Claims
- 1. A rotary object feeder, comprising:
- a support;
- a carrier member rotatably mounted to said support at a sun axis of rotation for rotation at a constant angular velocity .omega..sub.1 about said sun axis;
- a planetary member rotatably mounted to said carrier member at a planetary axis of rotation spaced from said sun axis of rotation at a distance D/2, said planetary member mounted for rotation at a constant planetary angular velocity .omega..sub.2 about said planetary axis;
- a moon member rotatably mounted to said planetary member at a moon axis of rotation spaced from said planetary axis of rotation at a distance e, said moon member mounted for rotation at a constant moon angular velocity .omega..sub.3 about said moon axis;
- an object pick-up member mounted to said moon member, having a pick-up surface at an outermost distance E.sub.nv /2 from said sun axis;
- said sun axis of rotation, said planetary axis of rotation and said moon axis of rotation being substantially parallel; and
- wherein (E.sub.nv .times..omega..sub.1)/2+{((E.sub.nv -D).times..omega..sub.2 /2)+(((E.sub.nv -D)/2-e).times..omega..sub.3)} substantially equals zero.
- 2. The rotary object feeder of claim 1, further comprising a motor operably interconnected with said carrier member to rotate said carrier member, said planetary member and said moon member.
- 3. The rotary object feeder of claim 2, wherein (E.sub.nv .times..omega..sub.1)/2+{((E.sub.nv -D).times..omega..sub.2 /2)+(((E.sub.nv -D)/2-e).times..omega..sub.3)} equals zero.
- 4. A rotary object feeder, comprising:
- a support;
- a carrier member rotatably mounted to said support at a sun axis of rotation;
- a planetary member rotatably mounted to said carrier member at a planetary axis of rotation spaced from said sun axis of rotation at a distance D/2;
- a moon member rotatably mounted to said planetary member at a moon axis of rotation spaced from said planetary axis of rotation at a distance e;
- an object pick-up member mounted to said moon member, having a pick-up surface at an outermost distance E.sub.nv /2 from said sun axis;
- said sun axis of rotation, said planetary axis of rotation and said moon axis of rotation being substantially parallel;
- means for continuously rotating said carrier member at a constant carrier angular velocity .omega..sub.1, said planetary member at a constant planetary angular velocity .omega..sub.2, and said moon member at a constant moon angular velocity .omega..sub.3,
- wherein (E.sub.nv .times..omega..sub.1)/2+{((E.sub.nv -D).times..omega..sub.2 /2)+(((E.sub.nv -D)/2-e).times..omega..sub.3)} substantially equals zero.
- 5. The feeder of claim 4 wherein said means for rotating is arranged to rotate said planetary member in a direction opposite a direction of rotation of said sun member and said moon member.
- 6. The feeder of claim 5, wherein said means for rotating is arranged such that .omega..sub.1 :.omega..sub.2 =-1 and .omega..sub.1 :.omega..sub.3 =-1.
- 7. The feeder of claim 6 wherein said means for rotating comprises a drive train.
- 8. The feeder of claim 7 wherein said means for rotating is arranged to move said pick-up member through an operating location between said pick-up location and said off-loading location at a reduced velocity.
- 9. The feeder of claim 4 wherein said means for rotating is arranged such that said moon member angular velocity, .omega..sub.3 is equal in magnitude to said planetary member angular velocity, .omega..sub.2 and said planetary member angular velocity, .omega..sub.2 and said moon member angular velocity are an integer multiple of said carrier member angular velocity, .omega..sub.1.
- 10. The feeder of claim 9 wherein said pick-up member comprises a suction cup.
- 11. The feeder of claim 10 further comprising electrical control means to actuate said pick-up member to pick up said object at said pick-up location and to release said object at said off-loading location.
- 12. The feeder of claim 11 wherein said means for rotating comprises a motor and wherein said drive train comprises gearing operably connected between said motor and said carrier member, said planetary member and said moon member.
- 13. The feeder of claim 12 further comprising
- a storage cartridge for holding folded cartons at said pick-up location;
- means to erect said folded cartons located at said operating location;
- a transport apparatus for transporting said cartons away from said feeder at said off-loading location;
- wherein said pick-up member picks up a folded carton from said storage cartridge, said means to erect said folded cartons unfolds and erects said folded carton at said operating location and then said erected carton is transported to and then released at said off-loading location by said pick-up member.
- 14. The feeder of claim 4 wherein said pick-up member comprises a suction cup and said feeder further comprises an actuatable vacuum generator, said vacuum generator comprises an air input and an air output, said output in fluid communication with said suction cup, said generator for converting a source of positive air pressure supplied to said input to a vacuum at said output to provide a source of vacuum for said suction cup.
- 15. The feeder of claim 14 wherein:
- said moon member has a hollow moon shaft with first and second ends, said hollow moon shaft having an elongated cavity, a first opening, and a second opening, said moon shaft having air communication through said elongated cavity between said first and second openings, said moon shaft positioned coaxially with said moon axis;
- said planetary member has a hollow planetary shaft with first and second ends, said hollow planetary shaft having an elongated cavity with a first opening and a second opening, said planetary shaft having air communication through said cavity between said first and second openings of said cavity in said planetary shaft, said planetary shaft positioned coaxially with said planetary axis;
- said carrier member being mounted on a hollow main shaft with a first end and a second end, said hollow main shaft having an elongated cavity with a first opening and a second opening, said shaft having air communication through said cavity between said first and second openings of said cavity of said main shaft, said main shaft being positioned coaxially with said sun axis;
- and wherein said source of air pressure supplied to said vacuum generator comprises:
- a first air pipe means connecting said vacuum generator to said first opening of said moon shaft;
- a second air pipe means connecting said second opening of said moon shaft to said first opening of said planetary shaft, said second air pipe means having at least one swivel connection to permit said second air pipe means to swivel about at least one of said moon axis or said planetary axis;
- a third air pipe means connecting said second opening of said planetary shaft to said first opening of said main shaft, said third air pipe means having at least one swivel connection to permit said third air pipe means to swivel about at least one of said planetary axis or said sun axis;
- a source of air pressure connected to said second opening of said main shaft;
- a control valve for controlling the vacuum for said suction cup.
- 16. A feeder as claimed in claim 15 wherein said first opening and said second opening of said cavity in said moon member are respectively positioned proximate said first and second ends of said moon member and said first opening and said second opening of said cavity in said planetary member are respectively positioned proximate said first and second ends of said planetary member.
- 17. The feeder of claim 4 wherein:
- said pick-up member has a suction cup;
- said moon member has a hollow moon shaft with first and second ends, said hollow moon shaft having an elongated cavity with a first opening and a second opening, said moon shaft having air communication through said cavity between said first and second openings of said cavity of said moon shaft, said moon shaft positioned coaxially with said moon axis;
- said planetary member has a hollow planetary shaft with first and second ends, said planetary shaft having an elongated cavity with a first opening and a second opening, said shaft having air communication through said cavity between said first and second openings of said cavity of said planetary member, said planetary shaft positioned coaxially with said planetary axis;
- said carrier member is mounted on a hollow main shaft with a first end and a second end, said main shaft having an elongated cavity with a first opening and a second opening, said main shaft having air communication through said cavity between said first and second openings of said cavity of said main shaft, said main shaft positioned coaxially with said sun axis;
- an air communication system comprising:
- a first air communication means connecting said suction cup and said first opening of said moon shaft;
- a second air communication means connecting said second opening of said moon shaft to said first opening of said planetary shaft;
- a third air communication means connecting said second opening of said planetary shaft to said first opening of said main shaft;
- whereby a supply of air may be applied at said second opening of said main shaft to pass a supply of air through said air communication means and said cavities in said moon shaft, said planetary shaft and said main shaft to provide a vacuum at said suction cup.
- 18. The feeder of claim 17, further comprising a vacuum generator for converting a source of positive air pressure to a vacuum, disposed within said air communication system, such that if a supply of positively pressurized air is applied at said second opening of said main shaft, a vacuum is generated at said suction cup.
- 19. A feeder as claimed in claim 18 wherein said vacuum generator is included in said first air communication means.
- 20. A feeder as claimed in claim 17 wherein said first opening and said second opening of said cavity in said moon member are respectively positioned proximate said first and second ends of said moon member and said first opening and said second opening of said cavity in said planetary member are respectively positioned proximate said first and second ends of said planetary member.
- 21. A rotary object feeder, comprising:
- a support;
- a carrier member rotatably mounted to said support at a sun axis of rotation;
- a planetary member rotatably mounted to said carrier member at
- a planetary axis of rotation spaced from said sun axis of rotation at a distance D/2;
- a moon member rotatably mounted to said planetary member at a moon axis of rotation spaced from said planetary axis of rotation at a distance e;
- an object pick-up member mounted to said moon member, having a pick-up surface at an outermost distance E.sub.nv /2 from said sun axis;
- said sun axis of rotation, said planetary axis of rotation and said moon axis of rotation being substantially parallel;
- means for continuously rotating said carrier member at a constant carrier angular velocity .omega..sub.1, said planetary member at a constant planetary angular velocity .omega..sub.2, and said moon member at a constant moon angular velocity .omega..sub.3,
- wherein E.sub.nv, D and e are chosen so that (E.sub.nv .times..omega..sub.1)/2+{((E.sub.nv -D).times..omega..sub.2 /2)+((E.sub.nv -D)/2-e).times..omega..sub.3)} substantially equals zero.
- 22. A rotary object feeder comprising
- a support;
- a carrier member, rotatably mounted to said support at a sun axis of rotation;
- a planetary member, rotatably mounted to said carrier member at a planetary axis of rotation, said planetary axis parallel to said sun axis and spaced therefrom;
- an extension member rotatably mounted to said planetary member at a moon axis of rotation, said moon axis parallel to said planetary axis and spaced therefrom, said extension member mounted for rotation about said moon axis, and extending radially from said moon axis;
- a shaft extending away from said extension member in a direction generally parallel to said moon axis and spaced from said moon axis; and
- an object pick-up member mounted to said shaft having a pick-up surface for selective pick-up and release of objects proximate a periphery of said feeder, said pick-up surface extending toward said moor axis as said pick-up member picks-up and releases objects.
- 23. The rotary feeder of claim 22, further comprising a motor operably interconnected with said carrier member to rotate said carrier member, said planetary member and said extension member.
- 24. The rotary feeder of claim 23, wherein
- said planetary axis is spaced from said sun axis a distance of D/2;
- said moon axis is spaced from said planetary axis a distance of e;
- said pick-up surface is spaced from said sun axis at a distance E.sub.nv /2;
- said carrier member, said planetary member and said moon member are adapted to rotate at rates of rotation .omega..sub.1, .omega..sub.2, and .omega..sub.3 about said sun, planetary and moon axes, respectively; and wherein
- (E.sub.nv .times..omega..sub.1)/2+{((E.sub.nv -D).times..omega..sub.2 /2)+(((E.sub.nv -D)/2-e).times..omega..sub.3)} substantially equals zero.
- 25. The rotary feeder of claim 22, wherein said object pick-up member is fixedly mounted to said shaft.
- 26. The rotary object feeder of claim 22 wherein
- three substantially identical planetary members arc rotatably mounted to said carrier member at equal angular spacings about said sun axis,
- each planetary member is associated with an extension member rotatably mounted to an associated planetary member at an associated moon axis and extending radially therefrom, each moon axis generally parallel to said sun axis,
- each extension member is associated with a shaft extending from an associated extension member, in a direction generally parallel to an associated moon axis and spaced therefrom,
- each shaft is associated with an object pick-up member mounted to an associated shaft,
- each pick-up member has a pick-up surface for selective pick-up and release of objects proximate a periphery of said feeder, and
- each pick-up member extends toward an associated moon axis as said each pick-up member picks-up and releases objects.
- 27. A rotary object feeder comprising
- a support;
- a carrier member, rotatably mounted to said support at a sun axis of rotation;
- a planetary member, rotatably mounted to said carrier member at a planetary axis of rotation, said planetary axis parallel to said sun axis and spaced therefrom;
- an extension member rotatably mounted to said planetary member at a moon axis of rotation, said moon axis parallel to said planetary axis and spaced therefrom, said extension member mounted for rotation about said moon axis, and extending radially from said moon axis;
- a shaft extending away from said extension member in a direction generally parallel to said moon axis and spaced from said moon axis; and
- an object pick up member mounted to said shaft having a pick-up surface extending toward said moon axis for selective pick-up and release of objects proximate a periphery of said feeder at a distance less than or equal to the distance of said moon axis from said sun axis.
- 28. The rotary feeder of claim 27, further comprising a motor operably interconnected with said carrier member to rotate said carrier member, said planetary member and said extension member.
- 29. The rotary feeder of claim 28, wherein
- said planetary axis is spaced from said sun axis a distance of D/2;
- said moon axis is spaced from said planetary axis a distance of e;
- said pick-up surface is spaced from said sun axis at a distance E.sub.nv /2;
- said carrier member, said planetary member and said moon member are adapted to rotate at rates of rotation .omega..sub.1, .omega..sub.2, and .omega..sub.3 about said sun, planetary and moon axes, respectively; and wherein
- (E.sub.nv .times..omega..sub.1)/2+{((E.sub.nv -D).times..omega..sub.2 /2)+(((E.sub.nv -D)/2-e).times..omega..sub.3)} substantially equals zero.
- 30. The rotary feeder of claim 27, wherein said object pick-up member is fixedly mounted to said shaft.
- 31. The rotary object feeder of claim 27, wherein
- a total of three substantially identical planetary members, are rotatably mounted to said carrier member at substantially equal angular spacings about said sun axis,
- each planetary member is associated with an extension member rotatably mounted to an associated planetary member at an associated moon axis and extending radially therefrom, each moon axis generally parallel to said sun axis,
- each extension member is associated with a shaft extending from an associated extension member, in a direction generally parallel to an associated moon axis and spaced therefrom,
- each shaft is associated with an object pick-up member mounted to an associated shaft,
- each pick-up member has a pick-up surface for selective pick-up and release of objects proximate a periphery of said feeder, and
- each pick-up member extends toward an associated moon axis as said each pick-up member picks-up and releases objects.
- 32. A rotary object feeder, comprising:
- (a) a support;
- (b) a carrier member rotatably mounted to said support at a sun axis of rotation;
- (c) first and second planetary systems, each planetary system comprising:
- (i) a planetary member rotatably mounted to said carrier member at a planetary axis of rotation spaced from said sun axis of rotation;
- (ii) a moon member rotatably mounted to said planetary member at a moon axis of rotation spaced from said planetary axis of rotation;
- (iii) an object pick-up member mounted to said moon member;
- said sun axis of rotation, and said planetary axes of rotation and said moon axes of rotation being substantially parallel;
- means for continuously rotating said carrier member, said planetary members, and said moon members at fixed relative angular velocities, with at least one of said planetary member and said moon member in each planetary system rotating in a direction opposite to that of said carrier member, such that each of said pick-up members moves through a pick-up location at a reduced velocity relative to said support,
- wherein a moon member, planetary member and object pick-up member of said first planetary system and a moon member, planetary member and object pick-up member of said second planetary system are mounted to said carrier member so that said object pick-up member of said first system travels along a first path about said sun axis, and said object pick-up member of said second planetary system travels along a second path about said sun axis, different than said first path.
- 33. A feeder as claimed in claim 32 wherein the angular velocities of said moon member and said planetary member of said first planetary system are the same as the respective angular velocities of said moon member and said planetary member of said second planetary system.
- 34. A feeder as claimed in claim 33, wherein the angular position of said moon member of said first planetary system is in phase with the angular position of said moon member of said second planetary system.
- 35. A feeder as claimed in claim 33 wherein said means for rotating is arranged to rotate said moon member of said first planetary system at a first moon member angular velocity and said planetary member of said first planetary system at a first planetary member angular velocity, and said moon member of said second planetary system at a second moon member angular velocity and said planetary member of said second planetary system at a second planetary member angular velocity, with said first moon member angular velocity being equal in magnitude to said first planetary member angular velocity, and said second moon member angular velocity being equal in magnitude to said second planetary member angular velocity, said first planetary member angular velocity being a first integer multiple of the carrier member angular velocity and said second planetary member angular velocity being a second integer multiple of the carrier member angular velocity.
- 36. A feeder as claimed in claim 35 wherein said first integer multiple and said second integer multiple are the same.
- 37. A rotary object feeder comprising
- a support;
- a carrier member, rotatably mounted to said support at a sun axis of rotation;
- three planetary members, rotatably mounted to said carrier member at associated planetary axes of rotation, each planetary axis parallel to said sun axis and spaced therefrom;
- an associated extension member rotatably mounted to each planetary member at an associated moon axis of rotation, each moon axis parallel to an associated planetary axis and spaced therefrom, each associated extension member mounted for rotation about an associated moon axis, and extending radially from an associated moon axis;
- an associated shaft extending away from an associated extension member in a direction generally parallel to an associated moon axis and spaced therefrom; and
- an object pick-up member mounted to each associated shaft having a pick-up surface for selective pick-up and release of objects proximate a periphery of said feeder, said pick-up surface extending toward said associated moon axis as said pick-up member picks-up and releases objects.
- 38. A method for feeding an object from a pick-up location to an off-loading location, comprising the steps of:
- moving an object pick-up member having a pick-up surface along a trajectory by
- (a) rotating said object pick-up member about a first axis of rotation at a constant object pick-up member angular velocity, .omega..sub.3 ;
- (b) rotating said first axis of rotation at a constant angular velocity .omega..sub.2 about a second axis of rotation substantially parallel to said first axis of rotation and spaced a distance e therefrom;
- (c) rotating said second axis of rotation at a constant angular velocity .omega..sub.1 about a third axis of rotation substantially parallel to said second axis of rotation and spaced a distance D/2 from said second axis of rotation;
- wherein said pick-up member is spaced from said first axis so that said pick-up surface is at an outermost distance of E.sub.nv /2 from said third axis;
- and wherein
- (E.sub.nv .times..omega..sub.1)/2+{((E.sub.nv -D).times..omega..sub.2 /2)+(((E.sub.nv -D)/2-e).times..omega..sub.3)}
- substantially equals zero;
- said method further comprising:
- picking up said object with said pick-up member at a pick-up location along said trajectory; and
- releasing said object at an off-loading location along said trajectory.
- 39. The method of claim 38 wherein
- said second axis of rotation is rotated in a direction opposite the direction of rotation of said first and third axes of rotation.
- 40. The method of claim 39 wherein .omega..sub.2 =-.omega..sub.3.
Parent Case Info
This is a continuation of application Ser. No. 08/535,945, filed Sep. 28, 1995 which was abandoned upon the filing hereof.
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Continuations (1)
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Number |
Date |
Country |
Parent |
535945 |
Sep 1995 |
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