Claims
- 1. In an optical assembly including a light path and at least one optical component to be positioned in said light path and further including one or more support surfaces, a support arrangement comprising:
support means for supporting said optical component and having a foot arrangement including at least one foot that is configured for receiving a direct manipulation with the foot slidingly engaged against at least one of the support surfaces such that the direct manipulation of the foot moves the optical component relative to said light path.
- 2. The arrangement of claim 1 wherein said foot includes a manipulation configuration for receiving the direct manipulation to move the foot slidingly against the support surface engaged therewith.
- 3. The arrangement of claim 1 wherein the support surface against which the foot moves is at least generally planar and said foot includes an at least generally planar foot surface for engaging said support surface.
- 4. The arrangement of claim 3 wherein the foot surface engages one of the support surfaces with a coefficient of friction and said foot is configured for receiving the direct manipulation against the support surface in a way which uses said coefficient of friction to resist undesired lateral movement of the foot against the support surface at least during attachment of the foot thereto.
- 5. The arrangement of claim 4 wherein said foot is configured for being lap welded to the support surface.
- 6. The arrangement of claim 1 wherein said support means is configured for moving the optical component along a predetermined path with selected direct movement of said foot.
- 7. The arrangement of claim 6 wherein said foot arrangement includes two feet, each of which is moveable against at least one of said support surfaces, such that selected movement of the feet relative to one another causes the optical component to move along the predetermined path.
- 8. The arrangement of claim 7 wherein said support means is configured for moving said optical component, due to a change in distance between said feet, by an amount that is less than the change in distance between the feet.
- 9. The arrangement of claim 7 wherein a first one of said feet moves against a first one of said support surfaces and a second one of said feet moves against a second one of said support surfaces.
- 10. The arrangement of claim 7 wherein both of said feet move against a common one of said support surfaces.
- 11. The arrangement of claim 7 wherein said support means includes first and second web members that are hinged to one another and each of which is hinged to one of said feet such that the first and second web members extend between the feet for hinged movement with movement of the feet relative to one another and said optical component is attached to one of the first and second web members for moving along said predetermined path with said hinged movement.
- 12. The arrangement of claim 11 wherein each of said feet and said first and second web members are formed from sheet material having a thickness and sized to a width, which is greater than said thickness, and hinged to one another across said width.
- 13. The arrangement of claim 11 wherein said feet and said first and second web members are integrally formed from said sheet material.
- 14. The arrangement of claim 13 wherein said first and second web members include opposing ends and a first one of said feet is hinged to one end of the first web member, the other end of the first web member is hinged to one end of the second web member and the other end of the second web member is hinged to a second one of said feet.
- 15. The arrangement of claim 13 wherein said first and second web members include opposing ends and said sheet material integrally forms first, second and third live hinges such that a first one of said feet is hinged to one end of the first web member by the first live hinge, the other end of the first web member is hinged to one end of the second web member by the second live hinge and the other end of the second web member is hinged to a second one of said feet by the third live hinge.
- 16. The arrangement of claim 7 wherein said support means includes first and second web members having opposing ends and each of which first and second web members is hinged at one end to a support member to extend the support member therebetween and each of which first and second web members is hinged at another end to one of said feet such that each of the first and second web members is hinged between one of the feet and said support member thereby providing hinged movement of the support member with movement of the feet relative to one another and said optical component is attached to said support member for moving along said predetermined path with said hinged movement.
- 17. The arrangement of claim 7 wherein said support means includes a support member having first and second opposing ends that are hinged to first and second ones of said feet, respectively, to extend between the feet in a curved configuration and said optical component is attached to a mid-section of said support member such that movement of the feet along a linear path defined between the feet causes said first and second opposing ends of the support member to move in hinged engagement with the first and second feet while at least the mid-section of the support member bends to move the optical component along said predetermined path.
- 18. The arrangement of claim 17 wherein said predetermined path is generally normal to said support surface with equal movements of each of said feet towards and away from one another.
- 19. The arrangement of claim 1 wherein said support means is configured for moving the optical component along a predetermined path with selected direct movement of said foot and said predetermined path is arcuate in shape.
- 20. The arrangement of claim 1 wherein said support means is configured for moving the optical component along a predetermined path with a selected direct movement of said foot and said predetermined path at least generally defines a plane that is transverse to said light path.
- 21. The arrangement of claim 1 wherein said support means is configured for moving the optical component along a predetermined path with selected direct movement of said foot and said predetermined path at least generally defines a plane that is normal to said light path.
- 22. The arrangement of claim 1 wherein said foot includes an attachment configuration, defined at one or more positions on the foot for use in fixedly attaching the foot to the support surface and a manipulation configuration, defined at one or more other positions on the foot which are separate from the first position, for receiving the direct manipulation which moves the foot slidingly against the support surface.
- 23. The arrangement of claim 22 wherein said manipulation configuration at least provides for rotation of the foot on said support surface in a way which adjusts one or more orientation parameters of the optical component with respect to said light path.
- 24. The arrangement of claim 1 wherein said foot is at least generally plate-like in configuration and includes (i) a lower surface for at least initially engaging the support surface forming part of the optical assembly, (ii) an upper surface spaced-apart from the lower surface such that the foot includes a first thickness therebetween, (iii) and at least one weld region having a second thickness which is less than said first thickness for use in welding the foot to said support surface.
- 25. The arrangement of claim 24 wherein said lower surface extends across said weld region and said weld region includes a stepped periphery formed in said upper surface to define a weldable surface which is spaced from said lower surface by said second thickness.
- 26. The arrangement of claim 25 wherein said foot includes a peripheral sidewall formed such that the upper surface extends from the peripheral sidewall to the weld region to define a peripheral separation margin which surrounds said weld region, such that biasing the peripheral separation margin toward the support surface, in turn, biases the lower surface of the foot, including the weld region, against said support surface prior to welding.
- 27. In an optical assembly including a light path and an optical component to be positioned in relation to said light path, an arrangement comprising:
support means for supporting said optical component relative to said light path and including at least one foot having (i) a lower surface for at least initially engaging a support surface forming part of the optical assembly, (ii) an upper surface spaced-apart from the lower surface such that the foot includes a first thickness therebetween, (iii) and at least one weld region having a second thickness which is less than said first thickness for use in welding the foot to said support surface.
- 28. The arrangement of claim 27 wherein said lower surface extends across said weld region and said weld region includes a stepped periphery formed in said upper surface to define a weldable surface which is spaced from said lower surface by said second thickness.
- 29. The arrangement of claim 28 wherein said foot includes a peripheral sidewall formed such that the upper surface extends from the peripheral sidewall to the weld region to define a peripheral separation margin which surrounds said weld region, such that biasing the peripheral separation margin toward the support surface, in turn, biases the lower surface of the foot, including the weld region, against said support surface prior to welding.
- 30. The arrangement of claim 28 wherein said stepped periphery is configured for receiving the direct manipulation in a way which slidingly moves the foot against the support surface prior to attachment of the foot to the support surface.
- 31. The arrangement of claim 27 wherein said weld region is defined at a first position on the foot for use in fixedly attaching the foot to the support surface and including a manipulation configuration, defined at one or more other positions on the foot which are separate from the first position, for receiving the direct manipulation to move the foot slidingly against the support surface.
- 32. The arrangement of claim 31 wherein said manipulation configuration at least provides for rotation of the foot on said support surface in a way which adjusts one or more orientation parameters of the optical component with respect to said light path.
- 33. In producing an optical assembly having a light path, an optical component to be positioned in said light path, and defining one or more support surfaces, a method comprising the steps of:
providing support means for supporting said optical component and having a foot arrangement including at least one foot that is configured for receiving a direct manipulation engaging the foot against one of the support surfaces defined within said optical assembly; attaching said optical component to said support means; positioning said foot on one of said support surfaces; and slidingly manipulating said foot against one of the support surfaces using said direct manipulation in a way which moves the optical component relative to said light path.
- 34. The method of claim 33 including the step of configuring said foot to include a manipulation configuration for receiving the external direct manipulation which moves the foot slidingly against the support surface.
- 35. The method of claim 33 including the step of configuring said support means for moving the optical component along a predetermined path with a selected direct manipulation of said foot.
- 36. The method of claim 35 wherein said foot arrangement includes two feet, each of which is slidingly moveable against at least one of said support surfaces, and including the step of slidingly moving each of the feet such that selected movement of the feet relative to one another causes the optical component to move along the predetermined path.
- 37. The method of claim 36 wherein the step of configuring said support means includes the step of moving said optical component, due to a change in distance between said feet, by an amount that is less than the change in distance between the feet.
- 38. The method of claim 36 wherein the step of moving said feet moves a first one of said feet against a first one of said support surfaces and a second one of said feet against a second one of said support surfaces.
- 39. The method of claim 36 wherein both of said feet are directly manipulated against a common one of said support surfaces.
- 40. The method of claim 33 wherein the support surface against which said foot is manipulated is at least generally planar and including the step of configuring said foot to include an at least generally planar foot surface for engaging said support surface.
- 41. The method of claim 40 wherein the foot surface of said foot engages the support surface with a coefficient of friction and the step of manipulating each foot includes the step of using said coefficient of friction by holding the foot in a way which resists undesired lateral movement of the foot against the engaged support surface at least during attachment of the foot thereto.
- 42. The method of claim 41 including the step of attaching the foot to the support surface by lap welding during the step of holding the foot in said way which resists undesired lateral movement.
- 43. The method of claim 36 including the step of configuring said support means to move said optical component, due to a change in distance between said feet, by an amount that is less than the change in distance between the feet.
- 44. The method of claim 36 wherein said manipulating step moves a first one of said feet against a first one of said support surfaces and moves a second one of said feet against a second one of said support surfaces.
- 45. The method of claim 36 wherein said manipulating step moves both of said feet against a common one of said support surfaces.
- 46. The method of claim 36 including the steps of configuring said support means to include first and second web members that are hinged to one another and each of which is hinged to one of said feet such that the first and second web members extend between the feet for hinged movement with movement of the feet relative to one another and attaching said optical component to one of the first and second web members for moving along said predetermined path with said hinged movement.
- 47. The method of claim 46 including the steps of forming each of said feet and said first and second web members from sheet material having a thickness and sized to a width, which is greater than said thickness, and hinging the first and second web members to one another across said width.
- 48. The method of claim 47 wherein said forming step includes the step of integrally forming said feet and said first and second web members from said sheet material.
- 49. The method of claim 48 wherein said first and second web members include opposing ends and including the steps of hinging a first one of said feet to one end of the first web member, hinging the other end of the first web member to one end of the second web member and hinging the other end of the second web member to a second one of said feet.
- 50. The method arrangement of claim 48 wherein said first and second web members include opposing ends and including the step of integrally forming first, second and third live hinges from said sheet material such that a first one of said feet is hinged to one end of the first web member by the first live hinge, the other end of the first web member is hinged to one end of the second web member by the second live hinge and the other end of the second web member is hinged to a second one of said feet by the third live hinge.
- 51. The method of claim 36 including the step of configuring said support means to include first and second web members having opposing ends and each of which first and second web members is hinged at one end to a support member to extend the support member therebetween and each of which first and second web members is hinged at another end to one of said feet such that each of the first and second web members is hinged between one of the feet and said support member thereby providing hinged movement of the support member with movement of the feet relative to one another and said optical component is attached to said support member for moving along said predetermined path with said hinged movement.
- 52. The method of claim 36 including the steps of configuring said support means to include a support member having first and second opposing ends that are hinged to first and second ones of said feet, respectively, to extend between the feet in a curved configuration and attaching said optical component to a mid-section of said support member such that movement of the feet along a linear path defined between the feet causes said first and second opposing ends of the support member to move in hinged engagement with the first and second feet while at least the mid-section of the support member bends to move the optical component along said predetermined path.
- 53. The method of claim 52 wherein the step of configuring the support arrangement orients said predetermined path generally normal to said support surface.
- 54. The method of claim 33 including the step of configuring said support means for moving the optical component along a predetermined path with selected direct movement of said foot such that the predetermined path is arcuate in shape.
- 55. The method of claim 33 including the step of configuring said support means for moving the optical component along a predetermined path by selected direct movement of said foot such that said predetermined path at least generally defines a plane that is transverse to said light path.
- 56. The method of claim 33 including the step of configuring said support means for moving the optical component along a predetermined path using a selected direct movement of said foot such that said predetermined path at least generally defines a plane that is normal to said light path.
- 57. The method of claim 33 including the step of configuring said foot to include an at least generally plate-like in configuration and further including (i) a lower surface for at least initially engaging the support surface forming part of the optical assembly, (ii) an upper surface spaced-apart from the lower surface such that the foot includes a first thickness therebetween, (iii) and at least one weld region having a second thickness which is less than said first thickness for use in welding the foot to said support surface.
- 58. The method of claim 24 including the steps of extending said lower surface across said weld region and forming said weld region to include a stepped periphery in said upper surface to define a weldable surface which is spaced from said lower surface by said second thickness.
- 59. The method of claim 58 including the step of configuring said foot to include a peripheral sidewall formed such that the upper surface extends from the peripheral sidewall to the weld region to define a peripheral separation margin which surrounds said weld region, such that biasing the peripheral separation margin toward the support surface, in turn, biases the lower surface of the foot, including the weld region, against said support surface prior to welding.
- 60. The method of claim 58 including the step of configuring said stepped periphery for receiving the direct manipulation in a way which slidingly moves the foot against the support surface prior to attachment of the foot to the support surface.
- 61. The method of claim 33 including the step of configuring said foot to include an attachment configuration, defined at a first position on the foot for use in fixedly attaching the foot to the support surface and a manipulation configuration, defined at one or more other positions on the foot which are separate from the first position, for receiving the direct manipulation which moves the foot slidingly against the support surface.
- 62. The method of claim 61 including the step of using said manipulation configuration to rotate the foot on said support surface in a way which adjusts one or more orientation parameters of the optical component with respect to said light path.
- 63. In an optical arrangement including a light path and an optical component to be positioned in said light path, an assembly comprising:
support means for supporting said optical component and including at least two feet which are moveable relative to one another for moving the optical component such that a known relative positional relationship between said feet produces a known position of the optical component, at least to an approximation.
- 64. The assembly of claim 63 wherein said support means is configured for moving the optical component along a predetermined path with relative movement of said feet.
- 65. The assembly of claim 64 wherein said optical arrangement includes at least one support surface for supporting said feet and said feet are configured for moving relative to one another against said support surface.
- 66. The assembly of claim 65 wherein said support surface is at least generally planar.
- 67. The assembly of claim 64 wherein said optical arrangement includes a plurality of support surfaces which are at least non-coplanar with respect to one another and said support means is configured for placement of one of said feet on one of said support surfaces for relative movement of each one of the feet against one of the support surfaces.
- 68. The assembly of claim 67 wherein said support surfaces are at least generally parallel.
- 69. The assembly of claim 67 wherein said support surfaces are orthogonally oriented.
- 70. The assembly of claim 64 including an intermediate arrangement which extends between and is hinged to each one of said feet by at least one hinge and which intermediate arrangement directly supports said optical component.
- 71. The assembly of claim 70 wherein the intermediate arrangement is hinged to each one of said feet by a hinge arrangement including at least two hinges.
- 72. The assembly of claim 71 wherein said hinges of each hinge arrangement cooperatively define an at least generally linear hinge axis.
- 73. The assembly of claim 70 wherein the intermediate arrangement includes one intermediate hinge which divides the intermediate arrangement into first and second sub-arrangements.
- 74. The assembly of claim 73 wherein first and second ones of said feet are hinged to said first and second sub-arrangements, respectively, by first and second hinges defining first and second hinge axes and said intermediate hinge defines an intermediate hinge axis and wherein the first hinge axis, second hinge axis and the intermediate hinge axis are at least generally parallel with one another.
- 75. The assembly of claim 64 wherein said support means and said feet are configured for movement of the feet selected as at least one of linearly towards and away from one another.
- 76. The assembly of claim 64 wherein first and second ones of said feet are configured for movement along first and second linear paths, respectively, for moving the optical component to said known position.
- 77. The assembly of claim 76 wherein said first and second paths are at least parallel with respect to one another.
- 78. The assembly of claim 76 wherein said first and second paths are at least generally orthogonal with respect to one another.
- 79. In an optical assembly including a light path and an optical component to be positioned in said light path, an arrangement comprising:
support means for supporting said optical component and including at least two legs each of which includes a distal end and configured for movement of the distal end of each leg, along at least one path so as to move the optical component along a predetermined path relative to said light path with selected movement of said legs relative to one another.
- 80. In an optical assembly including a light path and an optical component to be positioned in said light path, a positioning arrangement comprising:
support means for supporting said optical component and having a foot arrangement including at least one foot for use in positioning the optical component, said foot including a configuration for use in selectively biasing the foot against a support surface defined within the optical assembly in a first way, during a movement mode, which is intended to permit movement of the foot against the support surface and in a second way, during a locked mode, which is intended to lock the foot against the support surface.
- 81. The arrangement of claim 80 including movement means for biasing the foot against the support surface in said first and second ways respectively during said movement mode and said locked mode.
- 82. The arrangement of claim 81 wherein said movement means biases the foot against the support surface using a first force in said movement mode and using a second force in said locked mode which second force is substantially greater than said first force.
- 83. The arrangement of claim 80 wherein said support surface is at least generally planar and said foot includes an at least generally planar foot surface for engaging said support surface.
- 84. The arrangement of claim 83 wherein the foot surface of said foot engages the support surface with a coefficient of friction and said movement means is configured to apply a first biasing force in said movement mode and a second biasing force in said locked mode such that magnitudes of each of the first and second biasing forces are based, at least in part, on an area of said foot surface and said coefficient of friction.
- 85. The arrangement of claim 84 wherein said second biasing force cooperates with the coefficient of friction in the locked mode to at least limit lateral movement of the foot during attachment thereof to the support surface.
- 86. The arrangement of claim 80 including attachment means arranged to cooperate with said movement means for fixedly attaching the foot to the support surface.
- 87. The arrangement of claim 86 wherein said attachment means is configured for laser welding said foot to the support surface.
- 88. The arrangement of claim 86 wherein the foot is configured for being lap welded to said support surface.
- 89. The arrangement of claim 86 wherein said foot is at least generally plate-like in configuration and includes (i) a lower surface for at least initially engaging the support surface forming part of the optical assembly, (ii) an upper surface spaced-apart from the lower surface such that the foot includes a first thickness therebetween, (iii) and at least one weld region having a second thickness which is less than said first thickness for use in welding the foot to said support surface.
- 90. The arrangement of claim 89 wherein said lower surface extends across said weld region and said weld region includes a stepped periphery formed in said upper surface to define a weldable surface which is spaced from said lower surface by said second thickness.
- 91. The arrangement of claim 90 wherein said foot includes a peripheral sidewall formed such that the upper surface extends from the peripheral sidewall to the weld region to define a peripheral area which surrounds said weld region configured for engaging said movement means for biasing the peripheral area toward the support surface which, in turn, biases the lower surface of the foot against said support surface in said movement mode and in said locked mode.
- 92. The arrangement of claim 91 wherein said movement means is configured for biasing the peripheral area against the support surface prior to and during welding of the weld region of the foot to the support surface.
- 93. The arrangement of claim 90 wherein said movement means is configured for engaging said stepped periphery for moving said foot against said support surface.
- 94. The arrangement of claim 93 wherein said movement means includes a movement arm having a distal end including a peripheral shoulder surrounding said distal end for engaging the stepped periphery of the foot for use in biasing the foot against the support surface and for use in moving the foot against the support surface and said distal end defines a through-opening that is configured for passing a laser beam to the weld region for use in welding the weld region of the foot to the support surface.
- 95. A system for use in producing an optical assembly which itself includes a light path and an optical component to be positioned in said light path as part of said optical assembly, said system comprising:
a support surface defined as part of said optical assembly; movement means for providing at least controlled alignment movements; and support means for supporting said optical component using at least one foot, said foot configured for being biased against the support surface in a selected one of a movement mode and a locked mode in direct engagement with said movement means and for being moved against said support surface by the movement means such that the foot is biased against the support surface, during the movement mode, in a first way that is intended to permit lateral movement of the foot against the support surface and the foot is biased against the support surface, during the locked mode, in a second way that is intended to lock the foot against the support surface.
- 96. The system of claim 95 wherein said movement means is configured for biasing the foot against the support surface in said first and second ways corresponding to said movement mode and said locked mode.
- 97. The system of claim 96 wherein said movement means biases the foot against the support surface using a first force in said movement mode and using a second force in said locked mode which second force is substantially greater than said first force.
- 98. The system of claim 95 wherein said support surface is at least generally planar and said foot includes an at least generally planar foot surface for engaging said support surface.
- 99. The system of claim 98 wherein the foot surface of said foot engages the support surface with a coefficient of friction and said movement means is configured to apply a first biasing force in said movement mode and a second biasing force in said locked mode such that magnitudes of each of the first and second biasing forces are based, at least in part, on an area of said foot surface and said coefficient of friction.
- 100. The system of claim 99 wherein said second biasing force cooperates with the coefficient of friction in the locked mode to at least limit lateral movement of the foot during attachment thereof to the support surface.
- 101. The system of claim 95 including attachment means arranged to cooperate with said movement means for fixedly attaching the foot to the support surface.
- 102. The system of claim 101 wherein said attachment means is configured for laser welding said foot to the support surface.
- 103. The system of claim 101 wherein the foot is configured for being lap welded to said support surface.
- 104. The system of claim 101 wherein said foot is at least generally plate-like in configuration and includes (i) a lower surface for at least initially engaging the support surface forming part of the optical assembly, (ii) an upper surface spaced-apart from the lower surface such that the foot includes a first thickness therebetween, (iii) and at least one weld region having a second thickness which is less than said first thickness for use in welding the foot to said support surface.
- 105. The system of claim 104 wherein said lower surface extends across said weld region and said weld region includes a stepped periphery formed in said upper surface to define a weldable surface which is spaced from said lower surface by said second thickness.
- 106. The system of claim 105 wherein said foot includes a peripheral sidewall formed such that the upper surface extends from the peripheral sidewall to the weld region to define a peripheral area which surrounds said weld region configured for engaging said movement means for biasing the peripheral area toward the support surface which, in turn, biases the lower surface of the foot against said support surface in said movement mode and in said locked mode.
- 107. The system of claim 106 wherein said movement means is configured for biasing the peripheral area against the support surface prior to and during welding of the weld region of the foot to the support surface.
- 108. The system of claim 105 wherein said movement means is configured for engaging said stepped periphery for moving said foot against said support surface.
- 109. The system of claim 108 wherein said movement means includes a movement arm having a distal end including a peripheral shoulder surrounding said distal end for engaging the stepped periphery of the foot for use in biasing the foot against the support surface and for use in moving the foot against the support surface and said distal end defines a through-opening that is configured for passing a laser beam to the weld region for use in welding the weld region of the foot to the support surface.
- 110. In a system for use in producing an optical assembly which itself includes a light path and an optical component to be positioned in said light path as part of the optical assembly, a method comprising the steps of:
defining a support surface as part of said optical assembly; providing movement means for controlling alignment movements of the optical component in a particular way relative to the light path; supporting said optical component using at least one foot which forms one part of a support arrangement for supporting the optical component; directly engaging said foot with said movement means; biasing the foot against the support surface in a movement mode which permits movement of the foot against the support surface; using the movement means, moving the foot against the support surface in the movement mode to orient said optical component in said particular way with respect to said light path; and with continuing use of the movement means, biasing the foot against the support surface in a locked mode in a way that is intended limit movement of the foot with respect to the support surface.
- 111. The method of claim 110 including the step of using the movement means for biasing the foot against the support surface in said movement mode and said locked mode.
- 112. The method of claim 111 including the steps of using a first force in said movement mode to bias the foot against the support surface and using a second force in said locked mode to bias the foot against the support surface such that the second force is substantially greater than the first force.
- 113. The method of claim 110 wherein said support surface is at least generally planar and including the step of configuring said foot to include an at least generally planar foot surface for engaging said support surface.
- 114. The method of claim 113 including the steps of engaging the foot surface against said foot surface with a coefficient of friction and configuring said movement means to apply a first biasing force in said movement mode and a second biasing force in said locked mode such that magnitudes of each of the first and second biasing forces are based, at least in part, on an area of said foot surface and said coefficient of friction.
- 115. The method of claim 114 including the step of selecting said second biasing force to cooperate with the coefficient of friction in the locked mode so as to at least limit lateral movement of the foot during attachment thereof to the support surface.
- 116. The method of claim 110 including the step of providing attachment means configured for cooperating with said movement means for fixedly attaching the foot to the support surface.
- 117. The method of claim 116 including the step of laser welding said said foot to the support surface using said attachment means.
- 118. The method of claim 116 including the step of lap welding said foot to said support surface.
- 119. The method of claim 116 including the step of forming said foot having (i) an at least generally plate-like configuration including, (ii) a lower surface for at least initially engaging the support surface forming part of the optical assembly, (iii) an upper surface spaced-apart from the lower surface such that the foot includes a first thickness therebetween, (iv) and at least one weld region having a second thickness which is less than said first thickness for use in welding the foot to said support surface.
- 120. The method of claim 119 including the steps of further forming said foot such that said lower surface extends across said weld region and defining a stepped periphery in said upper surface to provide a weldable surface which is spaced from said lower surface by said second thickness.
- 121. The method of claim 120 wherein said forming step forms said foot having a peripheral sidewall such that the upper surface extends from the peripheral sidewall to the weld region to define a peripheral area which surrounds said weld region and which is configured for engaging said movement means for biasing the peripheral area toward the support surface which, in turn, biases the lower surface of the foot against said support surface in said movement mode and in said locked mode.
- 122. The method of claim 121 including the step of configuring the movement means for biasing the peripheral area against the support surface prior to and during welding of the weld region of the foot to the support surface.
- 123. The method of claim 120 including the step of configuring said movement means for engaging said stepped periphery to move said foot against said support surface.
- 124. The method of claim 123 including the steps of configuring said movement means to include a movement arm having a distal end including a peripheral shoulder surrounding said distal end for engaging the stepped periphery of the foot for use in biasing the foot against the support surface and for use in moving the foot against the support surface and forming said distal end to define a through-opening that is configured for passing a laser beam to the weld region for use in welding the weld region of the foot to the support surface.
- 125. In an optical assembly including a light path and at least one optical component to be positioned in said light path and further including one or more support surfaces, a support arrangement comprising:
support means for supporting said optical component and having a foot arrangement including at least one foot defining a footprint for engaging one of the support surfaces, said foot being configured for receiving a direct manipulation in a way which changes the footprint on the support surface such that the optical component moves relative to said light path responsive to changes in said footprint.
- 126. The support arrangement of claim 125 wherein said foot defines one or more locations which support said optical component and said one or more locations move responsive to said direct manipulation to move the optical component.
- 127. The support arrangement of claim 125 wherein said foot distorts responsive to direct manipulation thereof to change said footprint.
- 128. The support arrangement of claim 125 wherein said foot includes at least first and second engagement positions at least one of which is configured for receiving said direct manipulation such that a distance change between the engagement positions changes said footprint which, in turn, produces movement of the optical component.
- 129. The support arrangement of claim 128 wherein said support means is configured for moving the optical component by an amount that is less than said distance change between the engagement positions.
- 130. The support arrangement of claim 128 wherein said foot is configured for initially fixedly attaching said first engagement position to said support surface and, thereafter, for moving the second engagement position relative to the first engagement position slidingly against the support surface.
- 131. The support arrangement of claim 125 wherein said foot includes at least one engagement position which is configured for receiving said direct manipulation such that a distance change between the engagement position and a selected point on the foot changes said footprint and said support means includes a support configuration that directly supports the optical component and which support configuration is hingedly attached to said foot using a pair of hinging positions such that the support configuration moves the optical component responsive to movement at the hinging positions with changes in said footprint and said hinging positions are arranged to at least generally pivot about at least the selected point responsive to movement of said engagement position relative to the selected point.
- 132. The support arrangement of claim 131 wherein said selected point is coincident with an additional engagement position that at least initially receives said direct manipulation.
- 133. The support arrangement of claim 131 wherein said foot is attachable to said support surface at one or more attachment points in a way which defines the selected point.
- 134. The support arrangement of claim 131 wherein a line is defined extending through said selected point and said engagement position and one of said hinging positions is on an opposite side of said line with respect to the other one of said hinging positions.
- 135. The support arrangement of claim 131 wherein said foot includes a first stiffness configuration between the selected point and the pair of hinging positions, thereby providing a first stiffness value, and a second stiffness configuration between the engagement position and the pair of hinging positions, thereby providing a second stiffness value, such that that the hinging positions move, at least in part, responsive to a ratio between the second stiffness value and the first stiffness value to, in turn, hingedly move the support configuration and thereby move the optical component.
- 136. The support arrangement of claim 135 wherein said pair of hinging positions, said first stiffness configuration and said second stiffness configuration are arranged symmetrically on either side of a line defined between the selected point and the engagement position, with the foot in a relaxed state.
- 137. The support arrangement of claim 136 wherein said foot is configured such that movement of the engagement position directly towards and away from the selected point moves said optical component having a projected component of movement in a direction that is at least generally parallel to said line.
- 138. The support arrangement of claim 135 wherein said first stiffness configuration includes a first pair of beam members having inward ends which are held at least generally fixed with respect to said selected point and outward ends that are arranged to move at least generally with the hinging positions such that a first length of each one of the first pair of beams, extending from its inward end to its outward end, provides said first stiffness value.
- 139. The support arrangement of claim 138 wherein said second stiffness configuration includes a second pair of beam members having inner ends which are arranged to move with movement of the engagement position and outer ends which are arranged to move at least generally with each of the hinging positions such that a second length of each one of second pair of beams, extending from its inner end to its outer end, provides said second stiffness value.
- 140. The support arrangement of claim 131 wherein, with said foot in a relaxed state, a first line defined between the selected point and the engagement position is at least generally orthogonal to a second line defined between each of the pair of hinges.
- 141. The support arrangement of claim 131 wherein each one of said pair of hinging positions is arranged at least generally symmetrically to either side of a line defined between the selected point and the engagement position.
- 142. The support arrangement of claim 131 wherein said foot includes at least one additional engagement position that is configured to receive an additional direct manipulation to move the additional engagement position relative to the selected point such that changing an additional distance between the additional engagement position and the selected point changes said footprint which, in turn, produces an additional movement of the optical component.
- 143. The support arrangement of claim 142 wherein movement of said engagement position relative to the selected point presents a first stiffness ratio for use in moving the optical component and moving the additional engagement position relative to the selected point presents an additional, different stiffness ratio for use in moving the optical component.
- 144. The support arrangement of claim 143 wherein said additional stiffness ratio is less than said first stiffness ratio.
- 145. The support arrangement of claim 144 wherein said foot includes further additional engagement positions, each of which is configured for direct manipulation to move the further additional engagement positions relative to the selected point such that each further additional engagement position provides for moving the optical component with a progressively lower stiffness.
- 146. The support arrangement of claim 125 wherein said foot is configured for moving slidingly against the support surface with the direct manipulation of the foot to move the optical component relative to said light path.
- 147. The support arrangement of claim 125 wherein said foot includes at least first and second engagement positions that are arranged for use in a coarse adjustment mode during which the foot slidingly moves in a relaxed state against one of the support surfaces to coarsely position the optical component relative to the light path, said foot further being configured for (i) fixed attachment to the support surface at least proximate to the first engagement position, and (ii) subsequent movement of the second engagement position in a fine-adjustment mode by moving the second engagement position relative to the first engagement position responsive to said direct manipulation to change said footprint to finely position the optical component.
- 148. The support arrangement of claim 125 wherein the support surface against which the foot moves is at least generally planar and said foot includes an at least generally planar footprint surface for engaging said support surface.
- 149. The arrangement of claim 148 wherein the footprint surface engages the support surface with a coefficient of friction and said foot is configured for manipulation of the foot surface against the support surface in a way which uses said coefficient of friction to resist undesired lateral movement of the foot against the support surface at least during attachment of the foot thereto.
- 150. The support arrangement of claim 149 wherein said loot is configured for being lap welded to the support surface.
- 151. The support arrangement of claim 125 wherein said support means is configured for moving the optical component along a predetermined path with selected direct movement of said foot.
- 152. The support arrangement of claim 151 wherein said foot arrangement includes two feet, each of which is moveable against at least one of said support surfaces, such that selected movement of the feet relative to one another causes the optical component to move along the predetermined path.
- 153. The support arrangement of claim 152 wherein said support means is configured for moving said optical component, due to a change in distance between said feet, by an amount that is less than the change in distance between the feet.
- 154. The support arrangement of claim 152 wherein a first one of said feet moves against a first one of said support surfaces and a second one of said feet moves against a second one of said support surfaces.
- 155. The support arrangement of claim 154 wherein said support means includes first and second web members that are hinged to one another and each of which is hinged to one of said feet such that the first and second web members extend between the feet for hinged movement with movement of the feet relative to one another and said optical component is attached to one of the first and second web members for moving along said predetermined path with said hinged movement.
- 156. The support arrangement of claim 155 wherein each of said feet and said first and second web members are formed from sheet material having a thickness and sized to a width, which is greater than said thickness, and hinged to one another across said width.
- 157. The support arrangement of claim 156 wherein said feet and said first and second web members are integrally formed from said sheet material.
- 158. The support arrangement of claim 152 wherein said support means includes first and second web members having opposing ends and each of which first and second web members is hinged at one end to a support member to extend the support member between the web members and each of which first and second web members is hinged at another end to one of said feet such that each of the first and second web members is hinged between one of the feet and said support member thereby providing hinged movement of the support member with movement of the feet relative to one another and said optical component is attached to said support member for moving along said predetermined path with said hinged movement.
- 159. The support arrangement of claim 152 wherein said support means includes a support member having first and second opposing ends that are hinged to first and second ones of said feet, respectively, to extend between the feet in a curved configuration and said optical component is attached to a mid-section of said support member such that movement of the feet along a linear path defined between the feet causes said first and second opposing ends of the support member to move in hinged engagement with the first and second feet while at least the mid-section of the support member bends to move the optical component along said predetermined path.
- 160. The support arrangement of claim 159 wherein said predetermined path is generally normal to said support surface with equal movements of each of said feet towards and away from one another.
- 161. The support arrangement of claim 125 wherein said support means is configured for moving the optical component along a predetermined path with selected direct movement of said foot and said predetermined path is arcuate in shape.
- 162. The support arrangement of claim 125 wherein said support means is configured for moving the optical component along a predetermined path with selected direct movement of said foot and said predetermined path at least generally defines a plane that is transverse to said light path.
- 163. The support arrangement of claim 125 wherein said foot is at least generally plate-like in configuration and includes (i) a lower surface defining said footprint for at least initially engaging the support surface, (ii) an upper surface spaced-apart from the lower surface such that the foot includes a first thickness therebetween, (iii) and at least one weld region having a second thickness which is less than said first thickness for use in welding the foot to said support surface.
- 164. The support arrangement of claim 163 wherein said lower surface extends across said weld region and said weld region includes a stepped periphery formed in said upper surface to define a weldable surface which is spaced from said lower surface by said second thickness.
- 165. In an optical assembly including a light path and at least one optical component to be positioned in said light path and further including one or more support surfaces, a method comprising the steps of:
configuring support means for supporting said optical component and having a foot arrangement including at least one foot defining a footprint for engaging one of the support surfaces; and arranging said foot to receive a direct manipulation in a way which changes the footprint on the support surface such that the optical component moves relative to said light path responsive to changes in said footprint.
- 166. The method of claim 165 wherein said foot is configured to define one or more locations which support said optical component and said one or more locations move responsive to said direct manipulation to move the optical component.
- 167. The method of claim 165 wherein said foot distorts responsive to the direct manipulation thereof to change said footprint.
- 168. The method of claim 165 wherein said foot is configured to include at least first and second engagement positions at least one of which is configured for receiving said direct manipulation such that a distance change between the engagement positions changes said footprint which, in turn, produces movement of the optical component.
- 169. The method of claim 168 wherein said support means, is configured for moving the optical component by an amount that is less than said distance change between the engagement positions.
- 170. The method of claim 168 wherein the step of configuring said foot includes the step of forming the foot for initially fixedly attaching said first engagement position to said support surface and, thereafter, for moving the second engagement position relative to the first engagement position slidingly against the support surface.
- 171. The method of claim 165 wherein the step of configuring said support means includes the steps of forming said foot to include at least one engagement position for receiving said direct manipulation such that a distance change between the engagement position and a selected point on the foot changes said footprint and arranging a support configuration to directly support the optical component while hingedly attaching the support configuration to said foot using a pair of hinging positions such that the support configuration moves the optical component responsive to movement at the hinging positions with changes in said footprint and placing said hinging positions to at least generally pivot about the selected point responsive to movement of said engagement position relative to the selected point.
- 172. The method of claim 171 including the step of providing an additional engagement position for at least initially receiving the direct manipulation such that the selected point is coincident with the additional engagement position.
- 173. The method of claim 171 including the step of attaching said foot to said support surface at one or more attachment points in a way which defines the selected point.
- 174. The method of claim 171 wherein a line is defined extending through said selected point and said second engagement position and including the step of positioning one of said hinges on an opposite side of said line with respect to the other one of said hinges.
- 175. The method of claim 171 wherein said step of configuring said support means includes the steps of arranging, as part of said foot, a first stiffness configuration between the selected position and the pair of hinging positions, thereby providing a first stiffness value, and arranging, further as part of said foot, a second stiffness configuration between the engagement position and the pair of hinging positions, thereby providing a second stiffness value, such that that the hinging positions move, at least in part, responsive to a ratio between the second stiffness value and the first stiffness value to, in turn, hingedly move the support configuration and thereby the optical component.
- 176. The method of claim 175 including the step of symmetrically arranging said pair of hinging positions, said first stiffness configuration and said second stiffness configuration on either side of a line defined between the selected point and the engagement position, with the foot in a relaxed state.
- 177. The method of claim 176 wherein said foot is configured for movement of the engagement position directly towards and away from the selected point to move said optical component having a projected component of movement in a direction that is at least generally parallel to said line.
- 178. The method of claim 175 including the step of arranging said first stiffness configuration to include a first pair of beam members having inward ends which are held at least generally fixed with respect to said selected point and outward ends that are arranged to move at least generally with the hinging positions such that a first length of each one of the first pair of beams, extending from its inward end to its outward end, provides said first stiffness value.
- 179. The method of claim 178 including the step of forming said second stiffness configuration to include a second pair of beam members having inner ends which are arranged to move with movement of the engagement position and outer ends which are arranged to move at least generally with each of the hinging positions such that a second length of each one of second pair of beams, extending from its inner end to its outer end, provides said second stiffness value.
- 180. The method of claim 171 wherein the step of configuring said support means includes the step of defining a first line between the engagement position and the selected point that is at least generally orthogonal to a second line defined between the hinging positions.
- 181. The method of claim 171 including the step of symmetrically arranging each one of said pair of hinges to either side of a line defined between the engagement position and the selected point.
- 182. The method of claim 171 including the step of forming said foot to include at least one additional engagement position that is configured to receive an additional direct manipulation to move the additional engagement position relative to the selected point such that changing an additional distance between the additional engagement position and the selected point, changes said footprint which, in turn, produces an additional movement of the optical component.
- 183. The method of claim 182 including the steps of moving said engagement position relative to the selected point to present a first stiffness ratio for use in moving the optical component and, thereafter, moving the additional engagement position relative to the selected point to present an additional, different stiffness ratio for use in moving the optical component.
- 184. The method of claim 183 wherein said foot is configured such that the additional stiffness ratio is less than said first stiffness ratio.
- 185. The method of claim 184 including the step of further configuring said foot to include further additional engagement positions, each of which is configured for direct manipulation to move the further additional engagement positions relative to the selected point such that each further additional engagement position provides for moving the optical component with a progressively lower stiffness ratio.
- 186. The method of claim 165 including the step of at least initially moving said foot as a unit slidingly against the support surface with the direct manipulation of the foot to move the optical component relative to said light path.
- 187. The method of claim 165 including the step of arranging said foot to include at least first and second engagement positions that are arranged for use in a coarse adjustment mode during which the foot slidingly moves in a relaxed state against one of the support surfaces to coarsely position the optical component relative to the light path, and further arranging the foot for (i) fixed attachment to the support surface at least proximate to the first engagement position, and (ii) subsequent movement of the second engagement position in a fine-adjustment mode by moving the second engagement position relative to the first engagement position responsive to said direct manipulation to change said footprint to finely position the optical component.
- 188. The method of claim 165 wherein the support surface against which the foot moves is at least generally planar and said foot is configured to include an at least generally planar footprint surface for engaging said support surface.
- 189. The method of claim 188 wherein the footprint surface engages the support surface with a coefficient of friction and said foot is configured for manipulation of the foot surface against the support surface in a way which uses said coefficient of friction to resist undesired lateral movement of the foot against the support surface at least during attachment of the foot thereto.
- 190. The method of claim 165 wherein said support means is configured for moving the optical component along a predetermined path with selected direct movement of said foot.
- 191. The method of claim 190 wherein said foot arrangement includes two feet, each of which is moveable against at least one of said support surfaces, such that selected movement of the feet relative to one another causes the optical component to move along the predetermined path.
- 192. In an optical assembly including a light path and at least one optical component to be positioned in said light path and further including one or more support surfaces, an arrangement comprising:
support means for supporting said optical component and having a foot arrangement including at least one foot that is configured for engaging said support surface and said foot defining first and second spaced-apart positions, at least one of which positions is capable of receiving a direct manipulation to change a spacing distance between the first and second positions which thereby causes the foot to react in a way which moves the optical component relative to said light path.
- 193. The support arrangement of claim 192 wherein said foot defines one or more locations which support said optical component and said one or more locations move responsive to said direct manipulation to move the optical component.
- 194. The support arrangement of claim 193 wherein said first position is configured for fixed attachment to said support surface and said second position is configured for receiving the direct manipulation to move the optical component relative to the light path.
- 195. The support arrangement of claim 194 wherein said second position is further configured for fixed attachment to said support surface while receiving said direct manipulation in a way that is intended to maintain the fine-adjustment movement upon release of said direct manipulation.
- 196. The support arrangement of claim 192 wherein said support means is configured for moving the optical component by an amount that is less than a change in said spacing distance due to the direct manipulation.
- 197. In an optical assembly including a light path and at least one optical component to be positioned in said light path and further including one or more support surfaces, a method comprising the steps of:
configuring support means for supporting said optical component and having a foot arrangement including at least one foot that is configured for engaging said support surface and is arranged for receiving a direct manipulation; identifying first and second spaced-apart positions on said foot, at least one of which positions is capable of receiving said direct manipulation; and using said direct manipulation, changing a spacing distance between the first and second positions which thereby causes the foot to react in a way which moves the optical component relative to said light path.
- 198. In an optical assembly including a light path and at least one optical component to be positioned in said light path and further including at least one support surface, a positioning system comprising:
support means for supporting said optical component and having a foot arrangement including at least one foot for engaging the support surface in a coarse adjustment mode during which the foot is moved slidingly as a unit against the support surface to at least coarsely position the optical component, said foot being configured to thereafter receive a direct manipulation while supported against the support surface in a fine-adjustment mode and to react to the direct manipulation in a way which causes a fine-adjustment movement of the optical component.
- 199. The positioning system of claim 198 wherein said foot defines one or more locations which support said optical component and said one or more locations move responsive to said direct manipulation to move the optical component.
- 200. The positioning system of claim 198 wherein said foot defines an attachment point for fixed attachment to said support surface during said fine-adjustment mode and said foot includes a fine-adjustment point that is in a spaced relationship from the attachment point such that said direct manipulation moves the fine-adjustment point relative to the attachment point in a positionally fixed state.
- 201. The system of claim 200 wherein said fine-adjustment point is further configured for fixed attachment to said support surface while receiving said direct manipulation in a way that is intended to maintain the fine-adjustment movement upon release of said direct manipulation.
- 202. In an optical assembly including a light path and at least one optical component to be positioned in said light path and further including at least one support surface, a method comprising the steps of:
configuring support means for supporting said optical component and having a foot arrangement including at least one foot for engaging the support surface and arranged for receiving a direct manipulation; in a coarse adjustment mode, moving the foot slidingly as a unit against the support surface to at least coarsely position the optical component; and in a fine-adjustment mode, engaging the foot with said direct manipulation having the foot supported against the support surface thereby causing the foot to react to the direct manipulation in a way which produces a fine-adjustment movement of the optical component.
- 203. In an optical assembly including a light path and at least one optical component to be positioned in said light path and further including at least one support surface, a support assembly comprising:
a support arrangement for supporting said optical component and being configured for initial attachment to said support surface at least at a first point in a way that at least potentially produces an attachment shift at the first point which, in turn, produces a positional shift at the optical component and said support arrangement including a soft-spring element configured for receiving an external manipulation and a stiff-spring element arranged for producing at least limited movement of the support arrangement, thereby moving the optical component, and said stiff-spring element arranged for cooperation with the soft-spring element such that a selected external manipulation received by the soft-spring element causes the stiff-spring element to react in a way which moves the support arrangement, thereby moving the optical component in a way that is intended to compensate for said positional shift produced at the optical component by said attachment shift.
- 204. The assembly of claim 203 wherein the soft-spring element and the stiff-spring element cooperate to attenuate the external manipulation so as to move the optical component by an amount that is less than the external manipulation.
- 205. The assembly of claim 203 wherein said support means includes at least one foot which is attachable to said support surface and said first point, said soft-spring element and said stiff-spring element are formed as part of the foot.
- 206. In an optical assembly including a light path and at least one optical component to be positioned in said light path and further including at least one support surface, a method comprising the steps of:
supporting said optical component using a support arrangement that is configured for initial attachment to said support surface at least at a first position in a way that at least potentially produces an attachment shift at the first position which, in turn, produces a positional shift at the optical component; arranging a soft-spring element configured for receiving an external manipulation and a stiff-spring element for producing at least limited movement of the support means, thereby moving the optical component, and further arranging the stiff-spring element for cooperation with the soft-spring element; and applying an external manipulation to the soft-spring element, to cause the stiff-spring element to react in a way which moves the support arrangement, thereby moving the optical component in a way that is intended to compensate for said positional shift produced at the optical component by said attachment shift.
- 207. The method of claim 206 wherein the soft-spring element and the stiff-spring element are configured for cooperating to attenuate the external manipulation so as to move the optical component by an amount that is less than the external manipulation.
- 208. The method of claim 206 including the step of forming said soft-spring element and said stiff-spring element as portions of a foot which is engagable against said support surface.
- 209. In an optical assembly including a light path and at least one optical component to be positioned in said light path and further including at least one support surface, a configuration comprising:
a support arrangement for supporting said optical component and being configured for initial, coarse positioning attachment to said support surface and said support arrangement including a manipulation position connected to a soft-spring element for responding to an external fine-positioning manipulation received at the manipulation position and a stiff-spring element arranged for producing at least limited movement of the optical component, and said stiff-spring element further arranged for cooperation with the soft-spring element such that the external fine-positioning manipulation is transferred, in an attenuated manner, through the soft-spring element to the stiff-spring element to cause the stiff-spring element to react in a way which moves the optical component for fine-positional adjustment thereof and said manipulation position is configured for fixed attachment, at least relative to the support surface, in a way which is intended to maintain a fine-adjusted position of the optical component, but which fixed attachment is at least potentially subject to an attachment shift at the manipulation position which attachment shift is attenuated by cooperation of the soft-spring element and stiff-spring element to reduce movement of the optical component away from its fine-adjusted position responsive to the attachment shift.
- 210. The configuration of claim 209 wherein said support arrangement includes an initial attachment position for said initial, coarse positioning attachment and said stiff-spring element and said soft-spring element are arranged between the manipulation position and the initial attachment position such that the external fine-positioning manipulation moves the manipulation position relative to the initial attachment position which produces deformation of the soft-spring member and stiff-spring member.
- 211. The configuration of claim 210 wherein said initial attachment position, said manipulation position, said soft-spring element and said stiff-spring element are formed as portions of a foot which is engaged against said support surface.
- 212. The configuration of claim 211 wherein said foot includes a footprint having a shape against said support surface and said foot is configured for deforming responsive to said external fine-positioning manipulation in a way which changes the shape of said footprint.
- 213. In an optical assembly including a light path and at least one optical component to be positioned in said light path and further including at least one support surface, a method comprising the steps of:
supporting said optical component using a support arrangement which is configured for initial, coarse positioning attachment to said support surface, said support arrangement including a manipulation position connected to a soft-spring element for responding to an external fine-positioning manipulation received at the manipulation position and a stiff-spring element arranged for producing at least limited movement of the optical component and said stiff-spring element further arranged for cooperation with the soft-spring element; applying the external fine-positioning manipulation to the manipulation point to transfer through the soft-spring element, in an attenuated manner, to the stiff-spring element to cause the stiff-spring element to react in a way which moves the optical component for fine-positional adjustment thereof; and fixedly attaching said manipulation position, at least relative to the support surface, in a way which is intended to maintain a fine-adjusted position of the optical component, but which fixed attachment is at least potentially subject to an attachment shift at the manipulation position which attachment shift is attenuated by cooperation of the soft-spring element and stiff-spring element to reduce movement of the optical component away from its fine-adjusted position responsive to the attachment shift.
- 214. The method of claim 213 including the steps of configuring said support arrangement to include an initial attachment position for said initial, coarse positioning attachment and arranging said stiff-spring element and said soft-spring element between the manipulation position and the initial attachment position such that the external fine-positioning manipulation moves the manipulation position relative to the initial attachment position which produces deformation of the soft-spring member and stiff-spring member.
- 215. The method of claim 214 including the step of forming said initial attachment position, said manipulation position, said soft-spring element and said stiff-spring element a portions of a foot which is engagable against said support surface.
- 216. The method of claim 215 wherein said foot is arranged to include a footprint having a shape against said support surface which is configured for deforming responsive to said external fine-positioning manipulation in a way which changes the shape of said footprint.
- 217. A system for use in producing an optical assembly which itself includes a light path and an optical component to be positioned in said light path as part of said optical assembly, said system comprising:
a support surface defined as part of said optical assembly; movement means for providing controlled alignment movements using at least one sharp tip; and support means for supporting said optical component, said support means including at least one foot having a lower surface for engaging the support surface and an upper surface, opposing said lower surface, that is configured for cooperating with the movement means for receiving a direct manipulation applied by said sharp tip to said upper surface of the foot to move the foot laterally against the support surface to, in turn, move the support means and optical component supported thereby.
- 218. The system of claim 217 wherein the sharp tip of the movement means and the foot are configured to cooperate to provide for biasing the foot against the support surface, during a movement mode, in a first way that is intended to permit lateral movement of the foot against the support surface and to bias the foot against the support surface, during a locked mode, in a second way that is intended to lock the foot against the support surface.
- 219. In a system for use in producing an optical assembly which itself includes a light path and an optical component to be positioned in said light path as part of said optical assembly, a method comprising the steps of:
providing a support surface defined as part of said optical assembly; arranging movement means for providing controlled alignment movements using at least one sharp tip; and configuring support means for supporting said optical component, said support means including at least one foot having a lower surface for engaging the support surface and an upper surface, opposing said lower surface, that is configured for cooperating with the movement means during engagement therewith; and applying a direct manipulation using said sharp tip on said upper surface of the foot to move the foot laterally against the support surface to, in turn, move the support means and optical component supported thereby.
- 220. The method of claim 219 including the step of causing the sharp tip of the movement means and the foot to cooperate so as to provide for biasing the foot against the support surface, during a movement mode, in a first way that is intended to permit lateral movement of the foot against the support surface and to bias the foot against the support surface, during a locked mode, in a second way that is intended to lock the foot against the support surface.
RELATED APPLICATION
[0001] The present application claims priority from U.S. Provisional Patent Application Serial No. 60/361,237, filed on Feb. 28, 2002.
Provisional Applications (1)
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Number |
Date |
Country |
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60361237 |
Feb 2002 |
US |