Voltage sensor device
09797930 · 2017-10-24
Assignee
Inventors
- Jaromir Podzemny (Brno, CZ)
- Marek Pavlas (Otnice, CZ)
- Miroslav Hrabcik (Nemcice nad Hanou, CZ)
- Radek Javora (Brno, CZ)
Cpc classification
G01R27/02
PHYSICS
International classification
G01R27/08
PHYSICS
G01R27/02
PHYSICS
Abstract
An exemplary voltage sensor device includes at least one high voltage segment and at least one low voltage impedance element. In order to enhance the power dissipation due to impedances spread inside of the device body, the sensor device can be adapted or extended such that at least one high voltage segment, and at least one low voltage impedance element are arranged on an elongated insulating support with adaptive complementary mechanical and electrical interconnection elements on at least one end of the support element. The mechanical and electrical interconnection elements provide a manner of interconnecting at least two elongated insulating supports together in a pivotable way.
Claims
1. A voltage sensor device, comprising: a first segment and a second segment, each segment comprising an elongated insulating support with a connection hole through which the first and second segments are fixed to each other, the first and second segments being pivotal relative to each other around the connection holes; the first and second segments each comprising an impedance element, the impedance element of each first and second segment being flat and arranged on one or both sides of the respective elongated insulating support without being coiled around the respective elongated insulating support; and the elongated insulating support of the first segment having a conductive element with a hole and an arc-shaped opening, one end of the impedance element of the first segment being electrically connected to the conductive element through the hole, and one end of the impedance element of the second segment being electrically connected to the conductive element through the arc-shaped opening.
2. The voltage sensor device according to claim 1, wherein the first and second segments are low voltage impedance elements arranged with a relative position under an angle which is smaller than 180°.
3. The voltage sensor device according to claim 1, wherein a resulting value of low voltage impedance can be built up together from at least one standard impedance value of the first and second segments.
4. The voltage sensor device according to claim 1, wherein the impedance elements are either resistive elements or capacitive elements or combination of both.
5. The voltage sensor device according to claim 1, wherein the first and second segments comprise low voltage impedance elements that are connected with the at least one high voltage segment in parallel and/or in series based on a specified impedance value.
6. The voltage sensor device according to claim 1, further comprising a plurality of impedance elements connected to the first or second segment that are assembled into at least one fixed configuration having with at least one fixed dimension and at least one fixed angle between elements, the at least one fixed configuration having a main fixed insulating support.
7. The voltage sensor device according to claim 6, wherein the main fixed insulating support mechanically reduces the number of elements by breaking or cutting off the unused part of said support.
Description
DESCRIPTION OF THE DRAWINGS
(1) The disclosure and its embodiments will become apparent from the example and its embodiments described below in connection with the appended drawings which illustrate:
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DETAILED DESCRIPTION
(8) Exemplary embodiments of the present disclosure enhance the power dissipation due to impedances spread inside of the device body.
(9) According to an exemplary embodiment of the present disclosure, the sensing element is adaptive and/or extendable such that at least one high voltage segment and at least one low voltage impedance element are arranged on an elongated insulating support (30) with adaptive complementary mechanical and electrical interconnection elements (71-79) on at least one end of the support element, in order to interconnect at least two such support elements together in a pivotable way.
(10) According to another exemplary embodiment the sensor device can be dimensionally adapted by the aforesaid adaptive mechanical and electrical interconnection system and/or pivoted by an angle among the segments or supports.
(11) A further exemplary embodiment provides that the segmentation and placement of impedance elements allows a relative position under an angle which is smaller than 180°.
(12) According to another exemplary embodiment disclosed herein, the resulting value of impedance of the impedance elements can be built up together from standard impedance elements values.
(13) Furthermore, the impedance elements can be either resistive elements or capacitive elements or combination of both.
(14) In an exemplary embodiment of the present disclosure, the impedance elements are connected within given segment in parallel and/or in series, providing required impedance value.
(15) According to another exemplary embodiment, the elements can be assembled into at least partly fixed configuration with at least partly given dimensions and at least partly fixed angle between elements, having main fixed insulating support consisting of several elements and/or further possible connection to other separate elements.
(16) A further exemplary embodiment provides that the fixed insulating support can be reduced in size by mechanically reducing the number of elements through a breaking or cutting off the unused part of said support.
(17) Exemplary embodiments disclosed herein provide an adaptive voltage sensing element assembled from segments 10.
(18) The exemplary embodiments described above allows an adaptation of dimensions 60 of voltage sensing element.
(19) The impedance 20 can be placed on one side, both sides or alternately on one and the other side (e.g., opposite sides) of the insulation support 30. In addition to providing space benefits the exemplary device described herein provides, better power dissipation due to impedances spread inside of the device body 3, better power dissipation due to impedance placement on both sides of the insulating support 30, longer creepage distance of the functional parts, and a resulting value of the impedance can be assembled from standard values (rows) thereby decreasing final costs.
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(21) Insulating support 30 has in addition two small holes 76 and 77. The output wire 21 from impedance element 20 passes through one of these holes, depending on size and configuration of selected impedance element 20. On the other side of insulating support 30 there are two conductive elements 78 and 79. Each of them has one hole 72 and 74 respectively, which size corresponds to the holes 76 and 77 on the other side, and one oval opening 70 and 73, respectively. These holes and openings are provided for electrical interconnection of impedance elements 20 on different segments. Under a condition where hole 72 is used for soldering of one end of impedance element on the conductive element 78 of the insulating support 30, one end of impedance element from the other segment should be connected to the same conductive element 78, and soldered through the oval opening 70, or arc-shaped opening 70, in order to provide necessary electrical interconnection. Oval opening 70 allows soldering of resistive element 20 in a place that is the most suitable for set angle 50.
(22) Under a condition in which longer impedance element 20 is used, conductive element 79 could be used instead of conductive element 78 and/or hole 76 could be used instead of hole 77 on the other side of insulating support 30.
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(24) Connection with gap can be used in case the impedance elements are not too long. In such a case all impedances could be placed on the same side of all segments as there is no space constraint. Alternating side placement could be applied as well, in order to achieve better power dissipation from impedance elements used.
(25) Under the condition of long impedance, crossed connection according to
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(28) In order to reach a specified value for impedances designed for a voltage divider application, impedance elements could be assembled to the segments 10 and these segments connected in series, thus increasing total impedance of the divider. In order to decrease production costs or to maintain power levels, it can be advantageous to use standard, and thus cheaper, impedance elements which are connected within given segment in parallel and/or in series, providing required impedance value.
(29) Preferred solution of impedance divider is using resistive elements, but it can use also capacitive elements or even combination of both.
(30) Thus, it will be appreciated by those skilled in the art that the present invention can be embodied in other specific forms without departing from the spirit or essential characteristics thereof. The presently disclosed embodiments are therefore considered in all respects to be illustrative and not restricted. The scope of the invention is indicated by the appended claims rather than the foregoing description and all changes that come within the meaning and range and equivalence thereof are intended to be embraced therein.
POSITION NUMBERS
(31) 1 High voltage impedance; resistor part 2 Low voltage impedance 3 Insulating sensor body 10 Segment 20 impedance element, resistive element 21 connector 30 insulating support 40 connection system 50 change angle 60 dimensions 70 oval opening 71 hole 72 hole 73 oval opening 74 hole 75 hole 76 hole 77 hole 78 conductive element 79 conductive element 100 fixed element 110 fixed element 120 angle