FUEL INJECTOR INTERNAL COMBUSTION ENGINE AND VEHICLE
20250264080 · 2025-08-21
Assignee
Inventors
Cpc classification
F02M2200/21
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M47/027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M47/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fuel injector (1) is disclosed comprising a needle (15) a fuel supply port (17) fluidly connected to a fuel cavity (13) and a control valve arrangement (3) comprising a control valve (4) fluidly connected to the fuel cavity (13). The control valve arrangement (3) comprises an armature assembly (6) connected to the control valve (4) via a valve control portion (6) of the armature assembly (6). The control valve arrangement (3) comprises an armature actuator (7) configured to move the armature assembly (6) to cause a lift of the needle (15) from a valve seat (12) and a movement limiting assembly (9, 9, 9, 9) configured to limit the movement of the valve control portion (6) upon activation. The movement limiting assembly (9, 9, 9, 9) is configured to be activated by changing the polarity of the electricity supplied to the armature actuator (7). The present disclosure further relates to an internal combustion engine (40) and a vehicle (2).
Claims
1. A fuel injector (1) configured to inject fuel into a combustion chamber (42) of an internal combustion engine (40), the fuel injector (1) comprising: an injector body (10) forming a valve seat (12), a fuel orifice (11) at the valve seat (12), and a fuel cavity (13) fluidly connected to the fuel orifice (11), a needle (15) arranged in the injector body (10) and being configured to open and close the fuel orifice (11) by interacting with the valve seat (12), a fuel supply port (17) fluidly connected to the fuel cavity (13), and a control valve arrangement (3), wherein the control valve arrangement (3) comprises: a control valve (4) fluidly connected to a control volume (13) of the fuel cavity (13), an armature assembly (6) operably connected to the control valve (4) via a valve control portion (6) of the armature assembly (6), an armature actuator (7) configured to move the armature assembly (6) from a closing position towards an opening position to open the control valve (4) thereby causing a lift of the needle (15) from the valve seat (12) by hydraulic pressure of fuel supplied to the fuel cavity (13) via the fuel supply port (17), and a movement limiting assembly (9, 9, 9, 9) configured to limit the movement of the valve control portion (6) upon activation, wherein the movement limiting assembly (9, 9, 9, 9) is configured to be activated by changing the polarity of the electricity supplied to the armature actuator (7).
2. The fuel injector (1) according to claim 1, wherein the control valve arrangement (3) comprises a spring (8) configured to apply a biasing force onto the armature assembly (6) towards the closing position.
3. The fuel injector (1) according to claim 2, wherein the movement limiting assembly (9, 9, 9, 9) is configured to limit the movement of the valve control portion (6) by increasing the biasing force of the spring (8).
4. The fuel injector (1) according to claim 2, wherein the spring (8) is a coil spring, and wherein at least part of the movement limiting assembly (9, 9, 9) is arranged inside the spring (8).
5. The fuel injector (1) according to claim 2, wherein the spring (8) is a coil spring, and wherein the movement limiting assembly (9, 9) is configured to limit the movement of the valve control portion (6) by inserting a number of elements (23) between windings of the spring (8) upon activation.
6. The fuel injector (1) according to claim 2, wherein the spring (8) is configured to apply the biasing force onto the armature assembly (6) by applying a separating force between a first and second abutments (31, 32), and wherein the movement limiting assembly (9) is configured to limit the movement of the valve control portion (6) by reducing the distance (d) between the first and second abutments (31, 32) upon activation.
7. The fuel injector (1) according to claim 1, wherein the armature actuator (7) is configured to move the armature assembly (6) by moving an armature unit (36) of the armature assembly (6), and wherein the movement limiting assembly (9) is arranged between the armature unit (36) and the valve control portion (6).
8. The fuel injector (1) according to claim 7, wherein the movement limiting assembly (9) is configured to limit the movement of the valve control portion (6) by increasing the distance (d) between the armature unit (36) and the valve control portion (6).
9. The fuel injector (1) according to claim 1, wherein the armature actuator (7) comprises an electromagnet (7) configured to generate a magnetic field to move the armature assembly (6) from the closing position towards the opening position.
10. The fuel injector (1) according to claim 9, wherein the movement limiting assembly (9, 9, 9, 9) comprises a magnet (37) configured to assume different positions based on the polarity of the electricity supplied to the electromagnet (7).
11. The fuel injector (1) according to claim 10, wherein the movement limiting assembly (9, 9, 9, 9) comprises an excentre (35) operably connected to the magnet (37).
12. The fuel injector (1) according to claim 1, wherein the control valve arrangement (3) comprises a movement limiting actuator (27, 27) in form of a polarity switching assembly for activating the movement limiting assembly (9, 9, 9, 9).
13. The fuel injector (1) according to claim 12, wherein the movement limiting actuator (27) comprises a piezoelectric element.
14. The fuel injector (1) according to claim 12, wherein the movement limiting actuator (27) comprises a linear motor.
15. An internal combustion engine (40) comprising a fuel injector (1) according to claim 1, wherein the fuel injector (1) is configured to inject fuel into a combustion chamber (42) of the internal combustion engine (40).
16. A vehicle (2) comprising an internal combustion engine (40) according to claim 15.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0039] Various aspects of the invention, including its particular features and advantages, will be readily understood from the example embodiments discussed in the following detailed description and the accompanying drawings, in which:
[0040]
[0041]
[0042]
[0043]
[0044]
[0045]
[0046]
[0047]
[0048]
[0049]
DETAILED DESCRIPTION
[0050] Aspects of the present invention will now be described more fully. Like numbers refer to like elements throughout. Well-known functions or constructions will not necessarily be described in detail for brevity and/or clarity.
[0051]
[0052] The vehicle 2 comprises an internal combustion engine 40. According to the illustrated embodiments, the internal combustion engine 40 is configured to provide motive power to the vehicle 2 via wheels 57 of the vehicle 2.
[0053]
[0054] The vehicle 2 may comprise one or more electric propulsion motors in addition to the internal combustion engine 40 for providing motive power to the vehicle 2. Thus, the vehicle 2, as referred to herein, may comprise a so-called hybrid electric powertrain comprising one or more electric propulsion motors in addition to the combustion engine 40 for providing motive power to the vehicle 2.
[0055] According to the illustrated embodiments, the internal combustion engine 40 comprises six cylinders 20 arranged in one row. The internal combustion engine 40 according to the illustrated embodiments may therefore be referred to an inline-six engine. However, according to further embodiments, the internal combustion engine 40, as referred to herein, may comprise another number of cylinders 20. Moreover, the cylinders 20 of the internal combustion engine 40 may be arranged in another configuration than in one row, such as in two or more rows.
[0056] According to embodiments herein, the internal combustion engine 40 is a four-stroke internal combustion engine. Moreover, according to the illustrated embodiments, the internal combustion engine 40 is a diesel engine, i.e., a type of compression ignition engine. The internal combustion engine 40 may thus be a compression ignition engine configured to operate on diesel or a diesel-like fuel, such as biodiesel, biomass to liquid (BTL), or gas to liquid (GTL) diesel. Diesel-like fuels, such as biodiesel, can be obtained from renewable sources such as vegetable oil which mainly comprises fatty acid methyl esters (FAME). Diesel-like fuels can be produced from many types of oils, such as rapeseed oil (rapeseed methyl ester, RME) and soybean oil (soy methyl ester, SME).
[0057] According to further embodiments, the internal combustion engine 40, as referred to herein, may be an Otto engine with a spark-ignition device, wherein the Otto engine may be configured to run on petrol, alcohol, similar volatile fuels, or combinations thereof. Alcohol, such as ethanol, can be derived from renewable biomass. According to some embodiments, the internal combustion engine 40, as referred to herein, may be arranged to power another type of device or system than a vehicle, such as for example an electric generator.
[0058] Each cylinder 20 of the internal combustion engine 40 comprises a piston connected to a crankshaft of the internal combustion engine 40, wherein the piston is configured to reciprocate in the cylinder upon rotation of the crankshaft. Combustion chambers 42 are formed between a piston top and cylinder walls of the cylinders 20 of the internal combustion engine 40.
[0059] The internal combustion engine 40 comprises a number of fuel injectors 1, wherein each fuel injector 1 is configured to inject fuel into a combustion chamber 42 the internal combustion engine 40. In other words, according to the illustrated embodiments, the internal combustion engine 40 comprises the same number of fuel injectors 1 as the number of cylinders 20.
[0060]
[0061]
[0062] The fuel injector 1 comprises an injector body 10 forming a valve seat 12, a fuel orifice 11 at the valve seat 12, and a fuel cavity 13 fluidly connected to the fuel orifice 11. Moreover, the fuel injector 1 comprises a needle 15 arranged in the injector body 10. The needle 15 is movably arranged in the injector body 10 between a closing position and an opening position. In the closing position, the needle 15 abuts against the valve seat 12 to close a fluid connection between the fuel cavity 13 and the fuel orifice 11. In the opening position, the needle 15 is lifted from the valve seat 12 to open a fluid connection between the fuel cavity 13 and the fuel orifice 11. In other words, the needle 15 is configured to open and close the fuel orifice 11 by interacting with the valve seat 12.
[0063] According to the illustrated embodiments, the needle 15 is movably arranged in the injector body 10 along the directions d1 and d2 indicated in
[0064] In
[0065] The fuel injector 1 further comprises a fuel supply port 17 fluidly connected to the fuel cavity 13. The fuel supply port 17 is configured to be connected to a high-pressure fuel supply conduit. That is, the internal combustion engine 40 comprising the fuel injector 1 may comprise a fuel supply system configured to supply fuel at high pressure to each fuel supply port 17 of the fuel injectors 1 of the internal combustion engine 40.
[0066] The fuel supply system may be a so-called common rail system. The fuel supply system may be configured to supply fuel at a pressure of above 300 bar, or above 1 500 bar, to each fuel supply port 17 of the fuel injectors 1 of the internal combustion engine 40.
[0067] The fuel injector 1 comprises a control valve arrangement 3. As is further explained herein, the control valve arrangement 3 is configured to control the movement of the needle 15 between the opening and closing position by controlling a hydraulic pressure inside a control volume 13 of the fuel cavity 13.
[0068]
[0069] The control valve arrangement 3 comprises a control valve 4. The control valve 4 is fluidly connected to the control volume 13 of the fuel cavity 13 via a channel 18. As is best seen in
[0070] According to the illustrated embodiments, the control valve 4 comprises a ball valve configured to abut against a control valve seat 4 when the valve is closed, as is illustrated in
[0071] As is further explained herein, the control valve arrangement 3 comprises an armature assembly 6 operably connected to the control valve 4 via a valve control portion 6 of the armature assembly 6.
[0072] In more detail, the armature assembly 6 comprises an armature unit 36, a plunger 16, a spring 8, and a retainer 38. The plunger 16 is movably arranged in the armature unit 36. However, the plunger 16 comprises a plunger abutment 16 configured to abut against an armature abutment 36 of the armature unit 36. The plunger 16 is biased by the spring 8 in a direction d2 towards the armature unit 36 and towards the retainer 38. According to the illustrated embodiments, the spring 8 is a coil spring. The abutting contact between the plunger abutment 16 and the armature abutment 36 forces the armature unit 36 in the direction d2 towards the retainer 38.
[0073] A respective end portion of the plunger 16 and of the armature unit 36 abuts against the retainer 38. The retainer 38 is in abutting contact with the ball valve of the control valve 4.
[0074] Thus, due to these features, the spring 8 also biases the retainer 38 in the direction d2 towards the control valve 4, and thereby also the ball valve of the control valve 4 against the control valve seat 4. The control valve arrangement 3 comprises a second spring member 28 configured to bias the armature unit 36 in the direction d1 away from the control valve seat 4. However, the biasing force of the second spring member 28 is lower than the biasing force of the spring 8. In other words, due to these features, the spring 8 is configured to force, i.e., apply a biasing force onto, the armature assembly 6 towards a closing position. As is indicated in
[0075] The control valve arrangement 3 comprises an armature actuator 7. As is further explained in the following, the armature actuator 7 is configured to move the armature assembly 6 from a closing position towards an opening position to open the control valve 4 thereby causing a lift of the needle 15 from the valve seat 12 by hydraulic pressure of fuel supplied to the fuel cavity 13 via the fuel supply port 17 of the fuel injector 1.
[0076] According to the illustrated embodiments, the armature actuator 7 is configured to move the armature assembly 6 from the closing position towards an opening position by moving the armature unit 36 in the direction d1 away from the control valve 4 when the armature actuator 7 is activated. Due to the abutting contact between the plunger abutment 16 and the armature abutment 36, the plunger 16 is also moved in the direction d1 away from the control valve 4 when the armature actuator 7 is activated.
[0077] As mentioned, the control volume 13 of the fuel cavity 13 is fluidly connected to the remaining part of the fuel cavity 13, and thereby also to the fuel supply port 17, via a narrow flow restricting channel. Therefore, the fuel pressure inside the control volume 13 of the fuel cavity 13 substantially corresponds to the fuel pressure in the remaining part of the fuel cavity 13 when the control valve 4 is closed at steady state conditions. As an example, if a fuel pressure of approximately 1 500 bar is supplied to the fuel supply port 17 and the control valve 4 is closed, the fuel pressure inside the control volume 13 of the fuel cavity 13 will rise to 1 500 bar after a certain short time. This is because the control volume 13 of the fuel cavity 13 is fluidly connected to the remaining part of the fuel cavity 13 via the narrow flow restricting channel.
[0078] However, when the armature actuator 7 is activated and the valve control portion 6 of the armature assembly 6 is moved in the direction d1 away from the retainer 38, a movement of the ball valve of the control valve 4 is allowed in a direction d1 away from the control valve seat 4. Accordingly, the high pressure of fuel in the channel 18, which is connected to the control valve 4, forces the ball valve 4 and the retainer 38 in the direction d1 away from the control valve seat 4 when the valve control portion 6 of the armature assembly 6 is moved in the direction d1 away from the control valve seat 4.
[0079] In this manner, the control valve 4 is opened and fuel is allowed to flow from the control volume 13 through the channel 18, through the control valve 4 into a drainage passage 44 of the fuel injector 1 which reduces the pressure of fuel inside the control volume 13. Due to the narrow flow restricting channel connecting the control volume 13 to the remaining part of the fuel cavity 13, the fuel pressure inside the control volume 13 will be lower than the fuel pressure inside the remaining part of the fuel cavity 13. As a result, the hydraulic pressure of fuel inside the fuel cavity 13 acting on the needle 15 lifts the needle 15 from the valve seat 12. In this manner, fuel is allowed to flow from the fuel cavity 13 into a combustion chamber 42 via the fuel orifice 11 of the fuel injector 1.
[0080] The feature that the needle 15 is lifted from the valve seat 12 means that the needle 15 is moved in a direction d1 away from the valve seat 12. The spring member 14 is compressed when the needle 15 is lifted from the valve seat 12. Likewise, as understood from the above described, the spring 8 of the control valve arrangement 3 is compressed when the armature actuator 7 is moved towards the opening position.
[0081] When the armature actuator 7 is deactivated, the biasing force of the spring 8 moves the armature assembly 6 towards the closing position, i.e., moves the valve control portion 6 of the armature assembly 6 in the direction d2 towards the retainer 38. The retainer 38 is thereby moved in the direction d2 towards the ball valve of the control valve 4 which moves the ball valve of the control valve 4 towards the control valve seat 4. When the ball valve of the control valve 4 reaches the control valve seat 4 and is pressed against the control valve seat 4, the control valve 4 closes which prevents further flow of fuel from the control volume 13 to the drainage passage 44 via the control valve 4.
[0082] In this manner, the pressure of fuel rises inside the control volume 13 which together with the biasing force of the spring member 14 forces the needle 15 to move towards the valve seat 12 which closes the fuel orifice 11 thereby preventing further flow of fuel into a combustion chamber 42 via the fuel orifice 11.
[0083] According to the illustrated embodiments, the armature actuator 7 comprises an electromagnet 7 configure to generate a magnetic field to move the armature assembly 6 from the closing position towards the opening position. The electromagnet 7 comprises wire windings connected to a pair of electrical connections 46, 46. The pair of electrical connections 46, 46 is also indicated in
[0084] According to embodiments herein, the control valve arrangement 3 comprises a movement limiting assembly 9, 9. The movement limiting assembly 9, 9 is configured to limit the movement of the valve control portion 6 of the armature assembly 6 when the movement limiting assembly 9, 9 is activated. In this manner, as is further explained herein, a slower and more controlled movement of the valve control portion 6 of the armature assembly 6 is provided upon activation of the movement limiting assembly 9, 9. In this manner, a slower and more controlled lift movement of the needle 15 can be provided upon activation of the movement limiting assembly 9, 9.
[0085] Thereby, a fuel injector 1 is provided having conditions for performing more controlled and accurate smaller types of injections, such as pilot and post injections, simply by activating the movement limiting assembly 9, 9. Moreover, a fuel injector 1 is provided having conditions for allowing faster lift movements of the needle 15 when wanted, such as upon larger types of injections, for example larger types of main injections, simply by not activating, or by deactivating, the movement limiting assembly 9, 9.
[0086] According to the embodiments illustrated in
[0087]
[0088] According to the embodiments illustrated in
[0089] According to the embodiments illustrated in
[0090]
[0091] According to the embodiments illustrated in
[0092] According to these embodiments, the magnet 37 is configured to assume different positions based on the polarity of the electricity supplied to the electromagnet 7. That is, in these embodiments, the movement limiting assembly 9, 9, 9 is activated by changing the polarity of the electricity supplied to the armature actuator 7.
[0093] As is indicated in
[0094] In
[0095]
[0096] Since the magnet 37 is configured to assume different positions based on the polarity of the electricity supplied to the armature actuator 7, the excentre 35 can be moved between the first and second positions simply by changing the polarity of the electricity supplied to the armature actuator 7. In other words, due to the features of the movement limiting assembly 9, 9, 9, the relative distance between the two assembly members 52, 54 can be changed simply by changing the polarity of the electricity supplied to the armature actuator 7.
[0097] The movement limiting assembly 9, 9, 9 according to the embodiments illustrated in
[0098] Moreover, according to some embodiments, the movement limiting actuator 27 of the movement limiting assembly 9 according to the embodiments illustrated in
[0099] According to the embodiments illustrated in
[0100]
[0101] According to these embodiments, the movement limiting assembly 9 is configured to limit the movement of the valve control portion 6 of the armature assembly 6 by reducing the distance d between the first and second abutments 31, 32 upon activation.
[0102] By reducing distance d between the first and second abutments 31, 32, the biasing force of the spring 8 is increased. Moreover, by reducing distance d between the first and second abutments 31, 32, the ability of the spring to compress is reduced. In this manner, the movement limiting assembly 9 can limit the movement of the valve control portion 6 of the armature assembly 6 when the movement limiting assembly 9 is activated.
[0103] According to these embodiments, the movement limiting assembly 9 is arranged above the spring 8 as seen relative to the direction d1 indicated in
[0104] The movement limiting assembly 9 may comprise a movement limiting actuator 27 in the form of a piezoelectric element, a linear motor, or the like, for controlling the distance d between the first and second abutments 31, 32.
[0105] As an alternative, or in addition, the movement limiting assembly 9 illustrated in
[0106] According to such embodiments, one of the two assembly members 52, 54 may be operably connected to one of the first and second abutments 31, 32. Accordingly, in such embodiments, the distance d between the first and second abutments 31, 32 can be reduced by changing the polarity of the electricity supplied to the armature actuator 7 such that the excentre 35 assumes the second position illustrated in
[0107]
[0108] According to the embodiments illustrated in
[0109] In these embodiments, the movement limiting assembly 9 is configured to limit the movement of the valve control portion 6 by increasing the distance d between the armature unit 36 and the valve control portion 6. Thus, by activating the movement limiting assembly 9 the movement transferred from the armature unit 36 to the valve control portion 6 can be limited.
[0110] The movement limiting assembly 9 may comprise a movement limiting actuator 27 in the form of a piezoelectric element, a linear motor, or the like, for controlling the distance d between the armature unit 36 and the valve control portion 6.
[0111] As an alternative, or in addition, the movement limiting assembly 9 illustrated in
[0112] According to such embodiments, one of the two assembly members 52, 54 may be operably connected to the valve control portion 6 and the other of the two assembly members 52, 54 may be operably connected to the armature unit 36. Accordingly, in such embodiments, the distance d between the armature unit 36 and the valve control portion 6 can be increased by changing the polarity of the electricity supplied to the armature actuator 7 such that the excentre 35 assumes the second position illustrated in
[0113] The following is explained with simultaneous reference to
[0114] According to the embodiments illustrated in
[0115] Moreover, according to the embodiments illustrated in
[0116] In addition, due to the features of the fuel injector 1, conditions are provided for a control of the speed of the needle 15 during an injection event. For example, the movement limiting assembly 9, 9, 9, 9 can be activated if there is a need for controlling the speed of the needle 15 after a certain lift.
[0117] Moreover, by changing the activation state of the movement limiting assembly 9, 9, 9, 9 during an injection event, considerable benefits to the rate shape can be obtained. That is, by controlling the activation state of the movement limiting assembly 9, 9, 9, 9, the pressure inside the control volume 13 can be controlled, which can provide several advantages, including a reduction of Start Of Injection SOI delays as well as End Of Injection EOI delays. Furthermore, by controlling the activation state of the movement limiting assembly 9, 9, 9, 9, the time needed for filling the control volume 13 with pressure can be reduced.
[0118] The control arrangement 21 of the internal combustion engine 40 may comprise a calculation unit which may take the form of substantially any suitable type of processor circuit or microcomputer, e.g. a circuit for digital signal processing (digital signal processor, DSP), a Central Processing Unit (CPU), a processing unit, a processing circuit, a processor, an Application Specific Integrated Circuit (ASIC), a microprocessor, or other processing logic that may interpret and execute instructions. The herein utilised expression calculation unit may represent a processing circuitry comprising a plurality of processing circuits, such as, e.g., any, some or all of the ones mentioned above.
[0119] The control arrangement 21 may further comprise a memory unit, wherein the calculation unit may be connected to the memory unit, which may provide the calculation unit with, for example, stored program code and/or stored data which the calculation unit may need to enable it to do calculations. The calculation unit may also be adapted to store partial or final results of calculations in the memory unit. The memory unit may comprise a physical device utilised to store data or programs, i.e., sequences of instructions, on a temporary or permanent basis. According to some embodiments, the memory unit may comprise integrated circuits comprising silicon-based transistors. The memory unit may comprise e.g., a memory card, a flash memory, a USB memory, a hard disc, or another similar volatile or non-volatile storage unit for storing data such as e.g., ROM (Read-Only Memory), PROM (Programmable Read-Only Memory), EPROM (Erasable PROM), EEPROM (Electrically Erasable PROM), etc. in different embodiments.
[0120] The control arrangement 21 is connected to components of the internal combustion engine 40 and the fuel injectors 1 for receiving and/or sending input and output signals. These input and output signals may comprise waveforms, pulses, or other attributes which the input signal receiving devices can detect as information and which can be converted to signals processable by the control arrangement 21. These signals may then be supplied to the calculation unit. One or more output signal sending devices may be arranged to convert calculation results from the calculation unit to output signals for conveying to other parts of the vehicle's control system and/or the component or components for which the signals are intended. Each of the connections to the respective components of the internal combustion engine 40 for receiving and sending input and output signals may take the form of one or more from among a cable, a data bus, e.g., a CAN (controller area network) bus, a MOST (media orientated systems transport) bus or some other bus configuration, or a wireless connection.
[0121] In the embodiments illustrated, the internal combustion engine 40 comprises a control arrangement 21 but might alternatively be implemented wholly or partly in two or more control arrangements or two or more control units.
[0122] Control systems in modern vehicles generally comprise a communication bus system consisting of one or more communication buses for connecting a number of electronic control units (ECUs), or controllers, to various components on board the vehicle. Such a control system may comprise a large number of control units and taking care of a specific function may be shared between two or more of them. Vehicles and engines of the type here concerned are therefore often provided with significantly more control arrangements than depicted in
[0123] It is to be understood that the foregoing is illustrative of various example embodiments and that the invention is defined only by the appended independent claims. A person skilled in the art will realize that the example embodiments may be modified, and that different features of the example embodiments may be combined to create embodiments other than those described herein, without departing from the scope of the present invention, as defined by the appended independent claims.
[0124] As used herein, the term comprising or comprises is open-ended, and includes one or more stated features, elements, steps, components, or functions but does not preclude the presence or addition of one or more other features, elements, steps, components, functions, or groups thereof.