Pivotable Spring-Loadable Product
A pivotable spring-loadable product, and a latch and ejector assembly, which may include the product, to selectively unlatch and eject an object.
1 . A latch and ejector assembly comprising:
a latch pivotable about a first axis and including a latch arm to latch to an object;
an ejector pivotable about the first axis and including an ejector arm to eject the object;
a spring to yieldably bias at least one of the latch arm or the ejector arm toward a home position;
a cam rotatable about a second axis laterally offset from the first axis and engageable with at least one of the latch arm or the ejector arm; and
an actuator coupled to the cam to rotate the cam about the second axis.
2 . The latch and ejector assembly of claim 1 , wherein the spring includes a leaf spring that extends along an arcuate path from a fixed end at a location below the first axis to a free end at a location above the axis.
3 . The latch and ejector assembly of claim 1 , wherein the spring extends integrally from a rear portion of the ejector arm and wherein the ejector arm is rigid whereas the spring is resiliently flexible.
4 . The latch and ejector assembly of claim 1 , further comprising a reaction member offset from both the first and second axes and against which the spring locates to bias the ejector arm toward the home position.
5 . The latch and ejector assembly of claim 1 , wherein the ejector and the latch are unitary and share a common hub, and the latch arm has a bayonet end for latching engagement with the object.
6 . The latch and ejector assembly of claim 1 , wherein the actuator is operable to rotate the cam over a complete revolution to pivot the latch and the ejector to unlatch and eject the object.
7 . The latch and ejector assembly of claim 1 , further comprising:
a sensor operatively coupled to the cam to provide an indication of a rotational position of the cam.
8 . The latch and ejector assembly of claim 7 , further comprising a powered relay coupled to the sensor.
9 . The latch and ejector assembly of claim 8 , wherein the cam includes a rotational position reference and the sensor includes a portion for operable coupling to the rotational position reference, and wherein the sensor includes a plunger.
10 . The latch and ejector assembly of claim 9 wherein a microprocessor sends a drive signal to activate the relay to power the actuator and cause the cam to rotate, wherein the sensor plunger moves away from its home position for continued activation of the relay, and dropping of the drive signal from the microprocessor.
11 . The latch and ejector assembly of claim 10 wherein the cam rotates for one revolution and returns to its home position and, concomitantly, the sensor plunger returns to its home condition such that power is dropped to deactivate the relay and thereby short power leads to the actuator to brake the actuator.
12 . The latch and ejector assembly of claim 10 wherein the cam includes multiple lobes and rotates for less than a full revolution and stops at one of multiple home positions and, concomitantly, the sensor plunger returns to its home condition such that power is dropped to deactivate the relay and thereby short power leads to the actuator to brake the actuator.
13 . An apparatus, comprising:
a backplane having a backplane aperture therethrough;
a drawer disposed on one side of the backplane and including a rear wall having a drawer aperture therethrough; and
the latch and ejector assembly of claim 1 disposed on another side of the backplane to selectively couple the drawer to the backplane and selectively eject the drawer away from the backplane.
14 . The apparatus of claim 13 wherein the latch and ejector assembly is coupled to a rear surface of the backplane.
15 . The apparatus of claim 13 , further comprising a mounting bracket having a first flange coupled to the backplane, and a second flange wherein the electric motor is carried by the bracket on one side of the second flange, and the ejector and the latch are disposed on another side of the second flange.
16 . A pivotable spring-loadable product, comprising:
an arm pivotable about an axis; and
a leaf spring to yieldably bias the arm toward a home position and including a first end operatively coupled to the pivotable arm, a second end spaced from the first end, and an intermediate portion extending along an arcuate path between the first and second ends.
17 . The product of claim 16 , wherein the leaf spring takes the form of a rooster tail like configuration with respect to the arm.
18 . The product of claim 16 , wherein the arm has a rear surface, and the first end of the spring is spaced apart from the rear surface and the intermediate portion extends from the first end and curves toward the rear surface before curving away therefrom toward the second end.
19 . The product of claim 16 , wherein the ejector arm is relatively rigid whereas the spring is relatively resiliently flexible to allow the spring to yieldably bias the ejector to its home position.
20 . The product of claim 16 , wherein the spring extends semi-circumferentially between 30 and 270 angular degrees.
21 . An assembly comprising:
the product of claim 16 ; and
a reaction member offset from the axis,
wherein the leaf spring extends along a path from the first end at a location on one side of the axis to a second end at a location on an opposite side of the axis and is movably engaged against the reaction member to accommodate pivoting movement of the arm and to yieldably bias the arm toward the home position.
22 . The assembly of claim 21 wherein the leaf spring is of arcuate shape with a portion that extends arcuately in the home position, and the arm includes a portion extending in a direction from the axis to one side of the axis and an extension extending in a direction from the axis to an opposite side of the axis and having a bearing surface that engages the arcuately extending portion in a position of the arm pivoted away from the home position.