SYSTEM FOR CONTROLLING A FLOW OF FLUID, FEEDING SYSTEM COMPRISING SUCH A CONTROL SYSTEM AND METHOD USING SUCH A FEEDING SYSTEM
20180306214 ยท 2018-10-25
Assignee
Inventors
- Jan COBBAUT (Bruxelles, BE)
- Claude MAIRE (Chaleze, FR)
- Jean-Francois RAUCH (Saint Maur des Fosses, FR)
Cpc classification
F25J3/04769
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J3/04824
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/8752
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/87
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0244
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0256
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/8755
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J2280/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B20/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/575
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J2280/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/67
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/355
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0248
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J3/0295
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J2240/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J3/04854
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/6355
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01J4/008
PERFORMING OPERATIONS; TRANSPORTING
F25J2290/90
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/8757
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E60/32
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
F15B20/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01J4/00
PERFORMING OPERATIONS; TRANSPORTING
F25J1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a control system which comprises: a plurality of flow valves on channels of reaction fluid, which are i) in a closed position or ii) in an open position; a plurality of control pipes connected to a source of control fluid and to a respective control pipe, all or part of the flow valves switching to the closed position when the pressure of the control fluid in the control pipe drops below a predetermined threshold; a discharge pipe connected to the control pipes, in order to discharge the control fluid from the control pipes; a safety device connected i) to each control pipe and ii) to the discharge pipe and configured to have, selectively: i) a service configuration, wherein the control fluid flows to each control pipe, thus opening each flow valve, and ii) a safety configuration, wherein the control fluid is discharged through the discharge pipe, thus closing each flow valve.
Claims
1-15. (canceled)
16. A control system, for controlling the circulation of at least one reaction fluid in a reaction fluid feeding system, the control system comprising: a plurality of flow valves configured to be arranged on respective channels intended to convey at least one reaction fluid, each of said flow valves being configured to have at least: i) a closed position and ii) an open position in which said at least one reaction fluid can circulate in the respective channel; a plurality of control pipes intended to be connected to a control fluid source, the control fluid being for example compressed air, each of said flow valves being connected to a respective control pipe, a plurality of said flow valves being configured to go to the closed position if the pressure of the control fluid in the respective control pipe is below a predetermined threshold; at least one evacuation pipe connected to each of said control pipes, so as to allow evacuation of the control fluid from each control pipe; a safety device connected i) to each control pipe and ii) to said at least one evacuation pipe, the safety device being configured to have selectively: i) at least one service configuration, in which the control fluid can circulate as far as each control pipe so that each of said flow valves can be placed in a respective open position; and ii) a safety configuration, in which the control fluid can circulate from each of said flow valves through said at least one evacuation pipe so that said flow valves are placed in the closed position if the pressure of the control fluid in said control pipes is below the predetermined threshold.
17. The control system as claimed in claim 16, in which the safety device comprises a safety solenoid valve having at least three ports, the three ports including: i) a first port intended to be connected to the control fluid source; ii) a second port connected to the control pipes; and iii) a third port connected to said at least one evacuation pipe; the safety device being configured to place the safety solenoid valve alternately: in a service configuration, in which the first port is connected to the second port; and a safety configuration, in which the second port is connected to the third port.
18. The control system as claimed in claim 16, in which the safety device comprises at least: an auxiliary control pipe intended to be connected to the control fluid source; at least one control valve connected to each control pipe, said at least one control valve comprising a blocking member connected to the auxiliary control pipe, the blocking member being configured to place said at least one control valve selectively i) in a closed position and ii) in at least one open position, said at least one control valve being configured to go to the closed position if the pressure of the control fluid in the auxiliary control pipe is below a predetermined safety threshold; an auxiliary evacuation pipe intended to be connected to the control fluid source; and at least one evacuation valve on said at least one evacuation pipe, said at least one evacuation valve comprising a blocking member connected to the auxiliary evacuation pipe, the blocking member being configured to place said at least one evacuation valve selectively i) in a closed position and ii) in at least one open position, said at least one evacuation valve being configured to go to the open position if the pressure of the control fluid in the auxiliary evacuation pipe is below a predetermined evacuation threshold.
19. The control system as claimed in claim 18, in which said at least one auxiliary control pipe is equipped with an auxiliary control solenoid valve having i) a passage position, in which the control fluid circulates in said at least one auxiliary control pipe, and ii) an escape position, in which the control fluid escapes from said at least one auxiliary control pipe; and the auxiliary control solenoid valve being configured to go from the passage position to the escape position if the electrical power supply of the respective auxiliary control solenoid valve is interrupted.
20. The control system as claimed in claim 19, in which the safety device comprises: first and second control sections arranged in parallel and each connected to said control pipes; first and second control valves arranged in parallel on the control sections; first and second auxiliary control pipes arranged in parallel; and first and second auxiliary control solenoid valves that are intended to be connected to the control fluid source and are respectively arranged on the first auxiliary control pipe and on the second auxiliary control pipe so as respectively to control the first control valve and the second control valve.
21. The control system as claimed in claim 20, the control system further comprising first and second auxiliary control sensors configured to generate a respective failure signal if the first and/or the second control valve does not reach its respective open position.
22. The control system as claimed in claim 18, in which said at least one auxiliary evacuation pipe is equipped with an auxiliary evacuation solenoid valve having i) a passage position, in which the control fluid circulates in said at least one auxiliary evacuation pipe, and ii) an escape position, in which the control fluid escapes from said at least one auxiliary evacuation pipe, said at least one auxiliary evacuation solenoid valve being configured to go from the passage position to the escape position if the electrical power supply of said at least one auxiliary evacuation solenoid valve is interrupted.
23. The control system as claimed in claim 22, further comprising: first and second evacuation valves arranged in series on the same evacuation pipe; first and second auxiliary evacuation pipes arranged in parallel; and first and second auxiliary evacuation solenoid valves respectively arranged on the first auxiliary evacuation pipe and on the second auxiliary evacuation pipe so as respectively to control the first evacuation valve and the second evacuation valve.
24. The control system as claimed in claim 23, further comprising first and second auxiliary evacuation sensors respectively arranged on the first and second evacuation valves, the first and second auxiliary evacuation sensors being configured so as to generate a respective failure signal if the first and/or the second evacuation valve does not reach its respective closed position.
25. The control system as claimed in claim 16, in which at least one of said flow valves is configured to have i) a closed position and ii) a single open position, said at least one flow valve being configured to go to the open position if the pressure of the control fluid in the respective control pipe is below a predetermined threshold.
26. The control system as claimed in claim 16, further comprising a plurality of regulation members, each regulation member being configured to regulate the pressure of the control fluid in a respective control pipe, so as selectively to place the respective flow valve in a plurality of open positions.
27. A reaction fluid feeding system, for feeding with at least one reaction fluid at least one consumption member, a reaction fluid being for example a hydrocarbon, the reaction fluid feeding system comprising: a container configured to contain the reaction fluid; a plurality of channels connected to said at least one container and configured for the circulation of said at least one reaction fluid; a control system as claimed in any one of the preceding claims, each flow valve being adapted selectively to prevent or to allow the circulation of said at least one reaction fluid in a respective channel; and a control fluid source configured to supply a control fluid to the control system.
28. The reaction fluid feeding system as claimed in claim 26, comprising first and second channels that are connected at a junction point, the control system comprising first and second flow valves arranged on the first channel on respective opposite sides of the junction point; each of the flow valves being configured to have i) a closed position and ii) at least one open position, the flow valves being configured to go to the closed position if the pressure of the control fluid in the respective control pipe is below a predetermined pressure; the control system further comprising an escape valve arranged on the second channel so as to convey said at least one reaction fluid in the second channel, the second channel being intended to be connected to a reject port; and the escape valve being connected to a control pipe, the escape valve being configured to have i) a closed position and ii) at least one open position, the escape valve being configured to go to the open position if the pressure of the control fluid in the control pipe is below a predetermined pressure.
29. A method for feeding at least one consumption member with at least one reaction fluid, said at least one reaction fluid being for example a hydrocarbon, the feeding method comprising the steps of: providing a reaction fluid feeding system as claimed in claim 26; connect each of said control pipes to the control fluid source; place the safety device in the service configuration; and subject each of said control pipes to a control fluid pressure above a predetermined threshold, so as to place each flow valve in a respective open position, and thus to convey said at least one reaction fluid in the channels.
30. A method of separating air by cryogenic distillation comprising a control system as claimed in claim 16.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0107] The present invention will be clearly understood and its advantages will also emerge in the light of the following description given by way of nonlimiting example only and with reference to the appended figures, in which identical reference signs correspond to elements that are structurally and/or functionally identical or similar. In these appended figures:
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[0109]
[0110]
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[0113]
[0114]
[0115]
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DETAILED DESCRIPTION OF THE INVENTION
[0117]
[0118] The control system 1 has in particular the function of controlling the circulation of a reaction fluid in a reaction fluid feeding system. The control system 1 comprises a plurality of flow valves 2.1, 2.2, 2.3 and 2.4 and a plurality of control pipes 4.
[0119] The flow valves 2.1, 2.2, 2.3 and 2.4 are configured to be arranged on respective channels 54.1, 54.2, 54.3 and 54.4 intended to convey the reaction fluid. Each of the flow valves 2.1, 2.2, 2.3 and 2.4 is configured to have i) a closed position and ii) an open position.
[0120] For example each channel can contain a flow of the same fluid or the channels can contain flows of different composition. For example, in air distillation apparatus, the channel 54.1 can be a liquid nitrogen channel, the channel 54.2 can be a channel for air to be separated, the channel 54.3 can be a channel for liquid enriched with oxygen that has been evaporated and the channel 54.4 can be a channel for a liquid rich in oxygen.
[0121] When a flow valve is in the closed position, the reaction fluid cannot circulate in the respective channel 54.1, 54.2, 54.3 or 54.4. When a flow valve is in the open position, the reaction fluid can circulate in the respective channel 54.1, 54.2, 54.3 or 54.4.
[0122] The control pipes 4 are intended to be connected to a control fluid source 80. Here the control fluid is compressed air, for example. Each flow valve 2.1, 2.2, 2.3 and 2.4 is connected to a respective control pipe 4. A plurality of the flow valves 2.1, 2.2, 2.3 and 2.4 are configured to go to the fully closed (no flow) position if the pressure of the control fluid in the respective control pipes 4 is below a predetermined threshold (valve closed by absence of control fluid or normally closed valve). This predetermined threshold can be for example a control fluid pressure below 3 bar relative or 2 bar relative.
[0123] The control system 1 further comprises an evacuation pipe 12 that is connected to each of the control pipes 4, so as to enable evacuation of the control fluid from each control pipe 4.
[0124] Moreover, the control system 1 comprises a safety device 10 that is connected i) to each control pipe 4 and ii) to the evacuation pipe 12. The safety device 10 is configured selectively to adopt:
[0125] i) a service configuration, in which the control fluid can circulate to each control pipe 4 so that each of the valves 2.1, 2.2, 2.3 and 2.4 can be placed in a respective open position, and
[0126] ii) a safety configuration, in which the control fluid can circulate from each of the flow valves 2.1, 2.2, 2.3 and 2.4 through the evacuation pipe 12 so that said flow valves 2.1, 2.2, 2.3 or 2.4 are placed in the closed position if the pressure of the control fluid in the respective control pipes 4 is below the predetermined threshold.
[0127] In the
[0128] i) a first port 10.1 connected to the control fluid source 80,
[0129] ii) a second port 10.2 connected to the control pipes 4, and
[0130] iii) a third port 10.3 connected to the evacuation pipe 12.
[0131] The safety device 10 is configured to place the safety solenoid valve alternately: [0132] in a service configuration, in which the first port 10.1 is connected to the second port 10.2, and [0133] in a safety configuration, in which the second port 10.2 is connected to the third port 10.3.
[0134] The safety solenoid valve forming the safety device 10 is formed here by a distributor with three ports and two positions (usually termed a 3/2 distributor). The safety solenoid valve comprises a blocking member not shown that is selectively moved between the two positions to connect two of the three ports: either the first port 10.1 and the second port 10.2, when the safety device 10 is in the service configuration, or the second port 10.2 and the third port 10.3, when the safety device 10 is in the safety configuration.
[0135] To move the blocking member between its two positions, the safety solenoid valve comprises an electric actuator 10.5 that can be controlled by a control signal, for example in the form of an electric voltage of 0 or 24 V.
[0136] One of the flow valves 2.1, 2.2, 2.3 and 2.4 can be configured to have i) a closed position and ii) a single open position, for example like the flow valve 2.4 represented top right in
[0137] The control system 1 can further comprise a plurality of regulation members 21.1, 21.2 and 21.3 that are configured to regulate the pressure of the control fluid in the respective control pipes 4. By regulating the pressure of the control fluid, the regulation members 21.1, 21.2 and 21.3 enable selective placement of the respective flow valves 2.1, 2.2, 2.3 and 2.4 in their open position. Here each regulation member 21.1, 21.2 and 21.3 is controlled by a control signal that can for example be conveyed by an electric current of 4-20 mA, for example via a wire 23.
[0138] The reaction fluid feeding system 51 further comprises a container 52 of reaction fluid and a control fluid source 80 for the control system 1. The reaction fluid container 52 can be any type of reaction fluid source.
[0139] Moreover, the reaction fluid feeding system 51 comprises a plurality of channels 54.1, 54.2, 54.3 and 54.4 that are connected to the container 52 and are configured for the circulation of the reaction fluid. In the
[0140] When the reaction fluid feeding system 51 is in service, the safety device 10 is in the service configuration, so that each flow valve 2.1 to 2.4 can selectively prevent or allow the circulation of the reaction fluid in the respective channels 54.1, 54.2, 54.3 and 54.4 as a function of control signals transmitted for example via the wire 23 and the like.
[0141] In service the reaction fluid feeding system 51 functions in accordance with a feeding method 1000 according to the invention and illustrated in
[0142] The feeding method 1000 comprises the steps of: [0143] 1002) supplying the feeding system with reaction fluid 51, [0144] 1004) connecting each control pipe 4 to the control fluid source 80, [0145] 1006) placing the safety device 10 in the service configuration, [0146] 1008) subjecting each control pipe 4 to a control fluid pressure above the predetermined threshold, so as to place each flow valve 2.1, 2.2, 2.3 and 2.4 in the respective open position, and thus to convey the reaction fluid in the channels 54.1, 54.2, 54.3 and 54.4.
[0147] As
[0150] The control part 2.10 has a first chamber 2.14 and a second chamber 2.15, which are volumes variable as a function of the pressure of the control fluid conveyed by the control pipe 4. The first chamber 2.14 is connected to the control pipe 4 via the regulation member 21.
[0151] The control part 2.10 comprises a piston 2.12 and a return member 2.13. The piston 2.12 is disposed between the first chamber 2.14 and the second chamber 2.15. The piston 2.12 is mechanically connected to the blocking member 2.11, with the result that the piston 2.12 moves the blocking member 2.11 between the open position (
[0152] To place the flow valve 2.1 in the open position (
[0153] When the pressure of the control fluid in the control pipe 4 is released, the pressure of the control fluid then falls below the particular threshold. The return member 2.13 then pushes back the piston 2.12 and the blocking member 2.11, which places the flow valve 2.1 in the closed position (
[0154]
[0155] The reaction fluid feeding system 51 and the control system 1 from
[0156] The reaction fluid feeding system 51 from
[0157] The auxiliary control pipe 6 is connected to the control fluid source 80. The control valve 8 is connected to each control pipe 4. The control valve 8 comprises a blocking member connected to the auxiliary control pipe 6.
[0158] The blocking member is configured to place the control valve 8 selectively i) in a closed position and ii) in an open position. The control valve 8 is configured to go to the closed position if the pressure of the control fluid in the auxiliary control pipe 6 is below a predetermined safety threshold, for example below 2 or 3 bar relative. The control valve 8 thus functions in the manner of the flow valve 2.1 shown in
[0159] When the reaction fluid feeding system 51 from
[0160] The evacuation valve 16 is arranged on the evacuation pipe 12. The evacuation valve 16 comprises a blocking member that is connected to the auxiliary evacuation pipe 14. The blocking member is configured selectively to place the evacuation valve 16 in a closed position and ii) in an open position. The evacuation valve 16 is configured to go to the open position if the pressure of the control fluid in the auxiliary evacuation pipe 14 is below a predetermined evacuation threshold, for example 2 or 3 bar relative.
[0161]
[0164] The control part 16.10 includes a first chamber 16.14 and a second chamber 16.15, which are volumes variable as a function of the pressure of the control fluid conveyed by the auxiliary control pipe 14. The first chamber 16.14 is connected to the auxiliary control pipe 14.
[0165] The control part 16.10 comprises a piston 16.12 and a restoring member 16.13. The piston 16.12 is disposed between the first chamber 16.14 and the second chamber 16.15. The piston 16.12 is mechanically connected to the blocking member 16.11, with the result that the piston 16.12 moves the blocking member 16.11 between the open position (
[0166] To place the evacuation valve 16 in the closed position (
[0167] Then, when the pressure of the control fluid in the auxiliary control pipe 14 is released, the pressure of the control fluid falls below the particular threshold. The restoring member 16.13 then pushes on the piston 16.12 and the blocking member 16.11, which places the evacuation valve 16 in the open position (
[0168] The auxiliary control pipe 6 is equipped with an auxiliary control solenoid valve 26 that has i) a passage position, in which the control fluid circulates in the auxiliary control pipe 6, and ii) an escape position, in which the control fluid escapes from the auxiliary control pipe 6. The auxiliary control solenoid valve 26 is configured to go from the passage position to the escape position if the electrical power supply of the auxiliary control solenoid valve 26 is interrupted.
[0169] Likewise, the auxiliary evacuation pipe 14 is equipped with an auxiliary evacuation solenoid valve 28 that has i) a passage position, in which the control fluid circulates in the auxiliary evacuation pipe 14, and ii) an escape position, in which the control fluid escapes from the auxiliary evacuation pipe 14. The auxiliary evacuation solenoid valve 28 is configured to go from the passage position to the escape position if the electrical power supply of the auxiliary evacuation solenoid valve 28 is interrupted.
[0170] When the reaction fluid feeding system 51 is in service, the safety device 10 is in the service configuration. The control valve 8 is then open or passing, whereas the evacuation valve 16 is closed, with the result that the control fluid circulates from the control fluid source 80 in the control pipes 4 and to the flow valves 2.1, 2.2, 2.3 and 2.4, in the direction indicated by the arrow 80.4 in
[0171] In the event of an incident, the safety device 10 go to the safety configuration. The control valve 8 is then closed, whereas the evacuation valve 16 is open, with the result that the control fluid is evacuated from the control pipes 4 and through the evacuation pipe 12, in the direction indicated by the arrow 4.12 in
[0172]
[0173] The reaction fluid feeding system 51 and the control system 1 from
[0174] The reaction fluid feeding system 51 from
[0179] Moreover, the control system 1 from
[0180] In the event of an incident, for example if the first auxiliary control solenoid valve 26.1 does not remain in the open position, then the first auxiliary control sensor 27.1 detects the absence of end of opening travel of the first control valve 8.1, and the first auxiliary control sensor 27.1 generates an alarm signal for a maintenance operative to carry out maintenance operations. The second control valve 8.1 remains open, which guarantees the arrival of the control fluid in the control pipes 4 and at the flow valves 2.1, 2.2 and 2.4.
[0181] Moreover, the control system 1 from
[0185] Moreover, the control system 1 from
[0186] In the event of an incident, for example if the first auxiliary evacuation solenoid valve 28.1 does not remain in the closed position, then the first auxiliary control sensor 29.1 detects the absence of closure end of travel of the evacuation valve 16.1, after which the first auxiliary control sensor 29.1 generates an alarm signal so that a maintenance operative carries out maintenance operations. The second evacuation valve 16.2 remains closed which prevents the evacuation of the control fluid to the evacuation pipe 12, and therefore guarantees the arrival of the control fluid in the control pipes 4 and at the flow valves 2.1, 2.2 and 2.4.
[0187] When the reaction fluid feeding system 51 from
[0188] In the event of an incident, the safety device 10 goes to the safety configuration by placing all the valves in the safety configuration. Each control valve 8.1 and 8.2 is then closed, whereas the evacuation valves 16.1 and 16.2 are open, with the result that the control fluid is evacuated from the control pipes 4 and through the evacuation pipe 12, in the direction indicated by the arrow 4.12 in
[0189] Moreover, the reaction fluid feeding system 51 from
[0190]
[0191] The reaction fluid feeding system 51 from
[0192] The reaction fluid feeding system 51 from
[0193] The first channel 54.1 is connected to the container 52. The second channel 54.2 leads to a reject port, here to a backup container 58.
[0194] Moreover, the control system 1 from
[0195] Moreover, the first and second flow valves 2.1 and 2.2 are configured to go to the closed position if the pressure of the control fluid in the control pipe 4 is below a predetermined pressure, for example below 2 or 3 bar relative.
[0196] The control system 1 from
[0197] The escape valve 56 is configured to have i) a closed position and ii) an open position. Moreover, the escape valve 56 is configured to go to the open position if the pressure of the control fluid in the control pipe 4 is below a predetermined pressure, for example below 2 or 3 bar relative.
[0198] Of course, the present invention is not limited to the particular embodiments described in the present patent application, or to embodiments evident to a person skilled in the art. Other embodiments can be envisaged without departing from the scope of the invention, based on any element structurally or functionally equivalent to an element indicated in the present patent application.
[0199] While the invention has been described in conjunction with specific embodiments thereof, it is evident that many alternatives, modifications, and variations will be apparent to those skilled in the art in light of the foregoing description. Accordingly, it is intended to embrace all such alternatives, modifications, and variations as fall within the spirit and broad scope of the appended claims. The present invention may suitably comprise, consist or consist essentially of the elements disclosed and may be practiced in the absence of an element not disclosed. Furthermore, if there is language referring to order, such as first and second, it should be understood in an exemplary sense and not in a limiting sense. For example, it can be recognized by those skilled in the art that certain steps can be combined into a single step.
[0200] The singular forms a, an and the include plural referents, unless the context clearly dictates otherwise.
[0201] Comprising in a claim is an open transitional term which means the subsequently identified claim elements are a nonexclusive listing (i.e., anything else may be additionally included and remain within the scope of comprising). Comprising as used herein may be replaced by the more limited transitional terms consisting essentially of and consisting of unless otherwise indicated herein.
[0202] Providing in a claim is defined to mean furnishing, supplying, making available, or preparing something. The step may be performed by any actor in the absence of express language in the claim to the contrary.
[0203] Optional or optionally means that the subsequently described event or circumstances may or may not occur. The description includes instances where the event or circumstance occurs and instances where it does not occur.
[0204] Ranges may be expressed herein as from about one particular value, and/or to about another particular value. When such a range is expressed, it is to be understood that another embodiment is from the one particular value and/or to the other particular value, along with all combinations within said range.
[0205] All references identified herein are each hereby incorporated by reference into this application in their entireties, as well as for the specific information for which each is cited.