CAPACITIVE VOLTAGE-SENSOR ASSEMBLY
20230375597 ยท 2023-11-23
Inventors
Cpc classification
International classification
Abstract
A capacitive voltage sensor includes an electrode extending along a longitudinal axis, a tubular portion including a layer of electrically insulating material, a layer of electrically conductive material positioned radially inward of the layer of electrically insulating material in a direction toward the longitudinal axis, and an outer shield configured as a latticelike network and positioned radially outward of the layer of electrically insulating material in a direction away from the longitudinal axis. The layer of electrically conductive material, the layer of electrically insulating material, and the outer shield each surround and is spaced in a direction radially outward from the longitudinal axis and from a portion of the electrode. A mass of dielectric insulating material at least partially encapsulating the electrode and the tubular portion and fills through holes formed in the latticelike network of the outer shield.
Claims
1. A capacitive voltage sensor comprising: an electrode extending along a longitudinal axis; a tubular portion including a layer of electrically insulating material, a layer of electrically conductive material positioned radially inward of the layer of electrically insulating material in a direction toward the longitudinal axis, and an outer shield configured as a latticelike network and positioned radially outward of the layer of electrically insulating material in a direction away from the longitudinal axis, wherein the layer of electrically conductive material, the layer of electrically insulating material, and the outer shield each surrounds and is spaced in a direction radially outward from the longitudinal axis and from a portion of the electrode; and a mass of dielectric insulating material at least partially encapsulating the electrode and the tubular portion, wherein the mass of dielectric material fills through holes formed in the latticelike network of the outer shield, wherein the layer of electrically insulating material is configured to support the layer of electrically conductive material, and wherein the layer of electrically conductive material is positioned intermediate between a first axial end of the outer shield and a second opposite axial end of the outer shield such that a length of the layer of electrically conductive material along the longitudinal axis is less than a length of the outer shield along the longitudinal axis.
2. The capacitive voltage sensor assembly of claim 1, wherein the layer of electrically insulating material and the layer of electrically conductive material comprise a printed circuit board.
3. The capacitive voltage sensor assembly of claim 1, wherein the length of the layer of electrically conductive material is coextensive with a length of the layer of electrically insulating material along the longitudinal axis.
4. The capacitive voltage sensor assembly of claim 1, wherein a length of the layer of electrically insulating material along the longitudinal axis is less than the length of the outer shield.
5. The capacitive voltage sensor assembly of claim 1, wherein the layer of electrically insulating material and the layer of electrically conductive material are configured to form a monolithic body fixed to an inner surface of the outer shield.
6. A capacitive voltage sensor comprising: an electrode extending along a longitudinal axis; a tubular portion including a layer of electrically insulating material, a layer of electrically conductive material positioned radially inward of the layer of electrically insulating material in a direction toward the longitudinal axis, and a flexible outer shield configured as a latticelike network and positioned radially outward of the layer of electrically insulating material in a direction away from the longitudinal axis, wherein the layer of electrically conductive material, the layer of electrically insulating material, and the outer shield each surrounds and is spaced in a direction radially outward from the longitudinal axis and from a portion of the electrode; and a mass of dielectric insulating material at least partially encapsulating the electrode and the tubular portion, wherein the mass of dielectric material fills through holes formed in the latticelike network of the outer shield, wherein the layer of electrically insulating material is configured to support the layer of electrically conductive material to form a monolithic body fixed to an inner surface of the outer shield, wherein the layer of electrically insulating material and the layer of electrically conductive material are positioned intermediate between a first axial end of the outer shield and a second opposite axial end of the outer shield such that a length of the layer of electrically conductive material along the longitudinal axis is less than a length of the outer shield along the longitudinal axis and a length of the layer of electrically conductive material along the longitudinal axis is less than the length of the outer shield, and wherein the length of the layer of electrically conductive material is coextensive with the length of the layer of electrically insulating material.
7. The capacitive voltage sensor assembly of claim 6, wherein the latticelike network defines a first plurality of through holes, the layer of electrically insulating material includes a second plurality of through holes, and the layer of electrically conductive material includes a third plurality of through holes, and wherein the first plurality of through holes is in axial communication with the second and third pluralities of through holes.
8. The capacitive voltage sensor assembly of claim 7, wherein the second plurality of through holes comprises a first row of circumferentially spaced through holes and a second row of circumferentially spaced through holes and at least one through hole of the first row is aligned with a through hole of the second row in a direction parallel to the longitudinal axis, and wherein the third plurality of through holes comprises a first row of circumferentially spaced through holes and a second row of circumferentially spaced through holes and wherein at least one through hole of the first row is aligned with a through hole of the second row in a direction parallel to the longitudinal axis, and wherein at least one through hole of the second plurality of through holes is aligned with a through hole of the third plurality of through holes.
9. The capacitive voltage sensor assembly of claim 8, wherein the second plurality of through holes of the layer of electrically insulating material and the third plurality of through holes of the layer of electrically conductive material are configured as elongated slits that have a length extending in a direction parallel to the longitudinal axis;
10. The capacitive sensor element of claim 9, wherein each through hole in the second plurality of through holes has a first perimeter and each through hole in the third plurality of through holes has a second perimeter, and wherein the first perimeter is less than the second perimeter.
11. The capacitive voltage sensor assembly of claim 10, wherein the first axial end of the outer shield is open and the second opposite axial end of the outer shield is closed.
12. A capacitive voltage sensor assembly comprising: an electrode extending along a longitudinal axis; a flexible tubular shield surrounding and spaced in a direction radially outward from the longitudinal axis and from a portion of the electrode, wherein the tubular shield includes a first plurality of through holes; a circular sensor element positioned radially inward of the tubular shield, wherein the circular sensor element includes a printed circuit board having a layer of electrically insulating material and a layer of electrically conductive material, wherein the circular sensor element surrounds and is spaced in a direction radially outward from the longitudinal axis and from a portion of the electrode, wherein the layer of electrically insulating material includes a second plurality of through holes comprising a first row of circumferentially spaced through holes and a second row of circumferentially spaced through holes and at least one through hole of the first row is aligned with a through hole of the second row in a direction parallel to the longitudinal axis, wherein the layer of electrically conductive material includes a third plurality of through holes comprising a first row of circumferentially spaced through holes and a second row of circumferentially spaced through holes and wherein at least one through hole of the first row is aligned with a through hole of the second row in a direction parallel to the longitudinal axis, and wherein at least one through hole of the second plurality of through holes is aligned with a through hole of the third plurality of through holes, wherein the second plurality of through holes of the layer of electrically insulating material and the third plurality of through holes of the layer of electrically conductive material are configured as elongated slits that have a length extending in a direction parallel to the longitudinal axis; and a mass of dielectric material surrounding the tubular shield and the circular sensor element, wherein the mass of dielectric insulating material fills through holes of the first, second, and third plurality of through holes, wherein the layer of electrically insulating material and the layer of electrically conductive material form a monolithic body fixed to an inner surface of the tubular shield, and wherein a width of each through hole of the second plurality of through holes is less than a width of each through hole of the third plurality of through holes.
13. The capacitive voltage sensor assembly of claim 12, wherein the first plurality of through holes defines a latticelike network, and wherein the first plurality of through holes is in axial communication with the second and third plurality of through holes.
14. The capacitive sensor element of claim 12, wherein each through hole in the second plurality of through holes has a first perimeter and each through hole in the third plurality of through holes has a second perimeter, and wherein the first perimeter is less than the second perimeter.
15. The capacitive voltage sensor of claim 12, wherein a first axial end of the outer shield is open and a second opposite axial end of the outer shield is closed.
16. The capacitive voltage sensor of claim 12, wherein the layer of electrically conductive material is positioned intermediate a first axial end of the tubular shield and a second opposite axial end of the tubular shield such that a length of the layer of electrically conductive material along the longitudinal axis is less than a length of the tubular shield along the longitudinal axis.
17. The capacitive voltage sensor of claim 16, wherein the layer of electrically insulating material is positioned intermediate the first axial end of the tubular shield and the second opposite axial end of the tubular shield such that a length of the layer of electrically insulating material along the longitudinal axis is less than the length of the tubular shield along the longitudinal axis.
18. The capacitive voltage sensor of claim 12, wherein a length of the layer of electrically conductive material along the longitudinal axis is coextensive with a length of the layer of electrically insulating material along the longitudinal axis.
19. The capacitive voltage sensor of claim 12, wherein the width of each of the through holes of the second plurality of through holes is less than a width of each of the through holes of the first plurality of through holes.
20. The capacitive voltage sensor of claim 12, wherein each through hole of the second plurality of through holes is aligned with a through hole of the third plurality of through holes, and wherein a perimeter of each through hole of the second plurality of through holes is less than a perimeter of each through hole of the third plurality of through holes such that an annulus of insulating material is formed between the perimeter of each through hole of the second plurality of through holes and the perimeter of each through hole of the third plurality of through holes.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Further features and advantages of the present invention will be more evident from the following description of some of its preferred embodiments, here given merely by way of non-limiting example, with reference to the accompanying drawings in which:
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
DETAILED DESCRIPTION
[0020] With reference to the accompanying drawings, the constructive system object of the present invention is able to provide a capacitive electrical voltage sensor, wherein said sensor extends along an axis Y defined longitudinal.
[0021] With reference to
[0022] With reference to said source electrode 110/210 it has an elongated shape extending longitudinally along a longitudinal axis Y, in such a way as to configure a first axial end portion 111/211 and a second opposite axial end portion 112/212, in which the latter is opposite with respect to the first axial end portion 111/211.
[0023] With reference to the shielding tubular body 120/220, it has an elongate shape extending longitudinally along a longitudinal axis Y, so as to configure a first axial end portion 121/221 and a second opposite axial end portion 122/222.
[0024] The shielding tubular body 120/220 is preferably grounded and it is able to shield the electric field sensor 130/230 with respect to the field lines generated by live voltage conductors positioned externally with respect to the capacitive sensor, so that the field sensor 130/230 detects the field lines generated by the source electrode 110/210.
[0025] Said shielding tubular body 120/220 comprises a tubular mantle 123/223, wherein said mantle 123/223, configures an inner face 124/224 and an outer face 125/225 with respect to the central axis Y.
[0026] With reference to the electric field sensor 130/230, said electric field sensor 130/230 is radially spaced with respect and around said source electrode 110/210 as well as positioned within said shielding tubular body 120/220 and preferably positioned in a intermediate point comprised between the first axial end portion 121/221 and the second axial end portion 122/222 of said screening tubular body 120/220.
[0027] With reference to the mass of dielectric insulating material 140/240, said mass is able to incorporate the various elements of the sensor and, primarily and substantially, said shielding tubular body 130/230, said source electrode 110/210 and said electric field sensor 130/230, in order to positioning said elements and in order to form an electrically insulated carrier structure.
[0028] Also referring to
[0029] With reference to the second outer sheet 132/232 made by insulating material it is preferably bonded to the inner face 124/224 of the shielding element 120/220, for example, by glue points positioned on the outer face of the sheet 132/232 and on the internal face 124/224 of the shielding tubular body 120/220, or by other systems as described below.
[0030] With reference to the first internal sheet 131/231 made by conductive material, it is able to detect the electric field lines generated by the source electrode 110/210 and, more particularly, it is intended to form a capacitive coupling between said source electrode 110/210 and said first sheet 131/231.
[0031] In this context, said first sheet 131/231 may take various forms and/or dimensions and/or sizes which can be different with respect to those illustrated in the figures, without departing from the inventive concept of the present invention.
[0032] With reference to the second outer sheet 132/232 made by insulating material, it is able to support the inner sheet 131/231 in place, as well as able to electrically insulating the inner sheet 131/231 with respect to the shielding tubular body 120/220 and therefore, said second sheet 132/232 may take shapes and/or thickness and/or size and/or conformations different with respect of those illustrated in the Figures without departing from the inventive concept of the present invention.
[0033] With particular reference to
[0034] With reference to
[0035] With particular reference to
[0036] With reference to
[0037] If the fixing means 150 are not present, the electric field sensor comprises only the inner sheet 131/231 and the external sheet 132/232, associated with them, provided with through holes 133/233, and in this case it is provided to fix the outer foil 132/232 with respect to and/or against the inner face 124/224 of the shielding tubular body 120/220 by points of glue or other systems.
[0038] With particular reference to
[0039] With reference to
[0040] With reference to the above description, as the electric field sensor 130/230 is formed by a monolithic body comprising at least one first internal sheet 131/231 and a second external sheet 132/232 overlapped and joined together (glued, associated, bound) before of the their insertion into the shielding tubular body 120/220, there is no undesirable delamination dislocation/separation between said two sheets, thus solving the above-mentioned problems as well as solving other problems associated with the assembling of the sensor components before the casting, as the electric filed sensor 130/230 is easily and quickly secured/fixed in position by means of points of glue between the external face 137/237 of the external sheet 132/232 of the electric field sensor 130/230 and the internal face 124/224 of the shielding tubular body 120/220.
[0041] With reference to the particular embodiment of
[0042] The description of the various embodiments of the constructive system for a capacitive sensor are provided solely by ways of non-limiting example, and clearly, therefore, said system can be modified or varied in any way suggested by experience and/or by its use or application within the scope of the following claims. _The following claims also form an integrative part of the above description.
[0043] Various features of the invention are set forth in the following claims.