Universal isolator arranged for repositionable connection to a base module
11088498 ยท 2021-08-10
Assignee
Inventors
Cpc classification
H05K1/0295
ELECTRICITY
H01R29/00
ELECTRICITY
H04L25/0266
ELECTRICITY
International classification
H01R29/00
ELECTRICITY
H04L25/02
ELECTRICITY
H02H9/00
ELECTRICITY
Abstract
The present invention provides for an electronic isolator device such as a universal isolator and having isolation and possible safety functionality and comprising an isolator module (550), and a base module (500), and wherein the isolator module is arranged for removable physical/electrical connection to the base module and in at least two orientations/positions relative to the base module, wherein electrical connection to the base module in each of the at least two orientations/positions serves to configure the type/functionality of the isolator device.
Claims
1. An electronic isolator device comprising: an isolator module having an input-side electrical connector connected to an input signal processing functionality of the isolator module and an output side electrical connector connected to an output signal processing functionality of the isolator module, the input signal processing functionality arranged for communication with the output single processing functionality by way of an isolation; and a base module having at least two connectors; wherein the isolator module is arranged for removable physical/electrical connection to the base module in at least two orientations/positions relative to the base module, with the input-side and output-side connectors arranged to operatively connect to one or the other connector and vice versa at the base module in the at least two orientations/positions; and wherein electrical connection to the base module in each of the at least two orientations/positions serves to configure the direction of the communication between the two connectors at the base module and thus the type/functionality of the electronic isolator device.
2. The electronic isolator device of claim 1, in combination with one or more devices, the electronic isolator device arranged to provide for isolation in relation to the devices operating in intrinsically safe environments.
3. The electronic isolator device of claim 1, wherein a number of orientations of the isolator module corresponds to a number of different sides of the isolator module offering connectivity to the base module.
4. The electronic isolator device of claim 1, wherein a number of positions of the isolator module corresponds to a number of different sides of the isolator module offering connectivity to the base module.
5. The electronic isolator device of claim 1, wherein there are at least two potential positions of the isolator module on a common side of the isolator module.
6. The electronic isolator device according to claim 1, wherein the base module includes: a supply section associated with supply lines; a process section associated with process lines having one of the at least two connector of the base module; and a field section associated with field lines having another of the at least two connector of the base module.
7. The electronic isolator device of claim 1, further including a safety functionality.
8. The electronic isolator device of claim 7, wherein the safety functionality is provided by way of a safety module included in the base module.
9. The electronic isolator device of claim 8, wherein the safety module comprises a barrier circuitry.
10. The electronic isolator device of claim 8, wherein the isolator module is arranged such that the orientation/position of physical connection between the isolator module and the safety module serves to visually indicate the type/functionality of the isolator module.
Description
(1) The invention is described further hereinafter, by way of example only, with reference to the accompanying drawings, in which:
(2)
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(10)
(11) Turning first to
(12) Analog input process lines 115 are connected to the process section 110 providing analog input signals to a signal processing function 111. The processed signals are then delivered, via an isolation coupling 121, such as an electro-optical coupling, or electro-magnetic coupling, to a signal processing function 131 and the field section 130, and for onward delivery to field lines 135 as an analog output signal.
(13) Should however an opposite direction of input/output current flow be required, then a different isolator 150 such as that of
(14) Again, the isolator 150 includes a supply section 151 including supply lines 155.
(15)
(16) Analog input process lines 215 are connected to the process section 210 for providing analog input signals to a signal processing function 211. The processed signals are then delivered, via an isolation coupling 221, such as an electro-optical coupling, or electro-magnetic coupling, to a signal processing function 231 of the field section 230, and for onward delivery to field lines 245, via the barrier components 241, to the output field lines 245.
(17) As illustrated, the barrier components 241 include a zener and current limit arrangement.
(18) Again, and should however an opposite direction of input/output current flow be required, but with intrinsic safety functionality, then a different isolator 250 such as that of
(19) As with the known isolator of
(20) Again, the isolator 250 of
(21) As will be appreciated, both isolators 200 and 250 would be required to provide for intrinsically safe analog input and output isolation.
(22) However, and in order to avoid the need to achieve the functionality with two different isolators, a known so called universal isolator 300 can be provided such as that illustrated with reference to
(23) Here, there is again illustrated a supply section 301 supplied by supply lines 305, and wherein multiple analog input/output process lines 315, 316 connect to a process section 310 and multiple input/output analog field lines 335, 336 connect to a field section 330.
(24) As will be appreciated, each of the two sides of the isolation coupling 321 and 322 of the universal isolator 300 include both an input 311, 332 signal processing function and an output 312, 331 signal processing function.
(25) Such known universal isolators can then be configured as required, for example to offer input functionality to, or from, field devices via connections to the field section 330. However, disadvantages and limitations remain insofar as there is duplication of connections in both input and output sides of the isolation, and further insofar as detection of the relevant signal is not always possible.
(26) A further variant of the illustrated embodiment of the present invention of
(27) As will be appreciated, each of the two sides of the isolation coupling 421 and 422 of the universal isolator 400 include both an in 411, 432 signal processing function and an out 412, 431 signal processing function. The additional intrinsically safe functionality of
(28) Turning now however to
(29) The universal isolator base 500 includes a supply section 501 associated with supply lines 505 and also a process section 510 associated with process lines 515, and a field section 530 associated with field lines 535. Also illustrated is input analog signal processing functionality 551, and output signal processing functionality 571, and with the signals exchanged across an isolation 561.
(30) As an important feature of the present invention, the isolation function within the isolator is provided as a removal section, such as on a removable card 550 having, for example, removably pluggable connectivity 555 between the process and field sections 510, 530 and the supply section 501.
(31) The isolator card 550 including the signal processing 551, 571 and the isolation 561 can therefore be unplugged and removed from the remaining part of the isolator device comprising the process section 510, field section 530 and supply section 501 as required.
(32) The configuration/orientation of the isolator card 550 illustrated in
(33) However, in this example, through unplugging the isolator card 550 and rotating it through 180 degrees about a vertical axis along with line of the isolation as illustrated by the arrows of
(34)
(35) Thus, through the separation of the isolator functionality between the process side and field side, and allowing for a reconfigured/re-orientated reconnection thereof, the advantages arising in relation to universal isolator can be achieved without unnecessary additional circuitry nor the potential for misdetection of the signal types.
(36) As will be appreciated, the invention is based on the realisation that when one of the inputs (or outputs) of the universal isolator is not in use on one side, it can effectively be used by the other side. One side of the isolation will only therefore be an input, and the other side will only therefore be an output.
(37) To achieve such selection, the unplugging, and re-plugging, of the electronic isolator card relative to the connection terminals of the remainder of the device allows for change of an input isolator to an output isolator, particularly for Ex safety environment.
(38) Of course, a further rotation perhaps about a different axis, could serve to change digital functions with analog functions. Also, with regard to Ex-i applications, rotating the card before the safety components will overcome the possibility of likely incorrect and dangerous connectivity insofar as a previously connected non-intrinsically safe part cannot then be connected to an intrinsically safe circuit.
(39) This will have the advantage of reducing greatly the number of components and, if needed, number of safety components. Such reduction can advantageously lead to lower cost and will also allow an operative to known exactly how the universal isolator is configured with a particular definite function.
(40) Fewer components are therefore required for the invention and which can enhance reliability. This is an important feature for some field applications, particularly in relation to inaccessible locations.