Claims
- 1. A system for actuating a spray pump assembly including a reservoir component and a pump/nozzle component, the system comprising:
a reference platform for providing a foundation upon which one or more components of the system are mounted; a motor component, fixedly attached to the reference platform, for receiving a power input and a control input and producing a rotary drive output therefrom; a drive transmission component, fixedly attached to the reference platform, for receiving the rotary drive output and producing a linear drive output therefrom; a spray pump holder component, removably attached to the reference platform, for removably securing the spray pump assembly; a force coupler for coupling the linear drive output to the spray pump mechanism, so as to apply a force to the spray pump mechanism; a force transducer for producing a force signal proportional to the force applied to the spray pump mechanism; and, a system controller for receiving a set of test inputs including (i) the force signal, (ii) one or more feedback signals from the motor component, and (iii) user input corresponding to spray pump test parameters, and providing the control input to the motor component as a predetermined function of the set of test inputs; wherein the system is operative to actuate the spray pump mechanism according to an actuation profile defined by the set of test inputs.
- 2. A system according to claim 1, wherein the motor component includes a servomotor.
- 3. A system according to claim 2, wherein the servomotor includes
(i) a motor controller for receiving and processing the control input and for providing the one or more feedback signals, and for storing the actuation profile; (ii) an encoder for monitoring an angular position of the rotary drive output and for producing an angular position signal corresponding to the angular position of the rotary drive output; (iii) a driver for receiving the actuation profile from the motor controller and the power input, and for producing a drive signal therefrom; (iv) an electric rotary motor for receiving the drive signal and for producing the rotary drive output therefrom.
- 4. A system according to claim 1, wherein the motor component includes a stepper motor.
- 5. A system according to claim 1, wherein the actuation profile includes a quiescent position of the spray pump mechanism.
- 6. A system according to claim 1, wherein the actuation profile includes a fully actuated position of the spray pump assembly.
- 7. A system according to claim 1, wherein the actuation profile includes a velocity profile from a quiescent position of the spray pump assembly to a fully actuated position of the spray pump mechanism.
- 8. A system according to claim 7, wherein the velocity profile includes velocity with respect to time.
- 9. A system according to claim 1, wherein the actuation profile includes a force profile from a quiescent position of the spray pump mechanism to a fully actuated position of the spray pump mechanism.
- 10. A system according to claim 9, wherein the force profile includes force with respect to time.
- 11. A system according to claim 1, wherein the actuation profile includes a hold time parameter corresponding to an amount of time the spray pump assembly is held in a fully actuated position.
- 12. A system according to claim 1, wherein the drive transmission component includes at least one linear screw-rail assembly.
- 13. A system according to claim 12, wherein the at least one linear screw-rail assembly includes an anti-backlash linear screw-rail assembly.
- 14. A system according to claim 12, wherein the at least one linear screw-rail assembly includes a low friction coating on at least a screw component within the linear screw-rail assembly.
- 15. A system according to claim 14, wherein the low friction coating includes a Teflon-based material.
- 16. A system according to claim 12, wherein the at least one linear screw-rail assembly includes ball bearing supports for supporting a screw component within the linear screw-rail assembly.
- 17. A system according to claim 1, further including a first pulley fixedly attached to the rotary drive output, a second pulley fixedly attached to a screw component within the linear screw-rail assembly, and a drive belt for coupling the first pulley to the second pulley.
- 18. A system according to claim 17, wherein the first pulley and the second pulley each include a plurality of teeth, and the drive belt includes a plurality of ribs, such that in operation the teeth on the first pulley and the teeth on the second pulley mesh with the ribs on the drive belt.
- 19. A system according to claim 1, wherein the rotary drive output is directly coupled to the drive transmission component.
- 20. A system according to claim 1, wherein the spray pump holder component removably secures the pump/nozzle component, and the coupler couples the linear drive output to the reservoir component.
- 21. A system according to claim 1, wherein the spray pump holder component removably secures the reservoir component, and the coupler couples the linear drive output to the pump/nozzle component.
- 22. A system according to claim 1, wherein the spray pump holder component includes
(i) a clamp having an aperture disposed about a central axis, and a plurality of fingers disposed about the perimeter of the aperture and extending out from the clamp parallel to the central axis; (ii) a compression member removably attached to the clamp; wherein the pump/nozzle component is inserted into the aperture along the central axis, and the compression member, when attached to the clamp, compresses the plurality of fingers against the pump/nozzle component so as to secure the pump/nozzle component to the clamp.
- 23. A system according to claim 22, wherein the clamp consists of a low friction material.
- 24. A system according to claim 23, wherein the low friction material is Teflon.
- 25. A system according to claim 22, wherein the compression member is constructed and arranged so as to variably compress the plurality of fingers against the pump/nozzle component.
- 26. A system according to claim 22, wherein the clamp and the compression member include mating threads, such that the compression member screws into the clamp and drives the fingers toward the central axis.
- 27. A system according to claim 22, wherein the compression member consists of anodized aluminum.
- 28. A system according to claim 22, further including an annular insert disposed about the central axis, between the fingers and the central axis, wherein the pump/nozzle component is inserted through the annular insert and the fingers compress the annular insert against the pump/nozzle component.
- 29. A system according to claim 22, wherein each of the fingers is characterized by a triangular cross section in a plane perpendicular to the central axis.
- 30. A system according to claim 22, wherein the clamp is characterized by a substantially square body disposed within a plane perpendicular to the central axis.
- 31. A system according to claim 30, wherein opposite sides of the square body slide into corresponding grooves in the reference platform.
- 32. A system according to claim 1, wherein the spray pump holder component includes
(i) a bracket for supporting the spray pump assembly; and, (ii) at least one securing strap for removably securing the spray pump assembly against the bracket.
- 33. A system according to claim 32, wherein the bracket includes a first cradle member having a first engaging surface for retaining a first surface of the reservoir component, and a second cradle member having a second engaging surface for retaining a second surface of the reservoir component.
- 34. A system according to claim 33, wherein the first engaging surface is substantially orthogonal to the second engaging surface.
- 35. A system according to claim 33, wherein the first engaging surface includes a V-shaped surface, so that the first engaging surface contacts a reservoir component having an arcuate exterior surface at two locations.
- 36. A system according to claim 33, wherein the second engaging surface includes a V-shaped surface, so that the second engaging surface contacts a reservoir component having an arcuate exterior surface at two locations.
- 37. A system according to claim 33, wherein the bracket further includes an aperture, disposed between the first cradle member and the second cradle member, for accommodating a heel portion of the spray pump assembly.
- 38. A system according to claim 32, further including a first securing strap and a second securing strap, wherein the first securing strap secures the spray pump assembly against the first cradle member, and the second securing strap secures the heel portion of the spray pump assembly into the aperture and against the second cradle member.
- 39. A system according to claim 32, wherein a first end of the at least one securing strap is fixedly attached to a first anchor on the bracket, and a second end of the at least one securing strap is removably attached to a second anchor on the bracket.
- 40. A system according to claim 39, wherein the second end of the at least one securing strap loops around the second anchor removably attaches to a distal portion of the securing strap.
- 41. A system according to claim 1, wherein the spray pump holder component includes
(i) a base including a body member, and a housing member having a stop tab; and, (ii) a clamping assembly including a first lever and a second lever pivotally attached at a pivot point about a pivot axle, and a spring attached to the first lever and the second lever so as to force together a first end of the first lever and a first end of the second lever; wherein the stop tab provides platform against which a pump/nozzle component of a spray pump assembly presses, and the pump/nozzle component is secured between the first end of the first lever and a first end of the second lever.
- 42. A system according to claim 41, wherein the body member is characterized by a square body, and opposite sides of the square body slide into corresponding grooves in the reference platform.
- 43. A system according to claim 1, wherein the force transducer is disposed between the spray pump assembly and linear drive output.
- 44. A system according to claim 1, wherein the force transducer is disposed between the spray pump assembly and the spray pump holder component.
- 45. A system according to claim 1, wherein the force transducer is disposed between the spray pump holder and the reference platform.
- 46. A system according to claim 1, the system controller includes
(A) a data acquisition assembly for sampling an angular position signal that characterizes the angular position of the rotary drive output, so as to generate one or more digital samples corresponding to the angular position signal; (B) a computer system for (i) receiving the set of test inputs and the one or more digital samples, (ii) generating the actuation profile and providing the actuation profile to the motor component, (iii) receiving the one or more feedback signals from the motor component and recording one or more physical parameters of the spray pump assembly during actuation.
- 47. A system according to claim 46, wherein the one or more physical parameters of the spray pump assembly includes a position versus time profile describing position of the nozzle pump component with respect to the reservoir component as a function of time.
- 48. A system according to claim 46, wherein the one or more physical parameters of the spray pump assembly includes a force versus time profile describing force applied to the nozzle pump component with respect to the reservoir component as a function of time.
- 49. A system according to claim 46, wherein the computer system performs a calibration procedure, calculates one or more compensation values, and uses the compensation values to modify the one or more physical parameters.
- 50. A system according to claim 46, wherein the computer system performs a calibration procedure, calculates one or more compensation values, and uses the compensation values to modify the control input to the motor component.
- 51. A system according to claim 1, wherein the system controller generates an actuation profile representative of a human hand actuating the spray pump assembly.
- 52. A system according to claim 1, further including means for adjustably tilting the reference platform so as to change an angle of a spray axis associated with the spray pump assembly, with respect to an external reference plane.
- 53. A system according to claim 1, wherein the motor component receives the force signal, compares the force signal to a predetermined threshold value, and reduces a torque associated with the rotary drive output when the force signal exceeds the predetermined threshold value.
- 54. A method of actuating a spray pump assembly including a reservoir component and a pump/nozzle component, via an actuator system including a rotary motor driving a linear screw-rail assembly, thereby applying a force to the spray pump assembly, the method comprising:
removably securing the spray pump assembly to a spray pump holder component; determining (i) a quiescent position of the spray pump, and (ii) a fully actuated position of the spray pump assembly; generating an actuation profile as a predetermined function of the quiescent position, the fully actuated position, and user input corresponding to spray pump test parameters; and, actuating the spray pump according to the actuation profile.
- 55. A method according to claim 54, wherein determining the quiescent position of the spray pump further includes (i) measuring an amount of force applied to the spray pump assembly, (ii) advancing the linear screw rail assembly until the amount of force applied to the spray pump assembly exceeds a first predetermined value, and (iii) recording a position of the linear screw rail assembly when the amount of force applied to the spray pump assembly exceeds the first predetermined value.
- 56. A method according to claim 55, wherein determining the fully actuated position of the spray pump assembly further includes (i) continuing to advance the linear screw rail assembly until the amount of force applied to the spray pump assembly exceeds a second predetermined value, and (ii) recording a position of the linear screw rail assembly when the amount of force applied to the spray pump assembly exceeds the second predetermined value.
- 57. A spray pump holder for securing a spray pump assembly, comprising:
(i) a clamp having an aperture disposed about a central axis, and a plurality of fingers disposed about the perimeter of the aperture and extending out from the clamp parallel to the central axis; (ii) a compression member removably attached to the clamp; wherein the pump/nozzle component is inserted into the aperture along the central axis, and the compression member, when attached to the clamp, compresses the plurality of fingers against the pump/nozzle component so as to secure the pump/nozzle component to the clamp.
- 58. A spray pump holder according to claim 57, wherein the clamp consists of a low friction material.
- 59. A spray pump holder according to claim 58, wherein the low friction material is Teflon.
- 60. A spray pump holder according to claim 57, wherein the compression member is constructed and arranged so as to variably compress the plurality of fingers against the pump/nozzle component.
- 61. A spray pump holder according to claim 57, wherein the clamp and the compression member include mating threads, such that the compression member screws into the clamp and drives the fingers toward the central axis.
- 62. A spray pump holder according to claim 57, wherein the compression member consists of anodized aluminum.
- 63. A spray pump holder according to claim 57, further including an annular insert disposed about the central axis, between the fingers and the central axis, wherein the pump/nozzle component is inserted through the annular insert and the fingers compress the annular insert against the pump/nozzle component.
- 64. A spray pump holder according to claim 57, wherein each of the fingers is characterized by a triangular cross section in a plane perpendicular to the central axis.
- 65. A spray pump holder according to claim 57, wherein the clamp is characterized by a substantially square body disposed within a plane perpendicular to the central axis.
- 66. A spray pump holder according to claim 65, wherein opposite sides of the square body slide into corresponding grooves in a reference platform.
- 67. A spray pump holder for securing a spray pump assembly, comprising:
(i) a bracket for supporting the spray pump assembly; and, (ii) at least one securing strap for removably securing the spray pump assembly against the bracket.
- 68. A spray pump holder according to claim 67, wherein the bracket includes a first cradle member having a first engaging surface for retaining a first surface of the reservoir component, and a second cradle member having a second engaging surface for retaining a second surface of the reservoir component.
- 69. A spray pump holder according to claim 68, wherein the first engaging surface is substantially orthogonal to the second engaging surface.
- 70. A spray pump holder according to claim 68, wherein the first engaging surface includes a V-shaped surface, so that the first engaging surface contacts a reservoir component having an arcuate exterior surface at two locations.
- 71. A spray pump holder according to claim 68, wherein the second engaging surface includes a V-shaped surface, so that the second engaging surface contacts a reservoir component having an arcuate exterior surface at two locations.
- 72. A spray pump holder according to claim 68, wherein the bracket further includes an aperture, disposed between the first cradle member and the second cradle member, for accommodating a heel portion of the spray pump assembly.
- 73. A spray pump holder according to claim 67, further including a first securing strap and a second securing strap, wherein the first securing strap secures the spray pump assembly against the first cradle member, and the second securing strap secures the heel portion of the spray pump assembly into the aperture and against the second cradle member.
- 74. A spray pump holder according to claim 67, wherein a first end of the at least one securing strap is fixedly attached to a first anchor on the bracket, and a second end of the at least one securing strap is removably attached to a second anchor on the bracket.
- 75. A spray pump holder according to claim 74, wherein the second end of the at least one securing strap loops around the second anchor removably attaches to a distal portion of the securing strap.
- 76. A spray pump holder for securing a spray pump assembly, comprising:
(i) a base including a body member, and a housing member having a stop tab; and, (ii) a clamping assembly including a first lever and a second lever pivotally attached at a pivot point about a pivot axle, and a spring attached to the first lever and the second lever so as to force together a first end of the first lever and a first end of the second lever; wherein the stop tab provides platform against which a pump/nozzle component of a spray pump assembly presses, and the pump/nozzle component is secured between the first end of the first lever and a first end of the second lever.
- 77. A spray pump holder according to claim 76, wherein the body member is characterized by a square body, and opposite sides of the square body slide into corresponding grooves in a reference platform.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is related to the following U.S. applications, of common assignee, from which priority is claimed, and the contents of which are incorporated herein in their entirety by reference:
[0002] “PRECISE POSITION CONTROLLED ACTUATING METHOD AND SYSTEM,” U.S. Provisional Patent Application Serial No. 60/299,874.
Provisional Applications (1)
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Number |
Date |
Country |
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60299874 |
Jun 2001 |
US |