SELF-LOCKING AND FOLDABLE EJECTOR ARM
20210282291 · 2021-09-09
Inventors
Cpc classification
H05K7/1489
ELECTRICITY
H04Q1/021
ELECTRICITY
International classification
H05K7/14
ELECTRICITY
E05B13/00
FIXED CONSTRUCTIONS
Abstract
A locking mechanism for securing a computing device in an enclosure includes a jaw, a transmission lever, and an arm. The jaw is configured to abut a portion of the enclosure for holding the computing device. The transmission lever includes an arm pivot at one end and an actuating pivot at the opposite end. The arm is configured to rotate open and closed about the arm pivot and be selectively decoupled from the transmission lever. When the arm is coupled to the transmission lever, opening the arm causes the transmission lever to rotate open about the actuating pivot. Rotating open the transmission lever about the actuating pivot releases the jaw from the portion of the enclosure, and allows the computing device to be removed from the enclosure.
Claims
1. An apparatus comprising: a jaw configured to abut a portion of an enclosure for holding a computing device; a transmission lever comprising an arm pivot at a first end and an actuating pivot at a second end; and an arm configured to rotate about the arm pivot in an opening direction and a closing direction, the arm being selectively decoupled from the transmission lever, wherein when the arm is coupled to the transmission lever, rotating the arm in the opening direction causes the transmission lever to rotate in the opening direction about the actuating pivot and releases the jaw from the portion of the enclosure, enabling the computing device to be removed from the enclosure.
2. The apparatus of claim 1, wherein the arm further includes a slider to selectively decouple the arm from the transmission lever, enabling the arm to rotate separately from the transmission lever when decoupled.
3. The apparatus of claim 2, wherein the arm further includes a pin coupled to the slider, and wherein the arm pivot of the transmission lever includes an actuating slot configured to capture the pin when the slider couples the arm to the transmission lever.
4. The apparatus of claim 3, wherein the arm pivot further includes a detente angularly spaced from the actuating slot, the detente configured to bias the arm away from the computing device when the pin engages the detente.
5. The apparatus of claim 4, wherein the arm pivot includes a plurality of angularly spaced detente features configured to bias the arm in a plurality of angularly spaced positions.
6. The apparatus of claim 1, further comprising a wedge configured to lock the jaw against the portion of the enclosure when the arm rotates in the closing direction.
7. The apparatus of claim 6, wherein the transmission lever includes an unlocking slope configured to contact an unlocking surface on the wedge, wherein rotating the arm in the opening direction when the arm is coupled to the transmission lever releases the jaw from the portion of the enclosure by forcing the unlocking slope of the transmission lever against the unlocking surface of the wedge.
8. A system comprising: a computing device configured to be mounted in an enclosure; and a locking mechanism coupled to the computing device, the locking mechanism comprising: a jaw configured to abut a portion of the enclosure; a transmission lever comprising an arm pivot at a first end and an actuating pivot at a second end; and an arm configured to rotate about the arm pivot in an opening direction and a closing direction, the arm being selectively decoupled from the transmission lever, wherein when the arm is coupled to the transmission lever, rotating the arm in the opening direction causes the transmission lever to rotate in the opening direction about the actuating pivot and releases the jaw from the portion of the enclosure, enabling the computing device to be removed from the enclosure.
9. The system of claim 8, wherein the locking mechanism further includes a slider to selectively decouple the arm from the transmission lever, enabling the arm to rotate separately from the transmission lever when decoupled.
10. The system of claim 9, wherein the locking mechanism further includes a pin coupled to the slider, and wherein the arm pivot of the transmission lever includes an actuating slot configured to capture the pin when the slider couples the arm to the transmission lever.
11. The system of claim 10, wherein the arm pivot further includes a detente angularly spaced from the actuating slot, the detente configured to bias the arm away from the computing device when the pin engages the detente.
12. The system of claim 11, wherein the arm pivot includes a plurality of angularly spaced detente features configured to bias the arm in a plurality of angularly spaced positions.
13. The system of claim 8, wherein the locking mechanism further comprises a wedge configured to lock the jaw against the portion of the enclosure when the arm rotates in the closing direction.
14. The system of claim 13, wherein the transmission lever includes an unlocking slope configured to contact an unlocking surface on the wedge, wherein rotating the arm in the opening direction when the arm is coupled to the transmission lever releases the jaw from the portion of the enclosure by forcing the unlocking slope of the transmission lever against the unlocking surface of the wedge.
15. A method comprising: mounting a computing device in an enclosure; rotating an arm of a locking mechanism in a closing direction to lock the computing device in the enclosure, the locking mechanism comprising a transmission lever and a jaw, wherein rotating the arm in the closing direction actuates the transmission lever to secure the jaw against a portion of the enclosure; selectively decoupling the arm from the transmission lever; and rotating the arm in an opening direction opposite the closing direction without actuating the transmission lever.
16. The method of claim 15, wherein selectively decoupling the arm from the transmission lever comprises sliding a pin in the arm to remove the pin from an actuating slot in an arm pivot of the transmission lever.
17. The method of claim 16, further comprising rotating the arm in the opening direction to allow the pin to engage a detente in the arm pivot angularly separated from the actuating slot in the arm pivot.
18. The method of claim 15, further comprising: ratcheting the arm through a plurality of angularly spaced positions defined by a plurality of angularly spaced detente features configured to bias the arm in a plurality of angularly spaced positions.
19. The method of claim 15, wherein locking the computing device in the enclosure further comprises preventing the jaw from further rotation with a wedge.
20. The method of claim 19, further comprising: coupling the arm to the transmission lever; rotating the arm in the opening direction to force an unlocking slope of the transmission lever against an unlocking surface of the wedge; and releasing the jaw from the portion of the enclosure to enable the computing device to be removed from the enclosure.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0004]
[0005]
[0006]
[0007]
[0008]
[0009]
[0010]
DESCRIPTION OF EXAMPLE EMBODIMENTS
Overview
[0011] A locking mechanism for securing a computing device in an enclosure comprises a jaw, a transmission lever, and an arm. The jaw is configured to abut a portion of the enclosure for holding the computing device. The transmission lever comprises an arm pivot at a first end and an actuating pivot at a second end. The arm is configured to rotate about the arm pivot in an opening direction and a closing direction. The arm is also configured to be selectively decoupled from the transmission lever. When the arm is coupled to the transmission lever, rotating the arm in the opening direction causes the transmission lever to rotate in the opening direction about the actuating pivot. Rotating the transmission lever about the actuating pivot in the opening direction releases the jaw from the portion of the enclosure, and enables the computing device to be removed from the enclosure.
Example Embodiments
[0012] In typical chassis-mounted modules, the ejector arm of the module may impede access to the front panel of the module. Conversely, when a large number of cables (e.g., Ethernet cables) are plugged in to the front panel of the module, the cables may interfere with access to a captive screw or other latching mechanism. The locking mechanism and ejector arm described herein allows the arm to be decoupled from the rest of the locking mechanism. By decoupling the arm, a user can rotate the arm to a more accessible position without unlatching the module from the chassis.
[0013] Referring now to
[0014] Referring now to
[0015] Referring now to
[0016] The transmission lever 150 includes an actuating slot 220 and a detente 225 at the end of the transmission lever 150 with the arm pivot 155. The detente 225 is angularly spaced form the actuating slot 220, and is configured to be shallower than the actuating slot 220 for reasons that will be described hereinafter with respect to
[0017] In the example shown in
[0018] Referring now to
[0019] In another example, the detente 225 is positioned approximately 90° from the actuating slot 220. Then the jaw 140 is locked against the enclosure, the detente 225 may be positioned to bias the arm 130 away from the face of the computing device when the pin 230 is engaged with the detente 225. When the pin 230 is engaged with the actuating slot 220, the arm 130 may be positioned to extend along the face of the computing device.
[0020] In a further example, continuing to open the arm 130 so that the pin 230 disengages from the detente 225 causes the arm 130 rotates beyond extending straight out from the computing device. However, if the pin 230 is not engaged with the actuating slot, the arm 130 does not provide sufficient force to release the jaw 140. Additionally, the enclosure may prevent the arm 130 from being over-rotated in this manner. For instance, the enclosure may include side walls or doors that prevent the arm 130 from being rotated significantly beyond the position of the detente 225.
[0021] A further example includes a series of defeatable detente features that allow the arm 130 to be temporarily placed at a plurality of angular locations. The series of defeatable detente features may enable the arm 130 to reposition in the different angular locations. Repositioning the arm 130 may allow a user to provide an optimal amount of force and ratchet the transmission lever 150.
[0022] One example of a sequence of rotating the arm 130 to lock the jaw 140 against the enclosure is shown in
[0023] As the arm 130 and transmission lever 150 are rotated in the closing direction about the actuating pivot 210, the jaw 140 is rotated by the transmission lever 150 and the wedge 310 slides along the top of the transmission lever 150 and the jaw 140, as shown in
[0024] An example of releasing the jaw 140 from the enclosure is shown in
[0025] In other words, small movements in the arm 130 and the transmission lever 150 may result in small up/down movements of the wedge 310, but these small movements are not translated into movement of the jaw 140, which remains locked in place against the enclosure. After the wedge 310 is completely raised out of the wedge slot 320, as shown in
[0026] Referring now to
[0027] If a user wants to selectively decouple the arm from the transmission lever and keep the computing device locked in the enclosure, as determined at 530, then the arm is decoupled from the transmission lever at 540. In one example, a slider on the arm may remove a pin in the arm from an actuating slot in the transmission lever to decouple the arm from the transmission lever. At 550, the arm is rotated in an opening direction that is opposite the closing direction. If the arm was selectively decoupled from the transmission lever at 540, then rotating the arm in the opening direction does not actuate the transmission lever. However, if the computing device is determined at 530 to be removed from the enclosure, then rotating the arm in the opening direction actuates the transmission lever to unlock the jaw from the enclosure and allow the computing device to be removed from the enclosure.
[0028] In summary, the techniques presented herein provide for a locking/ejector mechanism for securing computing devices into a chassis enclosure. The arm of the locking mechanism presented herein may be selectively decoupled from the rest of the locking mechanism to allow the arm to be repositioned without actuating the locking mechanism. The locking mechanism is self-locking with a wedge securing the jaw of the locking mechanism securing the computing device automatically when the jaw is moved to the locked position. The wedge maintains the position of the jaw after the arm is decoupled and opened. The decoupled arm may also include cable management features that are unavailable when the arm is in the closed position.
[0029] In one form, an apparatus comprising a jaw, a transmission lever, and an arm is provided. The jaw is configured to abut a portion of an enclosure for holding a computing device. The transmission lever comprises an arm pivot at a first end and an actuating pivot at a second end. The arm is configured to rotate about the arm pivot in an opening direction and a closing direction. The arm is also configured to be selectively decoupled from the transmission lever. When the arm is coupled to the transmission lever, rotating the arm in the opening direction causes the transmission lever to rotate in the opening direction about the actuating pivot. Rotating the transmission lever about the actuating pivot in the opening direction releases the jaw from the portion of the enclosure, and enables the computing device to be removed from the enclosure.
[0030] In another form, a system comprising a computing device and a locking mechanism is provided. The computing device is configured to be mounted in an enclosure. The locking mechanism is coupled to the computing device and includes a jaw, a transmission lever, and an arm. The jaw is configured to abut a portion of the enclosure. The transmission lever comprises an arm pivot at a first end and an actuating pivot at a second end. The arm is configured to rotate about the arm pivot in an opening direction and a closing direction. The arm is also configured to be selectively decoupled from the transmission lever. When the arm is coupled to the transmission lever, rotating the arm in the opening direction causes the transmission lever to rotate in the opening direction about the actuating pivot. Rotating the transmission lever about the actuating pivot in the opening direction releases the jaw from the portion of the enclosure, and enables the computing device to be removed from the enclosure.
[0031] In yet another form, a method is provided for opening an arm of a locking mechanism that secures a computing device in an enclosure, without releasing the locking mechanism. The method includes mounting the computing device in the enclosure and rotating an arm of the locking mechanism in a closing direction to lock the computing device in the enclosure. The locking mechanism also includes a transmission lever and a jaw. Rotating the arm of the locking mechanism actuates the transmission lever to secure the jaw against a portion of the enclosure. The method also includes selectively decoupling the arm from the transmission lever and rotating the arm in an opening direction opposite the closing direction without actuating the transmission lever.
[0032] The descriptions of the various embodiments have been presented for purposes of illustration, but are not intended to be exhaustive or limited to the embodiments disclosed. Many modifications and variations will be apparent to those of ordinary skill in the art without departing from the scope and spirit of the described embodiments. The terminology used herein was chosen to best explain the principles of the embodiments, the practical application or technical improvement over technologies found in the marketplace, or to enable others of ordinary skill in the art to understand the embodiments disclosed herein.