Switch providing on-board diagnostic feedback for electromagnetically actuated latching rocker arm assembly
11713698 ยท 2023-08-01
Assignee
Inventors
Cpc classification
F01L2820/031
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2001/186
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2009/2103
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2800/11
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L13/0005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/185
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01L1/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A rocker arm assembly that includes an electromagnetic latch assembly with a latch pin and an actuator operative to actuate the latch pin between a first position and a second position. The actuator includes an electromagnet powered through a coil circuit. The rocker arm assembly further includes a switch in a switch circuit. The coil circuit and the switch circuit are connected in parallel. Moving the latch pin between the first position and the second position opens and closes the switch. In an alternate embodiment, relative motion of two rocker arms opens and closes the switch. The rocker arm assembly allows OBD information to be obtained without making electrical connections to the rocker arm assembly other than ones provided to power the electromagnet.
Claims
1. A rocker arm assembly, comprising: an electromagnetic latch assembly comprising a latch pin and an actuator, the actuator comprising an electromagnet; a first rocker arm and a second rocker arm that are selectively engaged by the latch pin; a switch circuit comprising a switch; and a coil circuit connected in parallel with the switch circuit to power the electromagnet; wherein: the actuator is operative to actuate the latch pin between a first position and a second position; the rocker arm assembly has a configuration that depends on one or more latch pin positions and relative positions of the first rocker arm and the second rocker arm; the switch is open or closed depending on the configuration of the rocker arm assembly; and the switch is opened and closed by translation of the latch pin.
2. The rocker arm assembly of claim 1, wherein the actuator is operative to actuate the latch pin between the first position and the second position whether the switch is open or closed.
3. The rocker arm assembly of claim 1, wherein: the switch circuit has a higher resistance than the coil circuit; and most of the switch circuit resistance is provide by one or more coatings on contact surfaces of the switch.
4. The rocker arm assembly of claim 1, wherein: the electromagnetic latch assembly comprises terminals at coil tie-offs for the electromagnet; and the terminals are terminals for the switch circuit.
5. The rocker arm assembly of claim 1, wherein the electromagnetic latch assembly comprises one or more permanent magnets that make the latch pin's position stable independently from the electromagnet both when the latch pin is in the first position and when the latch pin is in the second position.
6. The rocker arm assembly of claim 1, wherein one terminal of the coil circuit is grounded through a structure of the rocker arm assembly.
7. The rocker arm assembly of claim 1, wherein the switch is closed by conduction through a structural component of the rocker arm assembly.
8. The rocker arm assembly of claim 7, wherein the switch is opened and closed by translation of the latch pin.
9. The rocker arm assembly of claim 7, wherein the switch is opened and closed by relative movement between the first rocker arm and the second rocker arm.
10. The rocker arm assembly of claim 1, wherein: the actuator comprises a core support configured to translate along an axis through the electromagnet; the core support has first and second ends, opposite one-another along the axis; the latch pin is mounted on the first end of the core support; and the switch is at the second end of the core support.
11. The rocker arm assembly of claim 10, wherein the switch is opened and closed by translation of the latch pin.
12. The rocker arm assembly of claim 1, further comprising: a frame providing electrical contacts for transferring power to the rocker arm assembly; wherein wiring for the switch circuit is mounted to the frame.
13. The rocker arm assembly of claim 12, wherein the switch is opened and closed by translation of the latch pin.
14. The rocker arm assembly of claim 12, wherein the switch is opened and closed by relative movement between the first rocker arm and the second rocker arm.
15. The rocker arm assembly of claim 1, wherein wiring for the switch circuit is inside either the first rocker arm or the second rocker arm.
16. A method of operating the rocker arm assembly of claim 1, comprising: pulsing a circuit that includes the coil circuit; and analyzing a response to the pulse to determine if a portion of the pulse current passed through the switch circuit.
17. The method of claim 16, wherein the pulse is insufficient to actuate the latch pin.
18. A rocker arm assembly, comprising: an electromagnetic latch assembly comprising a latch pin and an actuator, the actuator comprising an electromagnet; a first rocker arm and a second rocker arm that are selectively engaged by the latch pin; a switch circuit comprising a switch; and a coil circuit connected in parallel with the switch circuit to power the electromagnet; wherein: the actuator is operative to actuate the latch pin between a first position and a second position; the rocker arm assembly has a configuration that depends on one or more latch pin positions and relative positions of the first rocker arm and the second rocker arm; and the switch is open or closed depending on the configuration of the rocker arm assembly, wherein the switch is opened and closed by relative movement between the first rocker arm and the second rocker arm.
19. A rocker arm assembly, comprising: an electromagnetic latch assembly comprising a latch pin and an actuator, the actuator comprising an electromagnet; a first rocker arm and a second rocker arm that are selectively engaged by the latch pin; a switch circuit comprising a switch; and a coil circuit connected in parallel with the switch circuit to power the electromagnet; wherein: the actuator is operative to actuate the latch pin between a first position and a second position; and the switch is opened or closed by relative motion between the first rocker arm and the second rocker arm; when the first rocker arm and the second rocker arm are engaged by the latch pin, the first rocker arm and the second rocker arm are prevented from undergoing the relative motion that opens or closes the switch.
20. The rocker arm assembly of claim 19, wherein the switch is closed by conduction through a structural component of the rocker arm assembly.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
(16)
(17)
(18)
(19)
(20)
(21)
(22)
(23)
(24)
(25)
(26)
(27)
(28)
(29)
(30)
DETAILED DESCRIPTION
(31)
(32)
(33) Electromagnet 119 is operable to alter magnetic polarizations in the magnetic circuits taken by flux from permanent magnets 120. Energized with current in a first direction, electromagnet 119 is operable to cause latch pin assembly 131 to translate from the first position to the second position. Once latch pin assembly 131 is in the second position, permanent magnets 120 will stably maintain latch pin assembly 131 in the second position after power to electromagnet 119 is cut off. Energized with current in a second direction, which is the reverse of the first, electromagnet 119 is operable to cause latch pin assembly 131 to translate from the second position back to the first position. Once latch pin assembly 131 is in the first position, permanent magnets 120 will stably maintain latch pin assembly 131 in the first position after power to electromagnet 119 is again cut off.
(34) Electromagnetic latch assembly 122A includes a switch 130A in a switch circuit 134A. Bobbin 114 has coil tie-offs 124. Coil tie-off pins 136 are installed in coil tie-offs 124 and provide terminals for a coil circuit 133A that includes electromagnet 119. Coil tie-off pins 136 also provide terminals for switch circuit 134A, which is connected in parallel with coil circuit 133A as shown in
(35)
(36) Operating electromagnetic latch assemblies 122 on rocker arm assemblies 106 requires power transfer to rocker assemblies 106. A sliding contact pin 105 is mounted to one side of rocker arm assembly 106B for receiving this power. There may be one contact pin 105 on each side of rocker arm assembly 106B to provide two poles. Alternatively, the electromagnetic latch assembly 122 may be grounded through the structure of rocker arm assembly 106B. As shown in
(37) Rocker arm assemblies 106 include cam followers 111 on inner arms 103, which are pivotally connected to outer arms 103. As shown in
(38)
(39)
(40)
(41)
(42) In each of the foregoing examples, the electromagnetic latch assembly 122 is operable to actuate latch pin 118 while switch 130 is closed. Because switch circuit 134 is connected in parallel with coil circuit 133, some power may be lost through switch circuit 134. This power lost may be limited by providing switch circuit 134 with sufficiently high resistance. A resistance source 135 may be introduced into switch circuit 134. The resistance may be provided, for example, by a coating on switch contacts 129. Preferably, the resistance in switch circuit 134 is made at least as great as the resistance in coil circuit 133. More preferably, the switch circuit resistance is at least five times the coil circuit resistance. Most preferably, the switch circuit resistance is at least ten times the coil circuit resistance.
(43) A power circuit for electromagnetic latch assembly 122 will include both switch circuit 134 and coil circuit 133. The power circuit may be driven and the circuit response measured to determine whether switch 130 is open or closed. In its simplest form, a voltage is applied and a resulting current measured and the result analyzed to determine whether switch circuit 134 is contributing to the conductance. Results before and after operations to open and close latch pin 118 may be compared. Moderating the resistance in circuit 134 can facilitate keeping the signal to noise ratio within an acceptable range. To this end, the resistance in switch circuit 134 is preferably at most 1000 times as great as the resistance in coil circuit 133. More preferably, the resistance is at most 100 times as great as the resistance in coil circuit 133. Most preferably, the resistance is at most 20 times as great as the resistance in coil circuit 133.
(44) The power circuit for electromagnetic latch assembly 122 may be pulsed to query the status of switch 130. The pulse may be made insufficient in duration or magnitude to actuate latch pin 118. Alternatively, the pulse may be made of the wrong polarity to actuate latch pin 118 from its current position. Also, while electromagnet 119 may be driven with a DC current to actuate latch pin 118, an AC current may be used to query the switch position.
(45) The switch circuit 134 has been shown as an elementary circuit comprising one or more resistors in series. Optionally, additional elements may be added to switch circuit 134 to facilitate determination of whether switch 130 is open or closed. Those additional elements could include capacitors, transistors, inductors, or combinations thereof.
(46) The components and features of the present disclosure have been shown and/or described in terms of certain embodiments and examples. While a particular component or feature, or a broad or narrow formulation of that component or feature, may have been described in relation to only one embodiment or one example, all components and features in either their broad or narrow formulations may be combined with other components or features to the extent such combinations would be recognized as logical by one of ordinary skill in the art.