APPARATUS TO TAP THE ELECTRICAL SIGNALS IN PROCESS CONTROL WITHOUT BREAKING THE CONTINUITY
20170276706 · 2017-09-28
Inventors
- Praveen Kumar Kajjam (Hyderabad, IN)
- Murali Krishna Thavva.V.V (Hyderabad-18, IN)
- JAGANMOHAN Y. REDDY (HYDERABAD, IN)
- Suresh Kumar Palle (Bangalore, IN)
- Suresh Babu DTVS Dogiparthi (Hyderabad, IN)
Cpc classification
G01R15/12
PHYSICS
G01R1/06788
PHYSICS
International classification
G01R15/12
PHYSICS
G01R13/02
PHYSICS
Abstract
A monitor can be installed in the terminal block having a monitor access opening. The installed monitor allows for current measurement without having to disconnect a wire from the terminal block. Similar monitors can measure voltage, detect ground loops, and provide continuous readings of circuit parameters. Embodiments can positively hold probe tips, transmit data over wires, or transmit data wirelessly. Make-before-break monitors allow parameters to be measured without ever breaking the monitored circuit. Break-before-make monitors allow the monitored circuit to be interrupted and then reconnected with a monitor in place.
Claims
1. A system comprising: a terminal block comprising a terminal block body, left circuit, and right circuit; wherein the terminal block body comprises a front side, a back side, a right side, a left side, a monitor access opening, a left wire access opening, and a right wire access opening, wherein the left wire access opening is an opening in the left side, and wherein the right wire access opening is an opening in the right side; wherein the left circuit is located within the terminal block body and comprises a left terminal, a left conductor, and a left spring loaded switch; wherein the right circuit is located within the terminal block and comprises a right terminal, a right conductor, and a right spring loaded switch; wherein a first wire that is installed into the left terminal passes through the left wire access opening, is fixedly held by the left terminal, and is in electrical communication with the left terminal, left conductor, and left spring loaded switch; wherein a second wire that is installed into the right terminal passes through the right wire access opening, is fixedly held by the right terminal, and is in electrical communication with the right terminal, right conductor, and right spring loaded switch; wherein the left conductor is in physical contact with the left terminal; wherein the right conductor is in physical contact with the right terminal; wherein the left spring loaded blade is in physical contact with the left conductor; wherein the left circuit has a physical connection with the right circuit when a monitor is not installed in the terminal block such that the left circuit is in direct electrical contact with the right circuit; and wherein, when the monitor is installed in the terminal block, the monitor breaks the physical connection such that the left circuit is in direct physical and electrical contact with the monitor, the right circuit is in direct physical contact with the monitor, and the left circuit electrically communicates with the right circuit through the monitor.
2. The system of claim 1 further comprising the monitor wherein the monitor comprises conductive pads and circuitry arranged to “make before break” such that the first circuit and the second circuit remain in communication as the monitor is installed and as the monitor is removed.
3. The system of claim 1 further comprising the monitor wherein the monitor comprises conductive pads and circuitry arranged to “break before make” such that electrical communications between the first circuit and the second circuit are interrupted as the monitor is installed and as the monitor is removed.
4. The system of claim 1 further comprising the monitor, the monitor comprising: sensing circuitry that produces a measurement of a first circuit voltage, a second circuit voltage, or of a current wherein the current flows between the first circuit and the second circuit; and communications circuitry that accepts the measurement and transmits a digital measurement signal based on the measurement.
5. The system of claim 4 further comprising a receiving device wherein the receiving device wirelessly receives the measurement signal and displays the measurement signal to a person.
6. The system of claim 1 further comprising the monitor, wherein the monitor comprises a probe point that is located outside the terminal block when the monitor is installed, wherein the probe point is electrically connected to the first circuit or to the second circuit such that the probe point is at the same voltage as the first circuit or the second circuit.
7. The system of claim 1 further comprising the monitor, wherein the monitor comprises a first probe point and a second probe point; wherein the first probe point and the second probe point are located outside the terminal block when the monitor is installed; wherein the first probe point is electrically connected to the first circuit; wherein the second probe point is electrically connected to the second circuit; and wherein current flowing between the first circuit and the second circuit must also flow between the first probe point and the second probe point when the monitor is installed.
8. The system of claim 1 further comprising the monitor, the monitor comprising: sensing circuitry that produces a measurement of a first circuit voltage, of a second circuit voltage, or of a current wherein the current flows between the first circuit and the second circuit; and display elements wherein the display elements provide a visual indication of a value of the measurement.
9. A system comprising: a terminal block comprising a terminal block body, left circuit, and right circuit; wherein the terminal block body comprises a front side, a back side, a right side, a left side, a monitor access opening, a left wire access opening, and a right wire access opening, wherein the left wire access opening is an opening in the left side, and wherein the right wire access opening is an opening in the right side; wherein the left circuit is located with the terminal block body and comprises a left terminal, a left conductor, and a left spring loaded switch; wherein the right circuit is located within the terminal block and comprises a right terminal and a right conductor; wherein a first wire that is installed into the left terminal passes through the left wire access opening, is fixedly held by the left terminal, and is in electrical communication with the left terminal, left conductor, and left spring loaded switch; wherein a second wire that is installed into the right terminal passes through the right wire access opening, is fixedly held by the right terminal, and is in electrical communication with the right terminal and right conductor; wherein the left conductor is in physical contact with the left terminal; wherein the right conductor is in physical contact with the right terminal; wherein the left spring loaded blade is in physical contact with the left conductor; wherein the left circuit is in direct physical and electrical contact with the right circuit when a monitor is not installed in the terminal block; and wherein, when the monitor is installed in the terminal block, the left circuit is in direct physical and electrical contact with the monitor, the right circuit is in direct physical contact with the monitor, and the left circuit electrically communicates with the right circuit through the monitor.
10. The system of claim 9 further comprising a second terminal block wherein the second terminal block is positioned next to the terminal block wherein the monitor is installed in the terminal block and in the second terminal block.
11. The system of claim 10 wherein the monitor comprises sensing circuitry that produces a measurement of a voltage difference between the first circuit of the terminal block and a first circuit of the second terminal block.
12. The system of claim 9, wherein the monitor comprises a probe point that is located outside the terminal block when the monitor is installed, wherein the probe point is electrically connected to the first circuit or to the second circuit such that the probe point is at the same voltage as the first circuit or the second circuit.
13. The system of claim 9 further comprising the monitor, the monitor comprising: sensing circuitry that produces a measurement of a first circuit voltage, a second circuit voltage, or of a current wherein the current flows between the first circuit and the second circuit; and communications circuitry that accepts the measurement and transmits a measurement signal based on the measurement.
14. The system of claim 9, the monitor comprising: sensing circuitry that produces a measurement of a first circuit voltage, a second circuit voltage, or of a current wherein the current flows between the first circuit and the second circuit; and display elements wherein the display elements that provide a visual indication of a value of the measurement.
15. A method comprising: inserting a monitor into a monitor access opening of a terminal block wherein the terminal block comprises a terminal block body, left circuit, and right circuit wherein the terminal block body comprises a front side, a back side, a right side, a left side, a monitor access opening, a left wire access opening, and a right wire access opening, wherein the left wire access opening is an opening in the left side, and wherein the right wire access opening is an opening in the right side; wherein the left circuit is located within the terminal block body and comprises a left terminal, a left conductor, and a left spring loaded switch; wherein the right circuit is located within the terminal block and comprises a right terminal and a right conductor; wherein a first wire that is installed into the left terminal passes through the left wire access opening, is fixedly held by the left terminal, and is in electrical communication with the left terminal, left conductor, and left spring loaded switch; wherein a second wire that is installed into the right terminal passes through the right wire access opening, is fixedly held by the right terminal, and is in electrical communication with the right terminal and right conductor; wherein the left conductor is in physical contact with the left terminal; wherein the right conductor is in physical contact with the right terminal; wherein the left spring loaded blade is in physical contact with the left conductor; wherein the left circuit is in direct physical and electrical contact with the right circuit before the monitor is inserted; and wherein, after the monitor is inserted, the left circuit is in direct physical and electrical contact with the monitor, the right circuit is in direct physical contact with the monitor, and the left circuit electrically communicates with the right circuit through the monitor.
16. The system of claim 15 wherein a second terminal block is positioned next to the terminal block, the method further comprising installing the monitor into the second terminal block while installing the monitor into the terminal block.
17. The method of claim 16 further comprising measuring a voltage difference between a first point on the monitor and a second point on the monitor wherein the first point is electrically connected to the first circuit of the terminal block and wherein the second point is connected to a first circuit of the second terminal block.
18. The method of claim 15 further comprising producing a measurement by measuring a current between a first point on the monitor and a second point on the monitor wherein current flowing from the first circuit to the second circuit must flow from the first point to the second point.
19. The method of claim 18 further comprising wirelessly communicating the measurement to a receiver wherein the monitor comprises sensing circuitry and communications circuitry, wherein the sensing circuitry produces the measurement, and wherein the communications circuitry transmits the measurement.
20. The method of claim 15 further comprising producing a measurement measuring a voltage of a point on the monitor wherein the point is directly electrically connected to the first circuit.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0014] The accompanying figures, in which like reference numerals refer to identical or functionally-similar elements throughout the separate views and which are incorporated in and form a part of the specification, further illustrate the present invention and, together with the detailed description of the invention, serve to explain the principles of the present invention.
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DETAILED DESCRIPTION
[0030] The particular values and configurations discussed in these non-limiting examples can be varied and are cited merely to illustrate at least one embodiment and are not intended to limit the scope thereof.
[0031] The embodiments will now be described more fully hereinafter with reference to the accompanying drawings, in which illustrative embodiments of the invention are shown. The embodiments disclosed herein can be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art. Like numbers refer to like elements throughout. As used herein, the term “and/or” includes any and all combinations of one or more of the associated listed items.
[0032] A monitor can be installed on a terminal block having a monitor access opening. The installed monitor allows for current measurement without having to disconnect a wire from the terminal block. Similar monitors can measure voltage, detect ground loops, and provide continuous readings of circuit parameters. Embodiments can positively hold probe tips, transmit data over wires, or transmit data wirelessly. Make-before-break monitors allow parameters to be measured without ever breaking the monitored circuit. Break-before-make monitors allow the monitored circuit to be interrupted and then reconnected with a monitor in place.
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[0043] The pads 1104, 1105 can be electrically connected to probe pads/terminals 1106, 1107 or measurement circuitry 1108. Depending on its configuration, measurement circuitry can measure a variety of electrical parameters such as the current flowing through terminal block 1101, the current flowing through terminal block 1102, the voltage at pad 1104, the voltage at pad 1105, the voltage difference between the pads 1104, 1105, or the difference between the currents flowing in blocks 1101, 1102. The measurement circuitry can control LED lights 1109 to indicate measurement values, circuit status, or circuit faults. The measurement circuitry can communicate measurements, perhaps in digital form, to communication circuitry 1110 which can send a wireless signal 1111 to a receiving device 1112. The receiving device 1112 can be a smartphone, tablet computer, or other device that receives the signal 1111 and displays the measurement values, circuit status, or circuit faults.
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[0046] Monitor 1301 is illustrated as having two headers 1303 such that the monitor can be configured with different circuitry. For example, the measuring circuitry 1108 of
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[0049] The monitor can be a populated circuit board with components, such as measurement circuits, traces, vias, and pads. A monitor can obtain power from a battery, parasitically from monitored power or control signals, from a power connection connected to a power source or some other means. A monitor monitoring two or more circuits can be powered by a voltage differential between any combinations of those circuits.
[0050] The foregoing description of the embodiments has been provided for purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosure. Individual elements or features of a particular embodiment are generally not limited to that particular embodiment, but, where applicable, are interchangeable and can be used in a selected embodiment, even if not specifically shown or described. The same may also be varied in many ways. Such variations are not to be regarded as a departure from the disclosure and all such modifications are intended to be included within the scope of the disclosure.