A HYDRAULIC SYSTEM FOR A VEHICLE, A VEHICLE TRANSMISSION, AND METHOD FOR OPERATING A VEHICLE TRANSMISSION
20200378492 ยท 2020-12-03
Assignee
Inventors
Cpc classification
F16H2061/0037
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/0473
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/0206
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2061/1232
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/0021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2061/1244
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H63/3483
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2061/1292
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H63/3491
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2061/0034
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H61/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A hydraulic system for a vehicle transmission with at least two friction elements, the system comprising a first hydraulic circuit comprising a pump for supplying hydraulic fluid to the first hydraulic circuit. A flow restriction may be provided in the first hydraulic circuit between an output of the pump and a sump for providing leakage of hydraulic fluid into the sump. Further, a second hydraulic circuit comprising a second pump may be arranged, wherein the hydraulic pressure in the first circuit is higher compared to the second circuit. A flow control element operated using hydraulic pressure from the first circuit may be arranged for controlling flow/pressure in the second circuit. Further, the hydraulic system may be arranged for generating a line pressure, wherein an actuator for engaging a park lock system may be connected to the first hydraulic circuit for enabling direct actuation by means of the line pressure.
Claims
1. A hydraulic system for a vehicle transmission, the transmission including two or more friction elements, the hydraulic system comprising: a first hydraulic circuit arranged for actuating the two or more friction elements; a first electric driven pump arranged for supplying hydraulic fluid to the first hydraulic circuit; and a flow restriction provided in the first hydraulic circuit between an output of the first electric driven pump and a reservoir to provide leakage of hydraulic fluid into the reservoir.
2. A hydraulic system according to claim 1, further including: a second hydraulic circuit arranged for lubricating and/or cooling the two or more friction elements; a second electric pump arranged for supplying hydraulic fluid to the second hydraulic circuit, wherein the first electric pump is arranged for delivering a higher pressure than the second electric pump; and a flow control element arranged for controlling flow and/or pressure in the second hydraulic circuit, wherein the flow control element is operated using hydraulic pressure from the first hydraulic circuit.
3. A hydraulic system for a vehicle transmission, the transmission including two or more friction elements and two or more hydraulic actuators, the hydraulic system comprising: a first hydraulic circuit arranged for actuating the two or more hydraulic actuators; a second hydraulic circuit arranged for lubricating and/or cooling the two or more friction elements; a first electric driven pump arranged for supplying hydraulic fluid to the first hydraulic circuit; a second electric driven pump arranged for supplying hydraulic fluid to the second hydraulic circuit, wherein the first electric driven pump is arranged for delivering a higher pressure than the second electric driven pump; and a flow control element arranged for controlling flow and/or pressure in the second hydraulic circuit, wherein the flow control element is operated using hydraulic pressure from the first hydraulic circuit.
4. A hydraulic system according to claim 3, wherein the first hydraulic circuit includes a flow restriction for determining a pressure in the first hydraulic circuit upstream of the flow restriction, provided between an output of the first electric driven pump and a reservoir to provide leakage of hydraulic fluid into the reservoir.
5. A hydraulic system according to any one of claims 1 to 4, wherein hydraulic fluid flowing through the flow restriction is at least partly used for active lubrication of transmission components.
6. A hydraulic system according to any one of claims 1 to 5, wherein the flow restriction has a fixed geometry.
7. A hydraulic system according to any one of claims 1 to 6, wherein the first hydraulic circuit includes at least two control elements arranged for actuating the two or more friction elements, wherein the control elements are operated using hydraulic pressure from the first hydraulic circuit.
8. A hydraulic system according to any one of claims 1 to 7, including a controller arranged for controlling hydraulic pressure in the first hydraulic circuit by controlling flow of hydraulic fluid through the flow restriction.
9. A hydraulic system according to claim 8, wherein the controller is arranged for controlling a speed of the first electric driven pump.
10. A hydraulic system according to any one of claims 1 to 9, wherein the first hydraulic circuit is free from a hydraulic fluid accumulator.
11. A hydraulic system according to any one of claims 1 to 10, wherein the first hydraulic circuit is free from a pressure relief valve arranged for setting the hydraulic pressure in the first hydraulic circuit.
12. A hydraulic system according to any one of claims 8 to 10, wherein the controller is arranged for rotating the first electric driven pump in one direction only.
13. A hydraulic system according to any one of the preceding, wherein the flow control element and/or the at least two control elements include(s) an electric control input.
14. A hydraulic system according to any one of claims 1 to 13, wherein the first hydraulic circuit is arranged for generating a line pressure;
15. A hydraulic system according to any one of claims 1 to 14, wherein one of the two or more hydraulic actuators is arranged for actuating a park lock system, wherein said hydraulic actuator is hydraulically connected to the first hydraulic circuit for direct actuation of the hydraulic actuator using the line pressure.
16. A hydraulic system for a vehicle transmission, comprising: a first hydraulic circuit arranged for generating a line pressure; and a hydraulic actuator arranged for engaging a park lock system, wherein the hydraulic actuator is hydraulically connected to the first hydraulic circuit for direct actuation of the hydraulic actuator using the line pressure.
17. A hydraulic system according to claim 15 or 16, wherein the hydraulic actuator is arranged for bringing or maintaining the park lock system in a park position when the line pressure is below a predetermined pressure threshold.
18. A hydraulic system according to claim 17, wherein the first hydraulic circuit includes a valve arranged for draining the hydraulic actuator when the line pressure is below a predetermined pressure threshold.
19. A hydraulic system according to claim 15 or 16, wherein the hydraulic actuator is arranged for bringing or maintaining the park lock system in a non-park position when the line pressure is below a predetermined pressure threshold.
20. A hydraulic system according to claim 15 or 16, wherein the hydraulic actuator includes an actuator arranged for maintaining the park lock system in a park position or non-park position according to a last input of an operator of the hydraulic system when the line pressure is below a predetermined pressure threshold.
21. A hydraulic system according to any one of claims 15 to 20, including a non-return valve between the first hydraulic pump and the hydraulic actuator.
22. A vehicle transmission, including a hydraulic system according to any one of claims 1 to 21.
23. A vehicle transmission according to claim 22, as far as dependent on any one of claims 15 to 20, including mechanical means for bringing the park lock system from a park position to a non-park position when the line pressure is below a predetermined pressure threshold.
24. A vehicle transmission, for instance including a hydraulic system according to any one of claims 1-21, comprising: a park lock system arranged to engage park lock when line pressure is below a predetermined threshold and/or electric power is off, and a override means for overriding the park lock system such that the park lock system can be selectively disengaged in case line pressure is below a predetermined threshold and/or electric power is off.
25. A vehicle transmission according to claim 24, wherein the override means is arranged to be switched out of override; bringing the park lock system back from a unengaged position to normal behavior.
26. A vehicle transmission according to claim 24 or 25, wherein the override means uses a separate override actuator.
27. A vehicle transmission according to claim 24 or 25, wherein the override means and the park lock system use a same actuator for maintaining the park lock system in a park position or non-park position and for overriding the park lock system.
28. A vehicle transmission according to any one of claims 24-27, wherein the override means include retaining means for mechanically preventing releasing of the override means upon deactivating of the override means.
29. A vehicle transmission according to any one of claims 24-28, wherein the override system is arranged to maintain the park lock in a non-park position.
30. A vehicle transmission according to claim 29, wherein the override system is arranged to maintain the park lock in a non-park position without using an electric power.
31. A vehicle transmission according to any one of claims 24-30, wherein the override system is arranged to be switched to override using a control unit of the vehicle.
32. A vehicle transmission according to any one of the claims 22-31, including a park lock checking system configured to detect a failure to bring the park lock system in an engaged position.
33. A vehicle transmission according to claim 32, wherein failure to bring the park lock system in the engaged position is detected by means of one or more position sensors, wherein preferably the one or more position sensors include at least one additional redundant position sensor.
34. A vehicle transmission according to claim 33, wherein the one or more position sensors are arranged for monitoring a position of the intermediate body.
35. A vehicle transmission according to claim 34, wherein the park lock checking system is configured to provide an indication in the event that a failure is detected for bringing the park lock system in the engaged position.
36. A vehicle transmission according to any one of the claims 22-35, including a locking element checking system configured to determine whether a locking element maintains the park lock system in a park position or non-park position according to a last input of an operator of the hydraulic system.
37. A vehicle transmission according to claim 36, wherein the locking element checking system determines in a predetermined time frame whether the park position is maintained if the line pressure is reduced to a level below a predetermined pressure threshold and/or electric power is off.
38. A vehicle transmission according to claim 37, wherein the line pressure is reduced to the level below the predetermined pressure threshold by de-activating the first electric driven pump in the predetermined time frame.
39. A vehicle transmission according to claim 37 or 38, wherein the predetermined time frame is smaller than 500 ms, more preferably smaller than 200 ms, even more preferably smaller than 100 ms.
40. A vehicle transmission according to any one of the claims 36-39, wherein the locking element checking system is configured to provide an indication in the event that a faulty operation of the locking element is detected.
41. A vehicle transmission according to any one of the claims 36-40, wherein the locking element checking system is configured to perform a check for every park lock request.
42. A method for generating a line pressure in a vehicle transmission including a first hydraulic circuit arranged for actuating two or more friction elements, the method including: supplying hydraulic fluid to the first hydraulic circuit using a first pump; and using a flow restriction provided in the first hydraulic circuit between an output of the first pump and a reservoir to provide leakage of hydraulic fluid into the reservoir for generating the line pressure.
43. A method according to claim 42 including controlling the line pressure by controlling a flow speed of the first pump.
44. A method according to claim 42 or 43, including controlling two or more actuators associated with the two or more friction elements using at least two control elements which are operated using the line pressure.
45. A method according to any one of claims 42 to 44, including: cooling and/or lubricating the friction elements, using a second hydraulic circuit having a second pump associated therewith, by controlling flow and/or pressure in the second hydraulic circuit using a flow control element, wherein the flow control element is operated using the line pressure.
46. A method for cooling and/or lubricating friction elements of a vehicle transmission, the vehicle transmission including a first hydraulic circuit arranged for actuating two or more hydraulic actuators associated with two or more friction elements, a second hydraulic circuit arranged for lubricating and/or cooling the two or more friction elements, a first electric pump arranged for supplying hydraulic fluid to the first hydraulic circuit, and a second electric driven pump arranged for supplying hydraulic fluid to the second hydraulic circuit, wherein the first electric pump is arranged for delivering a higher pressure than the second electric pump, the method including cooling and/or lubricating the friction elements by controlling flow and/or pressure in the second hydraulic circuit using a control element, wherein the control element is operated using hydraulic pressure from the first hydraulic circuit.
47. A method for actuating hydraulic actuators associated with two or more friction elements of a vehicle transmission using a first hydraulic circuit, the method including for supplying hydraulic fluid to the first hydraulic circuit using a first electric driven pump; and controlling pressure of the first hydraulic circuit by providing a flow restriction in the first hydraulic circuit between the first electric pump and a reservoir to provide leakage of hydraulic fluid into the reservoir and controlling a speed of the first electric driven pump.
48. A method according to any one of claims 42 to 47, including: releasing a park lock system using a hydraulic actuator hydraulically connected to the first hydraulic circuit, and directly actuating the hydraulic actuator using the line pressure.
49. A method for operating a park lock system of a vehicle transmission, including: generating, using a first hydraulic circuit, a line pressure; and releasing a park lock system using a hydraulic actuator hydraulically connected to the first hydraulic circuit, and directly actuating the hydraulic actuator using the line pressure.
50. A vehicle comprising a vehicle transmission according to any one of claims 22-41.
Description
BRIEF DESCRIPTION OF THE DRAWING
[0088] The invention will further be elucidated on the basis of exemplary embodiments which are represented in a drawing. The exemplary embodiments are given by way of non-limitative illustration. It is noted that the figures are only schematic representations of embodiments of the invention that are given by way of non-limiting example.
[0089] In the drawing:
[0090]
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DETAILED DESCRIPTION
[0107]
[0108] The first electric driven pump 4 may be a pressure pump which is arranged to supply pressurized hydraulic fluid to first hydraulic circuit 2 via a pressure pump outlet line. In the embodiment of
[0109] In an exemplary embodiment, the flow restriction 6 is formed by an orifice 6. Such an orifice 6 may provide a constant leakage. For example, a fixed orifice 6 may be employed. The flow from the flow restriction 6 can optionally be directed through a pressure filter 16 which may optionally have a overpressure bypass valve 18.
[0110] In the embodiment of
[0111]
[0112]
[0113] In the exemplary embodiment of
[0114]
[0115] Further, optionally, a sensor 34 may be arranged in the first and second friction element actuation lines 10a and 10b for measuring the pressure in said lines 10a, 10b. Advantageously, the pressure characteristics in the first pressure circuit 2 can be assessed by opening either one of the direct acting solenoid valves 12a, 12b, which are arranged in the clutch actuation line 10a, 10b, and measure the pressure with the pressure sensor 34 on each of said lines 10a, 10b. Also, optionally, a damper 36 may be arranged in the clutch actuation lines 10a, 10b so as to increase the pressure stability in said hydraulic lines 10a, 10b. For instance, adverse pressure peaks and/or pressure fluctuations can at least partially be smoothed out by the dampers 36 in the actuation lines 10a, 10b.
[0116] In an advantageous embodiment, the flow restriction 6 has a fixed geometry. In this way, the speed of the first electric driven pump 4 can control or regulate the pressure in the first hydraulic circuit 2. The speed or rotational speed of the pump 4 may be an advantageous control parameter for the pressure of the first hydraulic pressure circuit. In this way, the controllability of the pressure of the hydraulic system 1 can be improved.
[0117] In an exemplary embodiment, a controller (not shown) is arranged for controlling the hydraulic pressure in the first hydraulic circuit 2 by controlling flow of the hydraulic fluid through the flow restriction 6. Optionally, the controller can be arranged for controlling a speed of the first electric driven pump 4. Advantageously, the hydraulic system 1 can be arranged to be free from a hydraulic fluid accumulator. Additionally or alternatively, the first hydraulic circuit 2 is free from a pressure relief valve arranged for setting the hydraulic pressure in the first hydraulic circuit 2. Further, additionally or alternatively, the controller can be arranged for rotating the first electric driven pump 4 in one direction only.
[0118] In the shown embodiment of
[0119]
[0120]
[0121]
[0122] Advantageously, the hydraulic actuator can be arranged for bringing or maintaining the park lock system in a park position when the line pressure is below a predetermined pressure threshold and/or in case of no availability of electricity. For this purpose, according to the shown embodiment of
[0123]
[0124] Additionally or alternatively, the locking element 41 may be arranged for keeping the park lock system 50 armed when the line pressure accidentally increases above a predetermined threshold so that the park lock system 50 may remain armed for safety purposes.
[0125] The locking element 41 is formed by an electro-mechanical actuator comprising an electrical solenoid 52. Preferably, the locking element 41 is normally open, so when there is no availability of line pressure and electricity the locking element will not lock the hydraulic actuator 40 and the park lock system 50 will still get in the armed position in such case. An (electronic) control element 54 is arranged for actuating the locking element 41. The electronic control element 54 may comprise a relay. Other types of control elements 54 may also be employed for this purpose. Preferably, the electronic control element 54 is normally closed, so that when there is an interruption of electricity for this electronic control element 54, for example due to a TCU reset, the electronic control element still provides electricity to the locking element 41 and it may keep locking the hydraulic actuator. Similar alternatives may also be employed for obtaining this result. When there is no availability of electricity (e.g. as a result of a power failure), there is no electricity to go through the (electronic) control element 54 and also no electricity for the locking element 41 and the park-lock system 50 can be automatically armed.
[0126] In
[0127]
[0128] Advantageously, the park lock can be armed in case of electric power failure and the park can be overruled (engage/disengage, lock/release) by means of a dedicated arrangement.
[0129]
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[0134]
[0135] In this example, override actuator 71 provides switching of the override element 70 between an engaged (prevent park lock function) and an unengaged position (normal park lock operation). The engaged override element 70 will lock into a retainer feature 72a provided on intermediate body 72. When the intermediate body 72 and the override element 70 are locked together, the position of the intermediate body 72 will be fixed. Hence preventing the park lock system 50 from going into an engaged position.
[0136] In this example, the override actuator 71 is arranged to be extended, into engaged position, when actuated, here by applying electric current to a solenoid of the override actuator. The override actuator is arranged to be retracted when not actuated, here when no electric current is applied to the solenoid.
[0137] In this example, the override actuator 71 includes the override element 70. Here the override element 70 takes the form of a retainer. It will be appreciated that the override element 70 engages with a matching retainer feature 72a of the intermediate body when extended. It will also be appreciated that if, when engaged, the override actuator 71 is switched from an actuated to a non-actuated mode, the override element 70 and retainer feature 72a prevent the override actuator from retracting, and thus from disengaging. Thus, it is provided that the override remains actuated even in case power is interrupted. For disengaging the override actuator, here a small movement of the intermediate body suffices to disengage the override element 70 from the retainer feature 72a and allow the override actuator 71 to retract.
[0138] In one aspect of the present embodiment, the override element 70 may be switched by a control unit of the vehicle (not shown), for example a TCU unit (not shown). This has the advantageous effect that the control unit remains in control, whereas solutions employing mechanical override can cause unintended roll away of the vehicle. In addition, an advantageous aspect of TCU control over switching of override function is theft prevention.
[0139] According to an other aspect, the provided override system may be arranged to maintain the park lock in an unengaged position. Optimally, in override the override system consumes no power. In the example this is i.a. achieved by use of the override element 70 and retainer feature 72a. Hence, the park lock can be maintained in override for prolonged periods of time, e.g. during towing, without draining vehicle power.
[0140] In an other aspect the override system may be arranged to be switched out of override, i.e. returning the park lock system back to normal behaviour, using the control unit of the vehicle (not shown), here, for actuating the intermediate body 72. This can e.g. provide an advantage in that the override function cannot be deactivated without user control of the control unit. Hence, e.g. unsafe situations may be avoided.
[0141] In the present embodiment the park lock override system comprises a separate override actuator 71. An advantageous aspect of using a separate override actuator is that it provides robustness. In this example, the normal position of override actuator 71 is in the unengaged position. As already explained, here the override actuator 71 comprises an electrical solenoid.
[0142] An override function of the present override system can comprise the following sequence of steps; using hydraulic pressure to hydraulic actuator 40 to revert an engaged park lock to an unengaged state; engaging the override actuator 71; reducing the hydraulic pressure, thereby engaging the override element 70 and retainer feature 72a; and subsequently disengaging the override actuator 71. The override function will then remain enabled because the override element 70 is locked into intermediate body 72.
[0143] Switching the override element 70 back to an unengaged position from an engaged position, thereby bringing the park lock system back to standard park function, comprises applying hydraulic pressure to hydraulic actuator 40 while the override actuator 71 is in an unengaged state. This allows the override element 70 and retainer feature 72a to disengage, and in turn the override actuator 71 to retract.
[0144] Advantageously, the override system can be armed in case of electric power failure by means of a dedicated arrangement.
[0145]
[0146] Other aspects and advantages regarding, functionality and robustness, relating to the addition of an override function, as described in the first exemplary embodiment, also apply to the present embodiment.
[0147]
[0148] Switching element 70 may be switched between an engaged and unengaged position by switching actuator 52 between engaged and unengaged states. In a procedure similar to the one applicable to the embodiment described in respect of
[0149] An override function of the present embodiment of a park lock system comprising a combined locking and override element can comprise the following sequence of steps; using hydraulic pressure to hydraulic actuator 40 to revert an engaged park lock to an unengaged state; further increasing the hydraulic pressure to move intermediate body 72 to the locking position; engaging the actuator 52; reducing the hydraulic pressure and subsequently unengaging the actuator. The override function will remain enabled because the switching element 70 is locked into the locking position provided by the retaining feature 72a on intermediate body 72.
[0150] Switching the switching element 70 back to an unengaged position from an engaged position, thereby bringing the system back to standard park function, comprises applying hydraulic pressure to hydraulic actuator 40 while the override actuator is in an unengaged state.
[0151] Herein, the invention is described with reference to specific examples of embodiments of the invention. It will, however, be evident that various modifications and changes may be made therein, without departing from the essence of the invention. For the purpose of clarity and a concise description features are described herein as part of the same or separate examples or embodiments, however, alternative embodiments having combinations of all or some of the features described in these separate embodiments are also envisaged.
[0152] The transmission system may be implemented in a vehicle, such as cars, recreational vehicles, trucks, buses, bicycles, motorcycles, lawn mowers, agricultural vehicles, construction vehicles, golf carts, trolleys and robotic vehicles. Other vehicles are possible as well. The shown embodiments involved vehicles comprising four wheels, however vehicles with a different number of wheels can be utilized. It also perceivable that a plurality of transmission systems are included in a vehicle.
[0153] Actuation of the coupling members may be performed by means of a hydraulic actuation system. However other embodiments may include actuation by means of mechanical, electromechanical or electro-hydraulic systems. A combination of actuation systems for the different components of the transmission are also envisaged.
[0154] The motor or engine of the vehicle comprising the transmission system according the current invention may include any combination of an internal combustion engine and an electric motor. Other motors and engines are possible as well such as a fuel-cell motor. In some embodiments, the motor is a hybrid engine and/or could include multiple types of engines and/or motors. For instance, a gas-electric hybrid car could include a gasoline engine and an electric motor. Other examples are possible.
[0155] It will be appreciated that the methods may include computer implemented steps. Embodiments may comprise computer apparatus, wherein processes performed in computer apparatus. The invention also extends to computer programs, particularly computer programs on or in a carrier, adapted for putting the invention into practice. The program may be in the form of source or object code or in any other form suitable for use in the implementation of the processes according to the invention. The carrier may be any entity or device capable of carrying the program. For example, the carrier may comprise a storage medium, such as a ROM, for example a semiconductor ROM or hard disk. Further, the carrier may be a transmissible carrier such as an electrical or optical signal which may be conveyed via electrical or optical cable or by radio or other means, e.g. via the internet or cloud.
[0156] Some embodiments may be implemented, for example, using a machine or tangible computer-readable medium or article which may store an instruction or a set of instructions that, if executed by a machine, may cause the machine to perform a method and/or operations in accordance with the embodiments.
[0157] Various embodiments may be implemented using hardware elements, software elements, or a combination of both. Examples of hardware elements may include processors, microprocessors, circuits, application specific integrated circuits (ASIC), programmable logic devices (PLD), digital signal processors (DSP), field programmable gate array (FPGA), logic gates, registers, semiconductor device, microchips, chip sets, et cetera. Examples of software may include software components, programs, applications, computer programs, application programs, system programs, machine programs, operating system software, mobile apps, middleware, firmware, software modules, routines, subroutines, functions, computer implemented methods, procedures, software interfaces, application program interfaces (API), methods, instruction sets, computing code, computer code, et cetera.
[0158] Herein, the invention is described with reference to specific examples of embodiments of the invention. It will, however, be evident that various modifications, variations, alternatives and changes may be made therein, without departing from the essence of the invention. For the purpose of clarity and a concise description features are described herein as part of the same or separate embodiments, however, alternative embodiments having combinations of all or some of the features described in these separate embodiments are also envisaged and understood to fall within the framework of the invention as outlined by the claims. The specifications, figures and examples are, accordingly, to be regarded in an illustrative sense rather than in a restrictive sense. The invention is intended to embrace all alternatives, modifications and variations which fall within the spirit and scope of the appended claims. Further, many of the elements that are described are functional entities that may be implemented as discrete or distributed components or in conjunction with other components, in any suitable combination and location.
[0159] In the claims, any reference signs placed between parentheses shall not be construed as limiting the claim. The word comprising does not exclude the presence of other features or steps than those listed in a claim. Furthermore, the words a and an shall not be construed as limited to only one, but instead are used to mean at least one, and do not exclude a plurality. The mere fact that certain measures are recited in mutually different claims does not indicate that a combination of these measures cannot be used to an advantage.