Claims
- 1. A hand-held fastening tool for driving a fastener into a workpiece comprising:
a body; a chamber formed in the body; a drive piston received in the chamber for reciprocal movement therein, the drive piston reciprocating in the chamber to drive the fastener into the workpiece; an electrical power source; a compressor and an electric motor each mounted to the body, the electric motor powered by the electrical power source and the compressor powered by the electric motor; a compressed air reservoir in communication with the compressor, the compressed air reservoir storing the compressed air that is compressed in the compressor; a trigger valve assembly operable to release stored compressed air from the compressed air reservoir into the chamber to drive the drive piston thereby driving the fastener.
- 2. The tool according to claim 1 further comprising:
a port in communication with the compressed air reservoir, the port selectively connectable to a compressed air hose thereby permitting compressed air to flow from an external air compressor through the compressed air hose and the port and into the compressed air reservoir.
- 3. The tool according to claim 2 wherein the compressor and the electric motor are each detachably mounted to the body thereby permitting the compressor and the electric motor to be removed while the tool is powered with compressed air from an external air compressor.
- 4. The tool according to claim 2 wherein the port comprises a manually actuable valve whereby when the valve is closed, compressed air from a compressed air hose connected to the port may not flow into the compressed air reservoir, and whereby when the valve is open, compressed air from a compressed air hose connected to the port may flow into the compressed air reservoir.
- 5. The tool according to claim 1 further comprising:
a compressor cover mounted to the body and enclosing a space around at least the compressor, the compressor cover leaving an air gap between the compressor and the compressor cover so that cooling air can flow around the compressor to cool the compressor.
- 6. The tool according to claim 5 further comprising:
air vents formed in the compressor cover which allow cooling air to pass into and out of the space enclosed by the compressor cover; a fan driven by the electric motor and enclosed by the compressor cover, the fan causing cooling air to enter some of the air vents and exit others of the air vents, the compressor cover forming a shroud around the fan which substantially prevents air from recirculating through the fan inside of the compressor cover.
- 7. The tool according to claim 5 wherein the compressor is not directly mounted to the compressor cover, and wherein the compressor is mounted to the body via vibration damping means for preventing vibrations generated by the compressor from transferring to the body.
- 8. The tool according to claim 1 further comprising:
a indicator light mounted to the body which is lit when the pressure of the stored compressed air in the compressed air reservoir is greater than a predetermined pressure.
- 9. The tool according to claim 1 further comprising:
a pressure relief valve in communication with the compressed air reservoir, wherein the pressure relief valve releases stored compressed air into the atmosphere when the pressure of the stored compressed air in the compressed air reservoir exceeds a predetermined pressure.
- 10. The tool according to claim 9 further comprising:
a switch operatively associated with the electrical power source wherein the electric motor cannot be powered by the electrical power source when the switch is in an “off” position, and wherein the switch actuates the pressure relief valve when moved to the “off” position causing the pressure relief valve to release stored compressed air into the atmosphere.
- 11. The tool according to claim 1 further comprising:
vibration damping means interposed between the compressor and the body for preventing vibrations generated by the compressor from transferring to the body.
- 12. The tool according to claim 1 further comprising:
a pressure sensitive switch associated with the electric motor and sensitive to the pressure of the stored compressed air in the compressed air reservoir, wherein the pressure sensitive switch activates the electric motor when the pressure of compressed air in the compressed air reservoir falls below a first predetermined value, and deactivates the electric motor when the pressure of compressed air in the compressed air reservoir rises above a second predetermined value.
- 13. The tool according to claim 1 wherein the electrical power source is a battery detachably mounted to the body.
- 14. The tool according to claim 13 further comprising:
a port in communication with the compressed air reservoir, the port selectively connectable to a compressed air hose thereby permitting compressed air to flow from an external air compressor through the compressed air hose and the port and into the compressed air reservoir.
- 15. The tool according to claim 14 wherein the compressor and the electric motor are each detachably mounted to the body thereby permitting the compressor and the electric motor to be removed while the tool is powered with compressed air from an external air compressor.
- 16. The tool according to claim 14 wherein the port comprises a manually actuable valve whereby when the valve is closed, compressed air from a compressed air hose connected to the port may not flow into the compressed air reservoir, and whereby when the valve is open, compressed air from a compressed air hose connected to the port may flow into the compressed air reservoir.
- 17. The tool according to claim 13 further comprising:
a compressor cover mounted to the body and enclosing a space around at least the compressor, the compressor cover allowing an air gap between the compressor and the compressor cover so that cooling air can flow around the compressor to cool the compressor.
- 18. The tool according to claim 17 further comprising:
air vents formed in the compressor cover which allow cooling air to pass into and out of the space enclosed by the compressor cover; a fan driven by the electric motor and enclosed by the compressor cover, the fan causing cooling air to enter some of the air vents and exit others of the air vents, the compressor cover forming a shroud around the fan which substantially prevents air from recirculating through the fan inside of the compressor cover.
- 19. The tool according to claim 17 wherein the compressor is not directly mounted to the compressor cover, and wherein the compressor is mounted to the body via vibration damping means for preventing vibrations generated by the compressor from transferring to the body.
- 20. The tool according to claim 13 further comprising:
a indicator light mounted to the body which is lit when the pressure of the stored compressed air in the compressed air reservoir is greater than a predetermined pressure.
- 21. The tool according to claim 13 further comprising:
a pressure relief valve in communication with the compressed air reservoir, wherein the pressure relief valve releases stored compressed air into the atmosphere when the pressure of the stored compressed air in the compressed air reservoir exceeds a predetermined pressure.
- 22. The tool according to claim 21 further comprising:
a switch operatively associated with the electrical power source wherein the electric motor cannot be powered by the electrical power source when the switch is in an “off” position, and wherein the switch actuates the pressure relief valve when moved to the “off” position causing the pressure relief valve to release stored compressed air into the atmosphere.
- 23. The tool according to claim 21 further comprising:
a battery release button operatively associated with the battery wherein upon actuation of the battery release button the battery is released from the body and the battery release button actuates the pressure relief valve causing the pressure relief valve to release stored compressed air into the atmosphere.
- 24. The tool according to claim 13 further comprising:
vibration damping means interposed between the compressor and the body for preventing vibrations generated by the compressor from transferring to the body.
- 25. The tool according to claim 13 further comprising:
a pressure sensitive switch associated with the electric motor and sensitive to the pressure of the stored compressed air in the compressed air reservoir, wherein the pressure sensitive switch activates the electric motor when the pressure of compressed air in the compressed air reservoir falls below a first predetermined value, and deactivates the electric motor when the pressure of compressed air in the compressed air reservoir rises above a second predetermined value.
- 26. The tool according to claim 13 further comprising: a pressure sensor for measuring the pressure of the stored compressed air in the compressed air reservoir;
an electronic control system which controls the actuation of the electric motor according to a method comprising the following steps:
measure the pressure of the compressed air in the compressed air reservoir; turn on the electric motor if the measured pressure of the compressed air in the compressed air reservoir falls below a first predetermined value, Pmot; turn off the electric motor if the measured pressure of the compressed air in the compressed air reservoir rises above a second predetermined value, Pmax.
- 27. The tool according to claim 26 further comprising:
a selector switch operatively associated with the control system having at least a first position and a second position wherein Pmot and Pmax are selected by the user through the selector switch, in the first position Pmot is set to the value of Pmot,1 and Pmax is set to the value of Pmax,1, and in the second position Pmot is set to the value of Pmot,2 and Pmax is set to the value of Pmax,2, and wherein Pmot,1<Pmot,2 and Pmax,1<Pmax,2.
- 28. The tool according to claim 26 wherein the control system controls the actuation of the compressor according to the following additional steps:
when the compressor is on, calculate the time rate of change of the pressure of the stored compressed air in the compressed air reservoir; turn off the electric motor if the calculated time rate of change is below a predetermined value for a predetermined amount of time.
- 29. A method of driving a fastener into a workpiece with a hand-held fastening tool, the method comprising the steps of:
drawing air from the atmosphere and compressing the air in an onboard compressor mounted to the hand-held fastening tool, the compressor powered by an electrical power source; filling a compressed air reservoir with the compressed air compressed in the onboard compressor; and actuating a valve assembly to release compressed air from the compressed air reservoir into a chamber having a drive piston reciprocally movable therein causing the drive piston to move in a chamber formed in the hand-held fastening tool thereby driving a first fastener.
- 30. The method of driving a fastener according to claim 29 further comprising the steps of:
providing compressed air compressed in an external air compressor to the compressed air reservoir through a compressed air hose; and actuating the valve assembly to release compressed air compressed in the external air compressor from the compressed air reservoir causing the drive piston to move in the chamber thereby driving a second fastener.
- 31. The method of driving a fastener according to claim 29 wherein the electrical power source is a battery detachably mounted to the hand-held fastening tool.
- 32. The method of driving a fastener according to claim 31 further comprising the steps of:
providing compressed air compressed in an external air compressor to the compressed air reservoir through a compressed air hose; and actuating the valve assembly to release compressed air compressed in the external air compressor from the compressed air reservoir causing the drive piston to move in the chamber thereby driving a second fastener.
- 33. The method of driving a fastener according to claim 29 further comprising the steps of:
selecting one of several possible maximum air pressure values using a selector switch mounted to the hand-held fastening tool; and turning off the onboard compressor when the pressure of the compressed air in the compressed air reservoir exceeds the selected maximum air pressure value.
- 34. The method of driving a fastener according to claim 33 wherein the step of selecting one of several possible maximum air pressure values further comprises the steps of:
consulting a chart which suggests a maximum air pressure value by matching the fastener to be used with one of several possible categories of fasteners, matching the workpiece with one of several possible categories of work pieces, and reading a discreet suggested maximum air pressure value which is associated with the particular combination of the matched category of fasteners and the matched category of work pieces.
- 35. A method for performing a task with a hand-held pneumatic tool comprising the steps of:
using an electric motor mounted to the hand-held pneumatic tool to power a compressor mounted to the hand-held pneumatic tool, the compressor having a compressor piston; compressing atmospheric air with the compressor piston; storing the compressed air; actuating a trigger on the hand-held pneumatic tool so that a drive piston positioned in a chamber formed in the hand-held pneumatic tool is driven downward in the chamber by the compressed air; driving a working mechanism for performing the task with the downward motion of the drive piston.
- 36. The method according to claim 35 wherein the step of actuating a trigger on the hand-held pneumatic tool further comprises the step of:
releasing the stored compressed air into the chamber.
- 37. The method according to claim 35 further comprising the step of:
powering the electric motor with a battery mounted to the hand-held pneumatic tool.
- 38. A hand-held pneumatic tool comprising:
a body; a chamber formed in the body; a drive piston received in the chamber for reciprocal movement therein; a working mechanism for performing the work of the hand-held pneumatic tool, the drive piston reciprocating in the chamber to drive the working mechanism; an electrical power source; a compressor and an electric motor each mounted to the body, the electric motor powered by the electrical power source and the compressor powered by the electric motor; a compressed air reservoir in communication with the compressor, the compressed air reservoir storing compressed air that is compressed in the compressor; a trigger valve assembly operable to release stored compressed air from the compressed air reservoir into the chamber to drive the drive piston thereby driving the working mechanism.
- 39. The tool according to claim 38 further comprising:
a port in communication with the compressed air reservoir, the port selectively connectable to a compressed air hose thereby permitting compressed air to flow from an external air compressor through the compressed air hose and the port and into the compressed air reservoir.
- 40. The tool according to claim 39 wherein the compressor and the electric motor are each detachably mounted to the body thereby permitting the compressor and the electric motor to be removed while the tool is powered with compressed air from an external air compressor.
- 41. The tool according to claim 39 wherein the port comprises a manually actuable valve whereby when the valve is closed, compressed air from a compressed air hose connected to the port may not flow into the compressed air reservoir, and whereby when the valve is open, compressed air from a compressed air hose connected to the port may flow into the compressed air reservoir.
- 42. The tool according to claim 38 further comprising:
a compressor cover mounted to the body and enclosing a space around at least the compressor, the compressor cover leaving an air gap between the compressor and the compressor cover so that cooling air can flow around the compressor to cool the compressor.
- 43. The tool according to claim 42 further comprising:
air vents formed in the compressor cover which allow cooling air to pass into and out of the space enclosed by the compressor cover; a fan driven by the electric motor and enclosed by the compressor cover, the fan causing cooling air to enter some of the air vents and exit others of the air vents, the compressor cover forming a shroud around the fan which substantially prevents air from recirculating through the fan inside of the compressor cover.
- 44. The tool according to claim 42 wherein the compressor is not directly mounted to the compressor cover, and wherein the compressor is mounted to the body via vibration damping means for preventing vibrations generated by the compressor from transferring to the body.
- 45. The tool according to claim 38 further comprising:
a indicator light mounted to the body which is lit when the pressure of the stored compressed air in the compressed air reservoir is greater than a predetermined pressure.
- 46. The tool according to claim 38 further comprising:
a pressure relief valve in communication with the compressed air reservoir, wherein the pressure relief valve releases stored compressed air into the atmosphere when the pressure of the stored compressed air in the compressed air reservoir exceeds a predetermined pressure.
- 47. The tool according to claim 46 further comprising:
a switch operatively associated with the electrical power source wherein the electric motor cannot be powered by the electrical power source when the switch is in an “off” position, and wherein the switch actuates the pressure relief valve when moved to the “off” position causing the pressure relief valve to release stored compressed air into the atmosphere.
- 48. The tool according to claim 38 further comprising:
vibration damping means interposed between the compressor and the body for preventing vibrations generated by the compressor from transferring to the body.
- 49. The tool according to claim 38 further comprising:
a pressure sensitive switch associated with the electric motor and sensitive to the pressure of the stored compressed air in the compressed air reservoir, wherein the pressure sensitive switch activates the electric motor when the pressure of compressed air in the compressed air reservoir falls below a first predetermined value, and deactivates the electric motor when the pressure of compressed air in the compressed air reservoir rises above a second predetermined value.
- 50. The tool according to claim 38 wherein the electrical power source is a battery detachably mounted to the body.
- 51. The tool according to claim 50 further comprising:
a port in communication with the compressed air reservoir, the port selectively connectable to a compressed air hose thereby permitting compressed air to flow from an external air compressor through the compressed air hose and the port and into the compressed air reservoir.
- 52. The tool according to claim 51 wherein the compressor and the electric motor are each detachably mounted to the body thereby permitting the compressor and the electric motor to be removed while the tool is powered with compressed air from an external air compressor.
- 53. The tool according to claim 51 wherein the port comprises a manually actuable valve whereby when the valve is closed, compressed air from a compressed air hose connected to the port may not flow into the compressed air reservoir, and whereby when the valve is open, compressed air from a compressed air hose connected to the port may flow into the compressed air reservoir.
- 54. The tool according to claim 50 further comprising:
a compressor cover mounted to the body and enclosing a space around at least the compressor, the compressor cover allowing an air gap between the compressor and the compressor cover so that cooling air can flow around the compressor to cool the compressor.
- 55. The tool according to claim 34 further comprising:
air vents formed in the compressor cover which allow cooling air to pass into and out of the space enclosed by the compressor cover; a fan driven by the electric motor and enclosed by the compressor cover, the fan causing cooling air to enter some of the air vents and exit others of the air vents, the compressor cover forming a shroud around the fan which substantially prevents air from recirculating through the fan inside of the compressor cover.
- 56. The tool according to claim 54 wherein the compressor is not directly mounted to the compressor cover, and wherein the compressor is mounted to the body via vibration damping means for preventing vibrations generated by the compressor from transferring to the body.
- 57. The tool according to claim 50 further comprising:
a indicator light mounted to the body which is lit when the pressure of the stored compressed air in the compressed air reservoir is greater than a predetermined pressure.
- 58. The tool according to claim 50 further comprising:
a pressure relief valve in communication with the compressed air reservoir, wherein the pressure relief valve releases stored compressed air into the atmosphere when the pressure of the stored compressed air in the compressed air reservoir exceeds a predetermined pressure.
- 59. The tool according to claim 58 further comprising:
a switch operatively associated with the electrical power source wherein the electric motor cannot be powered by the electrical power source when the switch is in an “off” position, and wherein the switch actuates the pressure relief valve when moved to the “off” position causing the pressure relief valve to release stored compressed air into the atmosphere.
- 60. The tool according to claim 58 further comprising:
a battery release button operatively associated with the battery wherein upon actuation of the battery release button the battery is released from the body and the battery release button actuates the pressure relief valve causing the pressure relief valve to release stored compressed air into the atmosphere.
- 61. The tool according to claim 50 further comprising:
vibration damping means interposed between the compressor and the body for preventing vibrations generated by the compressor from transferring to the body.
- 62. The tool according to claim 50 further comprising:
a pressure sensitive switch associated with the electric motor and sensitive to the pressure of the stored compressed air in the compressed air reservoir, wherein the pressure sensitive switch activates the electric motor when the pressure of compressed air in the compressed air reservoir falls below a first predetermined value, and deactivates the electric motor when the pressure of compressed air in the compressed air reservoir rises above a second predetermined value.
- 63. The tool according to claim 50 further comprising:
a pressure sensor for measuring the pressure of the stored compressed air in the compressed air reservoir; an electronic control system which controls the actuation of the electric motor according to a method comprising the following steps:
measure the pressure of the compressed air in the compressed air reservoir; turn on the electric motor if the measured pressure of the compressed air in the compressed air reservoir falls below a first predetermined value, Pmot; turn off the electric motor if the measured pressure of the compressed air in the compressed air reservoir rises above a second predetermined value, Pmax.
- 64. The tool according to claim 63 further comprising:
a selector switch operatively associated with the control system having at least a first position and a second position wherein Pmot and Pmax are selected by the user through the selector switch, in the first position Pmot is set to the value of Pmot,1 and Pmax is set to the value of Pmax,1 and in the second position Pmot is set to the value of Pmot,2 and Pmax is set to the value of Pmax,2, and wherein Pmot,1<Pmot,2 and Pmax,1<Pmax,2.
- 65. The tool according to claim 63 wherein the control system controls the actuation of the compressor according to the following additional steps:
when the compressor is on, calculate the time rate of change of the pressure of the stored compressed air in the compressed air reservoir; turn off the electric motor if the calculated time rate of change is below a predetermined value for a predetermined amount of time.
- 66. A portable pneumatic tool system comprising:
a hand-held pneumatic tool having a body, a chamber formed in the body, a drive piston reciprocating in the chamber under the force of compressed air in the chamber, the reciprocating movement of the drive piston powering a working mechanism for performing a task, and a port in communication with the chamber for bringing compressed air into the chamber; a portable compressor assembly adapted to be borne by a user and having an electric motor operatively connected to and powering a compressor, an electrical power source powering the electric motor, and a port in communication with the compressor for delivering compressed air from the compressor, the portable compressor assembly further having means permitting the portable compressor assembly to be borne by a user; and a compressed air hose connected at one end thereof to the port of the hand-held pneumatic tool and at a second end thereof to the portable compressor assembly.
- 67. The portable pneumatic tool system of claim 66 wherein the electrical power source is a battery detachably mounted to the portable compressor assembly.
- 68. The portable pneumatic tool system of claim 66 wherein the hand-held pneumatic tool is a pneumatic fastening tool and the task is to drive a fastener into a workpiece.
- 69. A method of using a portable pneumatic tool system, the system comprising:
a hand-held pneumatic tool having a drive piston reciprocating in a chamber under the force of compressed air in the chamber, the reciprocating movement of the drive piston powering a working mechanism for performing a task, and a port in communication with the chamber for bringing compressed air into the chamber; and a portable compressor assembly adapted to be borne by a user and having an electric motor operatively connected to and powering a compressor, an electrical power source powering the electric motor, and a port in communication with the compressor for delivering compressed air from the compressor; the method comprising the steps of:
grasping the hand-held pneumatic tool with the user's hand; attaching the portable compressor assembly to some part of the user's body other than the hand or arm so that the portable compressor assembly is borne by the user; connecting a compressed air hose between the port of the compressor assembly and the port of the hand-held pneumatic tool; compressing atmospheric air in the compressor of the compressor assembly; introducing the compressed air compressed in the compressor into the chamber of the hand-held pneumatic tool to drive the drive piston thereby driving the working mechanism and performing the task.
- 70. A method of using a portable pneumatic tool system according to claim 69 wherein the method further comprises the steps of:
storing the compressed air from the compressor in a compressed air reservoir.
- 71. A method of using a portable pneumatic tool system according to claim 69 wherein the electrical power source is a battery detachably mounted to the portable compressor assembly.
- 72. A method of using a portable pneumatic tool system according to claim 69 wherein the hand-held pneumatic tool is a pneumatic fastening tool and the task is to drive a fastener into a workpiece.
- 73. A portable compressor assembly for providing compressed air to a hand-held pneumatic tool, the portable compressor assembly comprising:
a body; a compressor located at least partially inside the body; an electric motor operatively connected to and powering the compressor; at least one battery detachably mounted to the body, the battery providing electrical power to the electric motor; a port in communication with the compressor, the port connectable to a compressed air line for delivering compressed air to the hand-held pneumatic tool; a control system comprising:
pressure sensing means for sensing the pressure of the compressed air available to the port; control means for controlling the electric motor according to a comparison between the pressure sensed by the pressure sensing means and a predetermined pressure setting, the predetermined pressure setting being selectable by the user during use of the portable compressor unit.
- 74. A portable, cordless fastening system for driving fasteners comprising:
the portable compressor unit of claim 73; a pneumatic fastener comprising a body, a chamber formed in the body, a drive piston received in the chamber for reciprocal movement therein, the drive piston reciprocating in the chamber to drive the fastener into a workpiece, a port extending from the body, a trigger valve assembly in communication with the port and the chamber and operable to release compressed air from the port into the chamber to drive the drive piston for driving the fastener; and, a compressed air line connected at one end to the port of the portable compressor unit and at the other end to the port of the pneumatic fastener.
- 75. A portable pneumatic tool system comprising:
a hand-held pneumatic tool having a body, a chamber formed in the body, a drive piston reciprocating in the chamber under the force of compressed air in the chamber, the reciprocating movement of the drive piston powering a working mechanism for performing a task, and a port in communication with the chamber for bringing compressed air into the chamber; a portable compressor assembly having an electric motor operatively connected to and powering a compressor, a detachably mounted battery powering the electric motor, and a port in communication with the compressor for delivering compressed air from the compressor; and a compressed air hose connected at one end thereof to the port of the hand-held pneumatic tool and at a second end thereof to the portable compressor assembly.
- 76. A battery-powered, hand-held pneumatic fastening tool comprising:
a metal fastening tool body; a plastic cover mounted on the fastening tool body; a battery detachably mounted on the plastic cover for providing electrical power to the hand-held pneumatic fastening tool.
- 77. The battery-powered, hand-held pneumatic fastening tool of claim 76 further comprising:
a chamber formed in the fastening tool body; a drive piston disposed in the chamber for reciprocal movement therein, the drive piston reciprocating in the chamber to drive a fastener into a workpiece.
- 78. The battery-powered, hand-held pneumatic fastening tool of claim 77 further comprising:
a compressor and an electric motor each mounted to the fastening tool body, the electric motor powered by the battery and the compressor powered by the electric motor.
- 79. The battery-powered, hand-held pneumatic fastening tool of claim 78 wherein the compressor and the electric motor are each enclosed by the plastic cover.
- 80. The battery-powered, hand-held pneumatic fastening tool of claim 79 further comprising:
a compressed air reservoir formed in the fastening tool body, the compressed air reservoir being in communication with the compressor, the compressed air reservoir storing the compressed air that is compressed in the compressor; and a trigger valve assembly operable to release stored compressed air from the compressed air reservoir into the chamber to drive the drive piston thereby driving the fastener.
Parent Case Info
[0001] This application claims priority to U.S. provisional patent application no. 60/286,998 filed Apr. 30, 2001, and to U.S. provisional patent application no. 60/356,755 filed Feb. 15, 2002.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60286998 |
Apr 2001 |
US |
|
60356755 |
Feb 2002 |
US |