PIEZOELECTRIC INJECTOR AND METHOD FOR CONTROLLING THE SAME
20210381477 · 2021-12-09
Assignee
Inventors
Cpc classification
F02M55/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/167
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/1853
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M47/027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M51/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M55/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A piezoelectric injector includes: a first piezo actuator and a second piezo actuator; a control valve connected to the first piezo actuator and the second piezo actuator through a control piston; at least one drain chamber in which the control valve and the control piston are movably received; a control chamber connected to the drain chamber through a first drain throttle and a second drain throttle having different diameters; and a needle movable by a change in fuel pressure of the control chamber to open and close at least one nozzle orifice. As at least one of the first piezo actuator and the second piezo actuator expands, a fuel is drained from the control chamber to the drain chamber through at least one of the first drain throttle and the second drain throttle.
Claims
1. A piezoelectric injector, comprising: an injector body having a high-pressure fuel passage; a nozzle provided in a lower end portion of the injector body, and having at least one nozzle orifice; a first piezo actuator and a second piezo actuator disposed inside the injector body; a control valve connected to the first piezo actuator and the second piezo actuator through a control piston; at least one drain chamber in which the control valve and the control piston are movably received; a control chamber connected to the drain chamber through a first drain throttle and a second drain throttle; and a needle movable by a change in fuel pressure of the control chamber to open and close the nozzle orifice, wherein a fuel is drained from the control chamber to the drain chamber through at least one of the first drain throttle and the second drain throttle as at least one of the first piezo actuator and the second piezo actuator expands.
2. The piezoelectric injector according to claim 1, wherein the first piezo actuator and the second piezo actuator vary a displacement of the control valve.
3. The piezoelectric injector according to claim 1, wherein the first drain throttle and the second drain throttle have different diameters.
4. The piezoelectric injector according to claim 3, wherein the first drain throttle connects a bottom of the drain chamber and an upper end of the control chamber.
5. The piezoelectric injector according to claim 4, wherein the second drain throttle connects a lateral side of the drain chamber and the upper end of the control chamber.
6. The piezoelectric injector according to claim 5, wherein a diameter of the second drain throttle is larger than a diameter of the first drain throttle.
7. The piezoelectric injector according to claim 1, wherein the first piezo actuator is located outward from the second piezo actuator.
8. The piezoelectric injector according to claim 7, wherein the first piezo actuator and the second piezo actuator are connected to the control piston through a support bracket, the first piezo actuator is disposed on an edge of the support bracket, and the second piezo actuator is disposed on a center of the support bracket.
9. The piezoelectric injector according to claim 8, wherein the support bracket has a first support supporting the second piezo actuator, and a second support supporting the first piezo actuator.
10. The piezoelectric injector according to claim 9, wherein a top surface of the second support is located higher than a top surface of the first support.
11. The piezoelectric injector according to claim 7, wherein the first piezo actuator and the second piezo actuator are arranged in parallel to each other.
12. The piezoelectric injector according to claim 7, wherein the first piezo actuator and the second piezo actuator are vertically stacked.
13. A method for controlling a piezoelectric injector, the piezoelectric injector comprising: a first piezo actuator and a second piezo actuator; a control valve which is connected to the first piezo actuator and the second piezo actuator through a control piston; at least one drain chamber in which the control valve and the control piston are movably received; a control chamber which is connected to the drain chamber through a first drain throttle and a second drain throttle having different diameters; a needle which is movable by a change in fuel pressure of the control chamber to open and close at least one nozzle orifice; and a controller controlling the first piezo actuator and the second piezo actuator, wherein a fuel is drained from the control chamber to the drain chamber through at least one of the first drain throttle and the second drain throttle as at least one of the first piezo actuator and the second piezo actuator expands, the method comprising: applying, by the controller, a current to at least one of the first piezo actuator and the second piezo actuator so that at least one of the first piezo actuator and the second piezo actuator expands.
14. The method according to claim 13, wherein the controller applies the current to the first piezo actuator and the second piezo actuator at different timing so that the first piezo actuator and the second piezo actuator expand at different timing.
15. The method according to claim 13, wherein the controller only applies the current to the first piezo actuator so that only the first piezo actuator expands.
16. The method according to claim 13, wherein the controller only applies the current to the second piezo actuator so that only the second piezo actuator expands.
17. The method according to claim 13, wherein the controller applies the current to the first piezo actuator and the second piezo actuator sequentially so that the first piezo actuator expands and the second piezo actuator expands sequentially.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0029] The above and other objects, features and advantages of the present disclosure should be more apparent from the following detailed description taken in conjunction with the accompanying drawings:
[0030]
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[0041]
DETAILED DESCRIPTION
[0042] Hereinafter, embodiments of the present disclosure are described in detail with reference to the accompanying drawings. In the drawings, the same reference numerals are used throughout to designate the same or equivalent elements. In addition, a detailed description of well-known techniques associated with the present disclosure has been omitted in order not to unnecessarily obscure the gist of the present disclosure.
[0043] Terms such as first, second, A, B, (a), and (b) may be used to describe the elements in embodiments of the present disclosure. These terms are only used to distinguish one element from another element, and the intrinsic features, sequence or order, and the like of the corresponding elements are not limited by the terms. Unless otherwise defined, all terms used herein, including technical or scientific terms, have the same meanings as those generally understood by those having ordinary skill in the art to which the present disclosure belongs. Such terms as those defined in a generally used dictionary are to be interpreted as having meanings equal to the contextual meanings in the relevant field of art. Such terms are not to be interpreted as having ideal or excessively formal meanings unless clearly defined as having such in the present disclosure. When a component, device, element, or the like of the present disclosure is described as having a purpose or performing an operation, function, or the like, the component, device, or element should be considered herein as being “configured to” meet that purpose or to perform that operation or function. Further, the controller described herein may include a processor programmed to perform the noted operation, function, operation, or the like.
[0044] Referring to
[0045] The injector body 11 may include a nozzle 12 provided in a lower end portion thereof, and the nozzle 12 may have at least one nozzle orifice 12a. The nozzle orifice 12a may be formed in a bottom end of the nozzle 12, and the nozzle orifice 12a may be opened and closed by up-and-down movements of the needle 15.
[0046] A bushing 15a may be disposed around an upper end of the needle 15, and the control chamber 14 may be defined by an inner surface of the bushing 15a and the upper end of the needle 15. As the upper end of the needle 15 moves within the control chamber 14, a volume of the control chamber 14 may be varied, and thus a fuel pressure in the control chamber 14 may change. When the fuel pressure in the control chamber 14 is higher than a predetermined pressure, the needle 15 may move down toward the closed position in which the nozzle orifice 12a is closed. When the fuel pressure in the control chamber 14 is lower than a predetermined pressure, the needle 15 may move up toward the open position in which the nozzle orifice 12a is opened.
[0047] A washer 15b may be fixed to an outer surface of the needle 15, and the washer 15b may be spaced apart from the bushing 15a toward the bottom of the needle 15. A spring 15c may be disposed between the bushing 15a and the washer 15b. The needle 15 may return to its original position by the spring 15c.
[0048] The injector body 11 may have a high-pressure fuel passage 17 therein, and the high-pressure fuel passage 17 may be connected to a common rail through a supply port (not shown). The high-pressure fuel passage 17 may receive a high-pressure fuel from the common rail. The supply port (not shown) may be provided in an upper portion of the injector body 11.
[0049] The high-pressure fuel passage 17 may communicate with the control chamber 14 through an inlet throttle 31, and thus the high-pressure fuel may pass through the high-pressure fuel passage 17 and fill the control chamber 14. A small-diameter throttle 31a may be connected to a lower end of the inlet throttle 31, and a diameter of the small-diameter throttle 31a may be smaller than that of the inlet throttle 31. The high-pressure fuel passage 17 may communicate with the nozzle chamber 16 through a nozzle throttle 32, and thus the high-pressure fuel may pass through the high-pressure fuel passage 17 and fill the nozzle chamber 16.
[0050] The two or more piezo actuators 21 and 22 may be disposed in different positions inside the injector body 11. An upper end of each of the piezo actuators 21 and 22 may be fixed to the injector body 11, and a lower end of each of the piezo actuators 21 and 22 may move upward and downward within the injector body 11.
[0051] According to an embodiment, as electric energy is charged or discharged, each of the piezo actuators 21 and 22 may be expanded or contracted by being deformed. Specifically, the piezo actuators 21 and 22 may be piezo stack actuators in which a plurality of piezo elements 21a and 22a are stacked. For example, when the plurality of piezo elements 21a and 22a of 90 μm are stacked, and the electric energy is charged by applying a voltage of about 200V to the piezo elements 21a and 22a, the piezo elements 21a and 22a may be expanded by a length of about 1.5 to 2% due to an electric field. When the electric energy is discharged from the plurality of piezo elements 21a and 22a with no voltage applied, the piezo elements 21a and 22a may be contracted to their original state. As another example, when a forward current or a positive voltage is applied to each of the piezo actuators 21 and 22, each of the piezo actuators 21 and 22 may be expanded by a predetermined length. When a reverse current or a negative voltage is applied to each of the piezo actuators 21 and 22, each of the piezo actuators 21 and 22 may be contracted to its original state. A controller 80 may be electrically connected to the piezo actuators 21 and 22. The controller 80 may control the energizing or de-energizing of each of the piezo actuators 21 and 22, energizing time thereof, a voltage or current level applied to each of the piezo actuators 21 and 22, timing of application of the voltage or current, etc. depending on a rail pressure for a given engine operating condition. Thus, the controller 80 may receive information on the position of an accelerator pedal or a throttle pedal from an ECU (not shown) of the vehicle, allowing the optimal mapping of injection quantity, injection timing, and injection frequency for each operating point of the engine.
[0052] The two or more piezo actuators 21 and 22 may be operatively connected to a control piston 19 through a support bracket 50, and the support bracket 50 may connect the two or more piezo actuators 21 and 22 and the control piston 19.
[0053] The control valve 13 may move vertically by the piezo actuators 21 and 22. The control valve 13 may be connected to the plurality of piezo actuators 21 and 22 through the control piston 19 and the support bracket 50. As each of the piezo actuators 21 and 22 operates (contraction and expansion), the control valve 13 may move up and down with the control piston 19 and the support bracket 50. The control valve 13 may be referred to as a servo valve controlled by the controller 80 of a servo mechanism.
[0054] A lower end of the control piston 19 may be connected to the control valve 13 through a lower rod 19a, and an upper end of the control piston 19 may be connected to the support bracket 50 through an upper rod 19b.
[0055] The piezoelectric injector 10 according to an embodiment of the present disclosure may include a valve plate 41 and a throttle plate 42 disposed under the piezo actuators 21 and 22.
[0056] The valve plate 41 may be located under the piezo actuators 21 and 22, and the throttle plate 42 may be located under the valve plate 41.
[0057] The valve plate 41 may be located under the piezo actuators 21 and 22. The valve plate 41 may have a first drain chamber 41a in which the control piston 19 is movably received. For example, an outer surface of the control piston 19 may be spaced apart from an inner surface of the first drain chamber 41a by a fine gap, and thus the fuel may move through the gap between the outer surface of the control piston 19 and the inner surface of the first drain chamber 41a.
[0058] The throttle plate 42 may be located under the valve plate 41. The throttle plate 42 may have a second drain chamber 42a in which the control valve 13 is movably received. For example, an outer surface of the control valve 13 may be spaced apart from an inner surface of the second drain chamber 42a by a fine gap, and thus the fuel may move through the gap between the outer surface of the control valve 13 and the inner surface of the second drain chamber 42a.
[0059] The first drain chamber 41a may communicate with the second drain chamber 42a through an orifice 43, and the orifice 43 may be opened and closed by up-and-down movements of the control valve 13. An upper end of the orifice 43 may be provided with an upper tapered surface 43a corresponding to a lower inclined surface of the control piston 19, and a lower end of the orifice 43 may be provided with a lower tapered surface 43b corresponding to an upper inclined surface of the control valve 13. The orifice 43 may be located between the first drain chamber 41a and the second drain chamber 42a, and the orifice 43 may be formed in any one of the valve plate 41 or the throttle plate 42. In
[0060] The controller 80 may selectively apply a current to any one of two or more piezo actuators 21 and 22 or apply a current to two or more piezo actuators 21 and 22 at different timing depending on a rail pressure for a given engine operating condition. Thus, the operations of the individual piezo actuators 21 and 22 may be controlled independently. The control valve 13 may move up and down in accordance with the operations of the individual piezo actuators 21 and 22, and a displacement or stroke of the control valve 13 may be determined. The control valve 13 may move between an open position in which the orifice 43 is opened and a closed position in which the orifice 43 is closed within the determined displacement or stroke. The displacement or stroke of the control valve 13 moving up and down may vary according to the operations of the individual piezo actuators 21 and 22. In particular, down movement distances t1 and t2 of the control valve 13 may vary according to respective expansion operations of the individual piezo actuators 21 and 22, and thus a fuel injection rate pattern may be varied. For example, as illustrated in
[0061] The second drain chamber 42a may directly communicate with the control chamber 14 through a first drain throttle 33 and a second drain throttle 34.
[0062] When the control valve 13 moves downward and the orifice 43 is opened, the fuel in the control chamber 14 may be drained to the drain chambers 42a and 41a, which are relatively low pressure spaces, through the first drain throttle 33 and/or the second drain throttle 34. Accordingly, the fuel pressure in the control chamber 14 may become lower than the fuel pressure in the nozzle chamber 16, and a vertical downward force applied to the upper end of the needle 15 may be less than a vertical upward force applied to the lower end of the needle 15. When the vertical downward force is less than the vertical upward force, the needle 15 may move up toward the open position in which the nozzle orifice 12a is opened.
[0063] When the control valve 13 moves upward and the orifice 43 is closed, the fuel in the control chamber 14 may not be drained to the drain chambers 42a and 41a. Accordingly, the fuel pressure in the control chamber 14 may become higher than the fuel pressure in the nozzle chamber 16, and the vertical downward force applied to the upper end of the needle 15 may be greater than the vertical upward force applied to the lower end of the needle 15. When the vertical downward force is greater than the vertical upward force, the needle 15 may move down toward the closed position in which the nozzle orifice 12a is closed.
[0064] In other words, the needle 15 may move up and down to open and close the nozzle orifice 12a in response to the movement of the control valve 13.
[0065] The throttle plate 42 may have the inlet throttle 31, the nozzle throttle 32, the first drain throttle 33, and the second drain throttle 34.
[0066] As mentioned above, the inlet throttle 31 may connect the high-pressure fuel passage 17 to the control chamber 14, and the nozzle throttle 32 may connect the high-pressure fuel passage 17 to the nozzle chamber 16. The second drain chamber 42a may communicate with the control chamber 14 through the first drain throttle 33 and the second drain throttle 34.
[0067] The first drain throttle 33 may connect a bottom of the second drain chamber 42a and the control chamber 14. Specifically, an inlet 33a of the first drain throttle 33 may be directly connected to the control chamber 14, and an outlet 33b of the first drain throttle 33 may be directly connected to the bottom of the second drain chamber 42a. In particular, the first drain throttle 33 may vertically connect the control chamber 14 and the second drain chamber 42a. The second drain throttle 34 may connect a lateral side of the second drain chamber 42a and the control chamber 14. Specifically, an inlet 34a of the second drain throttle 34 may be directly connected to the control chamber 14, and an outlet 34b of the second drain throttle 34 may be directly connected to the lateral side of the second drain chamber 42a. In other words, the outlet 34b of the second drain throttle 34 may be located higher than the outlet 33b of the first drain throttle 33.
[0068] As the outlet 33b of the first drain throttle 33 is directly connected to the bottom of the second drain chamber 42a, and the outlet 34b of the second drain throttle 34 is directly connected to the lateral side of the second drain chamber 42a, the outlet 33b of the first drain throttle 33 and the outlet 34b of the second drain throttle 34 may be located at different heights in the second drain chamber 42a in which the control valve 13 moves. As the control valve 13 moves up and down within the second drain chamber 42a, the fuel may be drained (discharged) from the control chamber 14 to the second drain chamber 42a through any one of the first drain throttle 33 and the second drain throttle 34.
[0069] A length of the second drain throttle 34 may be longer than a length of the first drain throttle 33, and a diameter of the second drain throttle 34 may be larger than a diameter of the first drain throttle 33. Thus, when the control valve 13 moves up and down within the second drain chamber 42a, a relatively large amount of fuel may be quickly drained (discharged) from the control chamber 14 to the drain chambers 42a and 41a through the second drain throttle 34.
[0070] The control valve 13 may be connected to the control piston 19 through the lower rod 19a, and thus the control valve 13 may move downward by the expansion of each of the piezo actuators 21 and 22, and the control valve 13 may move upward by the contraction of each of the piezo actuators 21 and 22.
[0071] The control valve 13 may have a stem 13a protruding from a lower end thereof, and a spring 13b may be disposed around the stem 13b of the control valve 13. Thus, the control valve 13 may be elastically supported by the spring 13b, and the control valve 13 may return to its original position by the spring 13b.
[0072] The valve plate 41 may have a fuel passage 17a communicating with the high-pressure fuel passage 17, and the high-pressure fuel passage 17 of the injector body 11 may communicate with the inlet throttle 31 and the nozzle throttle 32 through the fuel passage 17a of the valve plate 41.
[0073] The throttle plate 42 may have the inlet throttle 31 connecting the fuel passage 17a of the valve plate 41 and the control chamber 14. Thus, the high-pressure fuel supplied through the high-pressure fuel passage 17 of the injector body 11 and the fuel passage 17a of the valve plate 41 may pass through the inlet throttle 31 and fill the control chamber 14.
[0074] The throttle plate 42 may have the nozzle throttle 32 connecting the fuel passage 17a of the valve plate 41 and the nozzle chamber 16. Thus, the high-pressure fuel supplied through the high-pressure fuel passage 17 of the injector body 11 and the fuel passage 17a of the valve plate 41 may pass through the nozzle throttle 32 and fill the nozzle chamber 16.
[0075] The bottom surfaces of the two or more piezo actuators 21 and 22 may be in different positions in a state in which all of the piezo actuators 21 and 22 contract, or the two or more piezo actuators 21 and 22 may have different maximum expansion lengths (or different expansion rates) so that the displacement or stroke of the control valve 13 may be varied. When the two or more piezo actuators 21 and 22 individually expand, the displacement of the control valve 13, i.e., the distances t1 and t2 of the control valve 13 moving downward from the orifice 43 may be different. Thus, the fuel in the control chamber 14 may be drained to the second drain chamber 42a through the first drain throttle 33 and/or the second drain throttle 34, and a drain rate of the fuel drained from the control chamber 14 may be varied.
[0076] Referring to
[0077] According to an embodiment, when a voltage or current is applied to the first piezo actuator 21, the first piezo actuator 21 may expand, and when no voltage or current is applied to the first piezo actuator 21, the first piezo actuator 21 may contract. When a voltage or current is applied to the second piezo actuator 22, the second piezo actuator 22 may expand, and when no voltage or current is applied to the second piezo actuator 22, the second piezo actuator 22 may contract.
[0078] According to an embodiment, as illustrated in
[0079] According to another embodiment, the maximum expansion length of the first piezo actuator 21 may be shorter than the maximum expansion length of the second piezo actuator 22. Thus, the down movement distance t1 of the control valve 13 due to the expansion of the first piezo actuator 21 may be less than the down movement distance t2 of the control valve 13 due to the expansion of the second piezo actuator 22.
[0080] Referring to
[0081] Referring to
[0082] Referring to
[0083] Referring to
[0084]
[0085]
[0086]
[0087] The piezoelectric injector 10 according to embodiments of the present disclosure may create variations in fuel injection rate patterns depending on the arrangement of two or more piezo actuators 21 and 22, the operating conditions of two or more piezo actuators 21 and 22, etc.
[0088] In the above-described configuration, the controller 80 may selectively apply a current to any one of two or more piezo actuators 21 and 22 or apply a current to two or more piezo actuators 21 and 22 at different timing depending on a rail pressure for a given engine operating condition. Thus, the operations of the individual piezo actuators 21 and 22 may be controlled independently. The displacement or stroke of the control valve 13 may be varied according to the operations (expansion and/or contraction) of the individual piezo actuators 21 and 22. As the displacement or stroke of the control valve 13 is varied, the fuel may be drained (discharged) from the control chamber 14 to the drain chambers 42a and 41a through the first drain throttle 33 and/or the second drain throttle 34. As the fuel is selectively drained through the first drain throttle 33 and the second drain throttle 34 having different diameters, or as the fuel is drained through the first drain throttle 33 and the second drain throttle 34 at different timing, the fuel drain rate (drain speed) may be varied. As the fuel drain rate is varied, the fuel pressure change rate in the control chamber 14 may be varied, and accordingly the fuel injection rate of the fuel injected through the nozzle 12 of the injector body 11 may be varied. In other words, the drain rate of the fuel drained from the control chamber 14 may be varied depending on selective operations of the two or more piezo actuators 21 and 22, and accordingly the fuel pressure change rate in the control chamber 14 and the fuel injection rate may be varied.
[0089]
[0090]
[0091] As set forth above, according to embodiments of the present disclosure, by varying or changing the fuel injection rate pattern depending on the rail pressure corresponding to any particular engine operating condition, variable control of the fuel injection rate may be efficiently performed. Optimal mapping with respect to the demands of each operating point of the engine through variable control of the fuel injection rate may effectively improve fuel efficiency, smoke emissions reduction, and low combustion noise under the same EM condition.
[0092] According to embodiments of the present disclosure, as the bottom surfaces of two or more piezo actuators are located at different heights in a state in which the piezo actuators contract, the displacement of the control valve may be varied. Thus, the drain rate of the fuel drained from the control chamber may be varied so that the pattern of the fuel injection rate may be varied.
[0093] Hereinabove, although the present disclosure has been described with reference to embodiments and the accompanying drawings, the present disclosure is not limited thereto, but may be variously modified and altered by those having ordinary skill in the art to which the present disclosure pertains without departing from the spirit and scope of the present disclosure claimed in the following claims.