividing metallic brackets, the ends of which directed toward the contact lug of the overvoltage protection unit extend in parallel and which receive the respective contact lug of the overvoltage protection unit between them; wherein the closed position between the connection element and the contact lug in the area of the parallel-extending ends of the brackets is fused by a solder or a thermally soluble adhesive, with the far ends of the brackets from the contact lug of the overvoltage protection unit further being connected together, enclosing a free space, and having a section in their further progression for external connector components; wherein the slider with a preload spring is inserted into the free space so that the spring pretensioning is oriented in the direction of the contact lug of the over-voltage protection unit, with the slider further being of a wedge shape or sections of the brackets forming an inclined surface in order to generate a force component on the parallel ends of the brackets when the slider moves such that they move away from the contact lug laterally; and wherein the ends of at least one of the brackets oriented toward the contact lug form a limit stop for a visual indicator pivotable about an axis, and wherein the pivoting motion is enabled when the ends of the parallel-extending brackets are moved away from the contact lug laterally by the slider.
2. The overvoltage protection device according to claim 1, wherein the pivotable visual indicator comprises a pawl projection as well as a signaling projection which gives way to a display area with color coding.
3. The overvoltage protection device according to claim 1, wherein a pawl projection butts against the limit stop of the at least one bracket during unhindered operation of the overvoltage protection unit.
4. The overvoltage protection device according claim 1, wherein the limit stop is formed as an integral projection.
5. The overvoltage protection device according to claim 1, wherein the pivotable visual indicator is held at a pretensioning by a spring rod.
6. The overvoltage protection device according to claim 1, wherein a supporting body is provided which accommodates a remote signaling contact slider in a bottom section, wherein its displacement path is blocked or enabled by a lateral projection of the slider depending on the position of said slider.
7. The overvoltage protection device according to claim 6, wherein the remote signaling contact slider is spring loaded, wherein the spring force vector exhibits no component of force toward the parallel ends of the brackets for lateral motion away from the contact lug.
8. The overvoltage protection device according to claim 6, wherein the supporting body has lateral guide surfaces comprising latching projections or engagement recesses for fixing a housing with a display window provided therein.
9. The overvoltage protection device according to claim 1, wherein a cavity for receiving an end of the spring is longitudinally positioned in the movable slider.
10. The overvoltage protection device according to claim 1, wherein the parallel-extending ends of the bracket are positionally fixed by the solder or adhesive, although separate in the disconnection process supported by a mechanical pretensioning.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The following will reference an embodiment as well as the figures in describing the invention in greater detail.
(2) The figures thereby show:
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(11) The following description of the figures will use the same reference numerals in each case, wherein details recognizably repeated in the figures will not be reiterated multiple times without thereby limiting the nature of the invention or involving a nuance of valence with respect to individual structural elements.
DETAILED DESCRIPTION
(12) Based on the above, it is thus the task of the invention to specify a further developed overvoltage protection device comprising at least one overvoltage protection unit having a mechanical disconnection apparatus which is or can be activated in the event of a thermal overload, which on the one hand exhibits positive effects in terms of current flow and the thereby associated forces upon a surge voltage and moreover enables functional separation of a visual indicator for the slider and its movement as necessary for the functional state of the overvoltage protection units employed. Furthermore, the possibility is provided to integrate a signaling device for monitoring the overvoltage protection unit status into the overvoltage protection device designed in particular as a plug-in component so that only minimum installation space is required and there is no appreciable mechanical loading of the thermal joint fused with solder or a thermally soluble adhesive.
(13) One therefore proceeds from an overvoltage protection device comprising at least one overvoltage protection unit, particularly a varistor, wherein the overvoltage protection unit has at least one contact lug. The overvoltage protection device moreover comprises a disconnection apparatus which is activated upon thermal overload, wherein the disconnection apparatus in turn comprises a connection element able to be moved from a closed into a current-interrupting or voltage cut-off position by a slider preloaded by spring force, wherein the connection element consists of a pair of current-dividing metallic brackets, the ends of which directed toward the contact lug of the overvoltage protection unit extend in parallel and which receive the respective contact lug of the overvoltage protection unit between them. The closed position between the connection element and contact lug in the area of the parallel-extending ends of the brackets is fused by a solder joint or a thermally soluble adhesive or other similar means.
(14) The far ends of the brackets from the contact lug of the overvoltage protection unit are connected together, enclosing a free space, and have a section in their further progression for external connector components, whereby the cited slider with preload spring is inserted into the free space so that the spring pretensioning is oriented in the direction of the contact lug of the overvoltage protection unit. The slider is preferentially of wedge shape and/or sections of the brackets form an inclined surface in order to generate a force component on the parallel ends of the brackets when the slider moves such that they move away from the contact lug laterally.
(15) Reference is made to DE 10 2007 042 991 B4 with respect to the design details of the slider and bracket, the disclosure of which is declared as being subject matter of the present teaching.
(16) In accordance with the invention, the ends of at least one of the brackets oriented toward the contact lug form a limit stop for a visual indicator which is pivotable about an axis, wherein the pivoting motion is then enabled when the ends of the parallel-extending brackets are moved away from the contact lug laterally with the help of the slider.
(17) In this embodiment of the invention, the position of the above-cited axis can be perpendicular to the path of movement taken by the slider, whereby expanded design options result for the arrangement of the visual indicator and, ultimately, the path traveled by the slider is uncoupled and separate from the movement or pivoting path of the visual indicator.
(18) In one embodiment of the invention, the pivotable visual indicator comprises a pawl projection as well as a signaling projection, wherein the signaling projection gives way to a display area with color coding. The display area can hereby have a curved surface in order to maintain approximately the same distance relative to a display window depending on the pivot position.
(19) During unhindered operation of the respective overvoltage protection unit in the respective overvoltage protection device, the pawl projection butts against the limit stop of the at least one bracket; i.e. the bracket blocks the movement of the pawl along with the pivotable visual indicator.
(20) In one preferential embodiment of the invention, the above-cited limit stop can be formed as an integral or integrally molded projection relative to the corresponding end of the bracket. Since the brackets used for the disconnection apparatus are preferentially a punched/bent sheet metal part, the desired design to the projection can be readily realized in the punching process without technical complexity.
(21) The pivotable visual indicator is pretensioned by a spring element, particularly one designed as a spring rod, such that when the pawl projection releases, the spring element moves the pivotable visual indicator into a predetermined pivoted position such that the e.g. red signal code of the visual indicator is brought into the area of the cited display window, signaling the interruption/disconnection process.
(22) The preload spring element for the pivotable visual indicator also holds the latter in the respective position after disconnection has been effected; i.e. the red color code also remains in the display window upon mechanical manipulations such as rotation, vibration, etc.
(23) The invention furthermore provides a supporting body for the overvoltage protection device which can be realized as a plug-in component, said supporting body accommodating a remote signaling contact slider in a bottom section.
(24) The displacement path of the remote signaling contact slider is blocked or enabled by a lateral projection of the disconnection slider depending on its position. The remote signaling contact slider is hereby spring loaded, whereby the spring force vector exhibits no component of force toward the parallel ends of the disconnection apparatus brackets for lateral motion away from the contact lug.
(25) Structurally, the supporting body has lateral guide surfaces comprising latching projections or engagement recesses for fixing the housing with the display window. In conjunction hereto, the housing has complementary engagement recesses or latching projections on its corresponding side surfaces.
(26) In the invention as configured, a cavity for receiving an end of the preload spring is positioned in the longitudinal direction of the movable slider for the disconnection apparatus such that the spring is securely held. The complementary end of the spring can be guided by a rivet concurrently serving to connect a section of the metallic bracket to an external connecting part. A spot welding is equally possible.
(27) As mentioned above, the ends of the bracket extending in parallel can be positionally fixed by a solder or a thermal adhesive, although are designed to separate in the disconnection process supported by a mechanical pretensioning.
(28) The overvoltage protection unit, particularly a varistor, incorporated into the overvoltage protection device can be connected to the supporting body by a screw connection in order to prevent external forces from acting on the electrically relevant contact points. This screw connection also reduces external forces on the electrical connecting points including the thermal disconnection point, e.g. occurring in transport or other forces such as vibrations or the like.
(29) The cited functional separation of the visual indicator and the actual disconnection apparatus with slider further provides the advantage of the disconnection process not being hindered by any possible blockage of the visual indicator movement.
(30) The structural separation of the disconnection apparatus, the remote signaling contact control and the visual indicator can moreover effect a completely individual dimensioning of the spring preload force required in each case.
(31) In the perspective side view according to
(32) The connection element forming the disconnection apparatus consists of a pair of parallel-extending, current-dividing metallic brackets 1, 1, their ends directed toward a contact lug 14 and receiving the respective contact lug 14 between them. A solder 3 or a thermally soluble adhesive or other such means secures the closed position between the connection elements and the contact lug 14 in the area of the parallel extending ends of the bracket 1.
(33) As is evident from
(34) The slider 4 has a wedge shape. Additionally or alternatively, corresponding sections of the brackets 1, 1 forming an inclined surface are realized in order to create a force component on the parallel extending ends of the brackets 1, 1 upon movement of the slider so that they will move away from the contact lug 14 laterally.
(35) Reference numeral 9 in
(36) The
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(38) Guide surfaces 25, which are a lateral component of the supporting body 11, comprise a latching projection in the example shown which forms a connection with a complementary engagement recess of the housing 6 and thus fixes the housing 6 to the supporting body 11 (see
(39) The depiction of
(40) The separation-malfunction operating condition can be comprehended on the basis of the
(41) Similarly, the movement of the slider 4 upward in the figurative representation also moves the projection 24 of the slider 4 away from the remote signaling contact slider 16 so that the slider 16 can move to the right, left side of the
(42)
(43) As a detail depiction of the position of the slider 4 upon disconnection,
(44) The tooth height to the cog-like ends of the slider 4 is hereby also configured commensurate to the relevant height dimension of the contact lug 14.
(45) The
(46) Should the slider 4 move upward in the figurative representation, the remote signaling contact slider 16 can move to the right in the left part of the
(47) The above comments on
(48) In summary, the ends of at least one of the brackets 1, 1 facing the contact lug 14 form a limit stop for the visual indicator 17 able to pivot about axis 10. The pivoting motion is then enabled when the parallel extending ends of the brackets 1, 1 move laterally to the contact lug 14 by means of the slider 4.
(49) The pivotable visual indicator 17 comprises the depicted pawl projection 18 as well as a signaling projection 19 which gives way to the display area 20 having the appropriate color coding.
(50) The pawl projection 18 butts against the limit stop of the at least one bracket 1, 1 in normal operation. The limit stop can be configured as for example in
(51) The pivotable visual indicator 17 is held at a pretensioning by a spring rod 8.
(52) The supporting body 11 depicted in the figures comprises the remote signaling contact slider 16 in its bottom section 23, whereby the displacement path is blocked or enabled by the lateral projection 24 of the slider 4 depending on the position of the slider 4.
(53) The remote signaling contact slider 16 is likewise pretensioned, whereby the spring 26 is inserted into the slider hereto and braced against a corresponding bottom section 23 area of the supporting body 11. However, the spring preload exerts no force toward the parallel ends of the brackets 1, 1 for lateral motion away from the contact lug 14. The disconnection point is thus not thereby subjected to unnecessary constant mechanical load or forces.
(54) The cavity in slider 4 for receiving the preload spring 2 of the slider is recognizable in the left part of the
LIST OF REFERENCE NUMERALS
(55) 1 bracket 2 spring 3 solder joint 4 slider 5 pivotable display 6 housing 7 varistor 8 spring for visual indicator 9 external plug connection 10 axis of rotation 11 supporting body 12 section 13 connector 14 varistor contact lug 15 screw connection for varistor 16 slider for remote signaling contact 17 visual indicator 18 pawl projection 19 signaling projection 20 display area 21 display window in housing 22 projection/limit stop 23 bottom section of supporting body 24 slider projection 25 guide surface 26 spring of remote signaling contact slider 27 coding pin 25 rivet head or stamped element