MIRROR MOUNTING STRUCTURES AND METHODS EMPLOYING SHAPE MEMORY MATERIALS FOR LIMITED ROTATION MOTORS AND SCANNERS
A mirror mounting assembly is disclosed for use in a limited rotation motor system. The mirror mounting assembly includes a collar formed of a shape memory material and a mounting unit including a tapered base that couples with a tapered output shaft of a limited rotation motor under a radial force applied by the collar.
1 - 29 . (canceled)
30 . A method of removably securing a first optical element to a limited rotation motor shaft, said method comprising the steps of:
coupling a tapered base of the first optical element to an end of the motor shaft that includes a tapered surface;
positioning a collar formed of a shape memory material with respect to the tapered base such that the collar is substantially radially aligned with the tapered base;
subjecting the collar to an austenitic finish temperature to lock the collar onto the motor shaft;
cooling the collar to a martensitic finish temperature to release the collar from the motor shaft; and
removing the first optical element from the motor shaft.
31 . The method as claimed in claim 30 , wherein each of the steps is repeated for coupling and removing a tapered base of a second optical element of the motor shaft.
32 . The method as claimed in claim 30 , wherein said optical element includes a mounting unit and a mirror attached to the mounting unit.
33 . The method as claimed in claim 30 , wherein said collar is formed of any of nickel titanium, nickel titanium niobium, nickel titanium iron, nickel aluminum, indium titanium, copper zinc, copper tin, copper aluminum nickel, gold cadmium, silver cadmium, iron platinum, manganese copper, iron manganese silicon, and alloys thereof.
34 . The method as claimed in claim 30 , wherein the collar changes at least about 5% in size when cooled from the austenitic finish temperature to the martensitic finish temperature.
35 . The method as claimed in claim 30 , wherein said method further includes the step of operating the limited rotation motor in a laser scanning system.
36 . The method as claimed in claim 30 , wherein said method further includes the step of operating the limited rotation motor in a laser drilling system.
37 . The method as claimed in claim 30 , wherein said method further includes the step of operating the limited rotation motor in a laser marking system.
38 . The method as claimed in claim 30 , wherein said method further includes the step of operating the limited rotation motor in a laser trimming system.
39 . A method of removing an optical element from a limited rotation motor shaft, said method comprising the steps of applying a coolant material to a collar formed of a shape memory alloy material to cause the shape memory alloy material to change to a martensitic state, and removing said collar from the limited rotation motor shaft.
40 . The method as claimed in claim 39 , wherein said method further includes the step of applying a removal tool to said collar to facilitate the application of the coolant material to the shape memory material.
41 . The method as claimed in claim 40 , wherein the method further includes the step of providing the coolant material to said collar via an opening in the removal tool.
42 . The method as claimed in claim 41 , wherein the method further includes the steps of removing a first optical element from the motor shaft, and coupling a second optical element to the motor shaft.
43 . The method as claimed in claim 42 , wherein the method further includes the step of heating the collar to an austenitic finish temperature to lock the collar onto the motor shaft.
44 . The method as claimed in claim 39 , wherein the coolant material is liquid nitrogen.
45 . A method of removably securing a optical elements to a limited rotation motor shaft, said method comprising the steps of:
coupling a base of a first optical element to an end of the motor shaft;
positioning a collar formed of a shape memory material with respect to the base of the first optical element such that the collar is substantially radially aligned with the base of the first optical element;
subjecting the collar to an austenitic finish temperature to lock the collar onto the motor shaft;
cooling the collar to a martensitic finish temperature to release the collar from the motor shaft;
removing the first optical element from the motor shaft;
coupling a base of a second optical element to an end of the motor shaft;
positioning a collar formed of a shape memory material with respect to the base of the second optical element such that the collar is substantially radially aligned with the base of the second optical element;
subjecting the collar to an austenitic finish temperature to lock the collar onto the motor shaft;
cooling the collar to a martensitic finish temperature to release the collar from the motor shaft; and
removing the second optical element from the motor shaft.
46 . The method as claimed in claim 45 , wherein said first optical element includes a mounting unit and a mirror attached to the mounting unit.
47 . The method as claimed in claim 45 , wherein said collar is formed of any of nickel titanium, nickel titanium niobium, nickel titanium iron, nickel aluminum, indium titanium, copper zinc, copper tin, copper aluminum nickel, gold cadmium, silver cadmium, iron platinum, manganese copper, iron manganese silicon, and alloys thereof.