A DEVICE FOR MEASURING PHYSICAL QUANTITIES ON ELECTRICAL CONDUCTOR CABLES WITH OUTER PERIMETRAL INSULATION
20180375226 ยท 2018-12-27
Inventors
Cpc classification
H01R4/2404
ELECTRICITY
H01R4/24
ELECTRICITY
International classification
H01R4/2404
ELECTRICITY
H01R4/64
ELECTRICITY
Abstract
A device for measuring physical quantities on electric conductors, comprising a casing suitable for assembly on the outside of the conductor via clamping and fastening means, a metallic punch that can be lodged in the metallic core of the conductor for taking measurements and sensing electronics associated to a printed circuit board wherein the metallic punch passes tightly through a support base, the sensing electronics made up of measuring chips encapsulated with multi-chip modular (MCM) technology being fastened on the outside of said support base. The measuring device is used in a remote control and management system of an electrical installation, to optimize the conditions of safety, consumption, energy efficiency, predictive maintenance and CO.sub.2 emissions; all this in industrial facilities, buildings and dwellings.
Claims
1. A device for measuring physical quantities (1) on an electrical conductor cable (2) with outer perimetral insulation (2.2), comprising: a casing (10) that can be mounted on the outside of the electrical conductor cable (2) via clamping and fastening means (10.1), a metallic punch (3) that lodges itself into the metallic core (2.1) of the electrical conductor cable (2), by piercing the outer perimetral insulation (2.2) of said conductor cable (2) to take measurements, a printed circuit board (4) comprising a modem (5) that sends/receives data via encoded signals, sensing and data processing electronics (6) associated to the printed circuit board (4), characterised in that the metallic punch (3) comprises a central portion (3.1) that pierces in a fitted manner a support base (7) of the metallic punch (3); outside of said support base (7) are attached the sensing electronics (6) comprising encapsulated chips with multi-chip modular technology (MCM) to measure physical quantities on the electrical conductor cable (2).
2. A device according to claim 1, wherein the sensing electronics (6) comprise a thermal chip that performs temperature measurements on the electrical conductor cable (2) at different depths according to the radius thereof.
3. A device according to any of the previous claims, wherein the sensing electronics (6) comprise an accelerometer and gyroscope chip that measures the vibrations transmitted by the electrical conductor cable (2).
4. A device according to any of the previous claims, wherein the sensing electronics (6) comprise an inductometer chip that performs 3D measurements of the magnetic field on the electrical conductor cable (2) for magnetographic representation, both analogical and digital.
5. A device according to any of the previous claims, wherein the sensing electronics (6) comprise a magnetoresistive chip that measures values of the current circulating through the electrical conductor cable (2) according to the electric resistance or impedance caused by the magnetic field induced by the current itself that is circulating through said electrical conductor cable (2).
6. A device according to any of the previous claims, wherein the sensing electronics (6) comprise an electrical network analyser chip that integrates measurements of voltage, intensity and wave shape, measured in the electrical conductor cable (2), including the corresponding harmonics and eventual micro-cuts in power supply.
7. A device according to any of the previous claims, wherein the sensing electronics (6) comprise at least one chip that performs measurements of smoke, ionizing radiation, gases, liquids, solids, weight, pressure, humidity, flow rate, density, viscosity, colorimetry and/or luminosity outside the electrical conductor cable (2).
8. A device according to claim 1, wherein the central portion (3.1) of the metallic punch (3) comprises a threaded section (3.11) that threads onto the support base (7).
9. A device according to claim 1, wherein the metallic punch (3) slides inside a guide of dielectric material (8) with the free end sharpened into a needle shape that when it pierces the outer perimetral insulation (2.2) of the electrical conductor cable (2) forms a dielectric passage for the metallic punch (3) that connects the sensing electronics (6) with the metallic core (2.1) of the conductor cable (2).
10. A device according to claim 9, wherein the guide of dielectric material (8) is radially shot towards the inside of the electrical conductor cable (2) piercing its outer perimetral insulation (2.2) when a thrusting means (9) is released.
11. A device according to claim 10, wherein the thrusting means (9) is a spring (9.1) or a gas piston (9.2).
12. A device according to claim 1, wherein the clamping and fastening means (10.1) comprise a hook shaped pivoting arm (10.11) that clasps and holds the electrical conductor cable (2) against a v-shaped seat (10.21) of a casing body (10.2) of the casing (10).
13. A device according to claim 12, wherein the pivoting arm (10.11) is joined to the casing body (10.2) via a rotation axis (10.111) with a locking mechanism (11) of the ratchet kind, the locking mechanism (11) adjusts the assembly of the device (1) to the outer diameter of the electrical conductor cable (2), allowing its solid and fitted fastening to the same.
14. A device according to claim 1, wherein the metallic punch (3) comprises an actuating head (3.2) that is adapted in order to receive a manual or an automatic tool.
15. A device according to claim 1, wherein the modem (5) comprises power line communications (PLC) technology, and the encoded signals are sent/received via the electrical conductor cable (2) into which the metallic punch (3) is driven.
Description
DESCRIPTION OF THE DRAWINGS
[0020] This specification is supplemented with a set of drawings illustrating the preferred embodiment, which are never intended to limit the invention.
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
DETAILED DESCRIPTION OF THE INVENTION
[0029] We shall now describe a preferred embodiment of the invention that is descriptive and non-limiting, based on the accompanying drawings.
[0030] As shown in
[0035] Preferably, as seen in
[0036] Similarly, we prefer that the pivoting arm (10.11) is joined to the casing body (10.2) via a rotating shaft (10.111) with a locking mechanism (11) of the ratchet kind, by which the device (1) is adjusted and fastened to the corresponding outer diameter of the electrical conductor cable (2).
[0037] The combination of the V-shaped seat (10.21) and the hook-shaped pivoting arm (10.11) with the locking mechanism (11) allows achieving a solid and tight fastening of the measuring device (1) to the electrical conductor cable (2) regardless of the outer diameter of the cable.
[0038] With respect to the metallic punch (3), we prefer it to slide inside a guide of dielectric material (8) such as ceramic, for example, carbon fibre, or any other dielectric material of great hardness and strength, with the free end having a needle shape, that is, with a sharp tip with a bevelled end shape.
[0039] Before lodging the metallic punch (3) in the metallic core (2.1) of the conductor cable (2) the guide in dielectric material (8) is shot or fired radially towards the inside of said conductor cable (2) by releasing thrusting means (9) such as a spring (9.1), for example, as shown in
[0040] The release of the thrusting means (9) can be performed manually or automatically after activating the locking mechanism (11) of the pivoting arm (10.11); for example, by pushing the shell consisting of the casing (10) (pivoting arm (10.11) plus casing body (10.2)) of the device (1) against the electrical conductor cable (2), the latter placed against the V-shaped seat (10.21) of the casing body (10.2). Then, since the conductor cable (2) is firmly held between the pivoting arm (10.11) and the seat (10.21) of the casing (10) and the thrusting means (9) are released, the sharp guide in dielectric material (8) is fired against said electrical conductor cable (2), piercing all the insulation and protection layers or the metallic mesh for reinforcement and/or electromagnetic insulation (2.21) that may form the outer perimetral insulation (2.2) of said conductor cable (2) to thus establish a dielectric tunnel between the sensing electronics (6) of the device (1) and the metallic core (2.1) of the conductor cable (2) eliminating the chance of short-circuits with said metallic mesh (2.21) that may surround said electrical conductor cable (2).
[0041] That is, that as shown in
[0042] Similarly, as shown in
[0043] Thus, the metallic punch (3) can slide in a tight manner through the support base (7), the latter allowing holding the metallic punch (3) while it becomes lodged inside the metallic core (2.1) of the conductor cable (2), at the same time as it guarantees the continuity (both electrical and thermal) necessary for the sensing electronics (6) to perform the corresponding measurements of the physical quantities on the metallic core (2.1).
[0044] In a preferred embodiment, shown in
[0045] Preferably, the metallic punch (3) comprises, on the end opposite the lodging tip (3.3) an actuating head (3.2) adapted to receive the tip of a screwdriver or other manual or automatic tool (not shown in the figures). The actuation on said head (3.2) makes the metallic punch (3) slide through the support base (7) and the guide in dielectric material (8) so that it penetrates and lodges itself in the metallic core (2.1) of the electrical conductor cable (2). The measuring device (1) may include a standard optical indicator, LED or the like (not shown in the figures), to show that the metallic punch (3) has contacted the metallic core (2.1) of the conductor cable (2) and that there is continuity for the reading of temperature, vibrations, electric voltage, and PLC communication when relevant.
[0046] For its part, the lodging tip (3.3) of the metallic punch (3) can comprise anti-slip ribs, with a frustoconical shape (3.31), for example, or a thread of the screw-lock type (3.32), see
[0047] Preferably, the metallic punch (3) is made in a copper alloy or any other with a hardness and mechanical strength that guarantee adequate penetration into the metallic core (2.1) of the electrical conductor cable (2) and high electrical and heat conductivity, but with a composition such that it does not generate galvanic currents with the copper or other materials of said metallic core (2.1) of the electrical conductor cable (2), preventing its corrosion or wear.
[0048] The device (1) is thus ready for taking measurements as well as for sending and receiving encoded signals, preferably, via power line communication technology (PLC) towards a control unit (14) of the remote management system of an electrical installation (13) in which said measuring device (1) is installed. See
[0049] On the other hand, as shown in
[0050] Preferably, the sensing electronics (6) can comprise at least one, all, or any combination of the following electronic components: [0051] a heat chip that measures temperature; for example, capable of measuring the heat-time gradient existing at different depths or radii of the electrical conductor cable (2), [0052] an accelerometer and gyroscope chip that measures mechanical vibrations in the electrical conductor cable (2) from engines, pumps or other electrical loads connected to the electrical conductor cable (2) with the sensor, [0053] an inductometer chip that takes 3d measurements of the magnetic field on the electrical conductor cable (2) for its analogue and digital magnetographic representation, [0054] a magneto-resistive chip that measures values of the current circulating through the electrical conductor cable (2) according to the electric resistance or impedance caused by the magnetic field induced by the current itself within said electrical conductor cable (2), and [0055] an electrical network analyser chip that integrates measurements of voltage, intensity and wave shape measured within the electrical conductor cable (2); including the corresponding harmonics and eventual micro-outages of power supply.
[0056] Similarly, the sensing electronics (6) might comprise at least one chip that measures smoke, ionizing radiation, parameters of gases, liquids, solids, such as weight, pressure, humidity, flow rate, density, viscosity, colorimetry, and/or luminosity outside the electrical conductor cable (2) or other parameters required for the installation.
[0057] Similarly, the sensing electronics (6) might comprise a geodesic locator (GPS), for geolocation of the device (1) either by cellular or satellite telephone communications or other similar means.
[0058] In any case we prefer that between the support base (7) of the metallic punch (3) and the sensing electronics (6) there are dielectric means (12) that guarantee high heat conductivity between said parts, for example, for temperature measurements, while at the same time insulating the electronics (6) from electric voltage, in compliance with international electromagnetic safety and compatibility regulations.
[0059] On the other hand, the power supply for the measuring device (1) is preferred to be through the metallic punch (3) with the voltage from the electrical conductor cable (2) it is attached to, through a switching source or the like. However, some other external power supply known in the state of the art could also be provided.
[0060]
[0061] The physical quantities measured by the measuring device (1) are communicated to the control unit (14) of the control system for processing and management. Similarly, additional information may be received, for example, on the geodesic position (GPS) of the device (1) in the network, the existence or not of electric contact between said device (1) and the metallic core (2.1) of the conductor cable (2) on which it is assembled, amongst other useful information for control of the electrical installation (13).
[0062] The control unit (14) comprises a micro-controller (not shown in the figures) for processing the information received, information storage means (not shown in the figures), for example for the historical log of measurements, as well as, means for communications (not shown in the figures), making up an entire expert control system self-learning with capacities and supported by architecture for big-data in cloud computing.
[0063] Preferably, the sending and receiving of encoded signals between the measuring device (1) and the control unit (14) of the remote control system of the electrical installation (13) is performed via power line communication technology (PLC), however, other known forms of communication could be used, either wireless or through cables.
[0064] Therefore, from the processing of the information received in the control system, the control unit (14) remotely configures, calibrates and provides predictive maintenance for each of the measuring devices (1) in the system.
[0065] From a standard control and management panel (not shown in the figures), with M2M technology for Big-Data, for example, the following actions can be performed from the control unit (14): [0066] automatic report generation, [0067] automatic ad-hoc management upon technical alarms detected by the measuring devices (1), [0068] remote management of loads, either manually or automatically, when detecting excesses over predefined load limits, for example, when disconnecting one or more of the devices connected to the network, [0069] checking stored historical logs of measurements, [0070] remote configuration and maintenance of the measuring devices (1), [0071] other actions.
[0072] Such actions may even be visualised and managed via a mobile electronic device such as a laptop, tablet, smartphone, etc., that can be connected to said control and management panel via a local network or the internet.