The present invention generally relates to power tools and, more specifically, to battery-powered pipe cutters.
Manually-operated pipe cutters perform cutting operations in various ways, such as with sawing motions or by successive ratcheting of a pipe cutter knife through a pipe. Oftentimes, these methods of pipe cutting result in imperfect cuts or, when cutting a pipe of a material such as PVC, snapping of the pipe. Manually-operated pipe cutters also cause ergonomic difficulties for the user. In particular, a user having a relatively small hand size or low hand or wrist strength may experience difficulty completing a pipe cut. Additionally, the use of manually-operated pipe cutters can be time consuming.
In one embodiment, the invention provides a power tool including a pipe holder, a knife pivotally coupled to the pipe holder, and a drive mechanism coupled to at least one of the pipe holder and the knife. The knife includes a cutting edge having a first portion, a second portion, and an included angle between the first portion and the second portion. The first portion of the cutting edge has a first length, and the second portion of the cutting edge has a second length. The angle is, for example, an obtuse angle having a value between approximately 135° and approximately 165°. The drive mechanism is operable to move the at least one of the pipe holder and the knife relative to the other of the pipe holder and the knife. The power tool also includes a motor coupled to the drive mechanism and a power supply electrically coupled to the motor to selectively power the motor for operating the drive mechanism.
In another embodiment, the invention provides a power tool including a housing assembly supporting a motor and a drive mechanism and a pipe holder coupled to the housing assembly. The pipe holder is configured to support a pipe. The power tool also includes a knife pivotally coupled to the pipe holder and a battery coupled to the housing assembly. The knife includes a cutting edge having a first portion, a second portion, and an included angle between the first portion and the second portion. The first portion of the cutting edge has a first length, and the second portion of the cutting edge has a second length. The angle is, for example, an obtuse angle having a value between approximately 135° and approximately 165°. The battery is electrically coupled to the motor to selectively power the motor to drive the drive mechanism. The drive mechanism is operable to move the knife relative to the pipe holder to cut the pipe supported by the pipe holder.
In yet another embodiment, the invention provides a pipe cutter including a housing assembly, a pipe holder coupled to the housing assembly, and a knife pivotally coupled to the pipe holder. The knife includes a cutting edge having a first portion, a second portion, and an included angle between the first portion and the second portion. The first portion of the cutting edge has a first length, and the second portion of the cutting edge has a second length. The angle is, for example, an obtuse angle having a value between approximately 135° and approximately 165°. The knife and the pipe holder define a slot therebetween for receiving a pipe. The pipe cutter also includes a drive mechanism positioned at least partially within the housing assembly and coupled to at least one of the pipe holder and the knife. The drive mechanism is operable to move the at least one of the pipe holder and the knife relative to the other of the pipe holder and the knife to cut the pipe positioned within the slot. The pipe cutter further includes a motor positioned at least partially within the housing assembly and coupled to the drive mechanism and a battery pack removably coupled to the housing assembly. The battery pack is electrically coupled to the motor to selectively power the motor to operate the drive mechanism for moving the at least one of the pipe holder and the knife relative to the other of the pipe holder and the knife.
In still another embodiment, the invention provides a power tool that includes a pipe holder, a knife, and a drive mechanism. The knife is pivotally coupled to the pipe holder, and includes a cutting edge having a first portion and a second portion. The first portion of the cutting edge and the second portion of the cutting edge are oblique with respect to one another, and the first portion of the cutting edge has a first length and the second portion of the cutting edge has a second length. The drive mechanism is coupled to at least one of the pipe holder and the knife, and is operable to move the at least one of the pipe holder and the knife relative to the other of the pipe holder and the knife. A motor is coupled to the drive mechanism, and a power supply is electrically coupled to the motor to selectively power the motor for operating the drive mechanism.
Other aspects of the invention will become apparent by consideration of the detailed description and accompanying drawings.
Before any embodiments of the invention are explained in detail, it is to be understood that the invention is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the following drawings. The invention is capable of other embodiments and of being practiced or of being carried out in various ways. Also, it is to be understood that the phraseology and terminology used herein are for the purpose of description and should not be regarded as limiting.
The pipe cutter 10 includes a housing assembly 14, a motor and a drive mechanism (
The illustrated pipe cutter 10 also includes a battery pack 38 electrically coupled to the motor such that the pipe cutter 10 is a hand-held, battery-operated power tool. In the illustrated embodiment, the battery pack 38 is a 12-volt power tool battery pack and includes three (3) Lithium-ion battery cells. In other embodiments, the battery pack 38 may include fewer or more battery cells such that the battery pack 38 is a 14.4-volt power tool battery pack, an 18-volt power tool battery pack, or the like. Additionally or alternatively, the battery cells may have chemistries other than Lithium-ion such as, for example, Nickel Cadmium, Nickel Metal-Hydride, or the like. In still other embodiments, the pipe cutter 10 may be a corded power tool.
The battery pack 38, or other power supply, connects to a rearward, or handle, portion 42 of the housing assembly 14 and selectively provides power (e.g., electricity) to the motor to drive the drive mechanism and, thereby, pivot the knife 30. In the illustrated embodiment, the battery pack 38 is partially insertable into the handle portion 42 of the housing assembly 14 to electrically couple to the motor, but may alternatively be coupled to the handle portion 42 by, for example, sliding, snapping, rotating, or the like. An LED fuel gauge (not shown) is included on the pipe cutter 10, the battery pack 38, or both to provide an indication to a user of the energy level of the battery pack 38.
As shown in
In some embodiments, the pipe cutters 10, 10B may include drive mechanisms configured to quickly return the knives 30, 30B of the pipe cutters 10, 10B to an open position. For example, the pipe cutters 10, 10B may include one of the drive mechanisms illustrated and described in International Patent Application Publication No. WO2009/006588, entitled “PIPE CUTTER”, filed Jul. 3, 2008, the entire contents of which is hereby incorporated by reference.
The illustrated pipe cutter 110 includes an internal casing 116 positioned within the forward portion 22 and the handle portion 42 of the housing assembly 14 shown in
In the illustrated embodiment, the handle portion of the housing assembly supports a battery 138, a motor 146, and a drive mechanism 150 (
The battery 138, or power supply, is removably coupled to the handle portion to provide power to the motor 146. In the illustrated embodiment, the battery 138 extends from a rearward end of the handle portion when coupled to the pipe cutter 110. The battery 138 may be coupled to the pipe cutter 110 via any number of suitable means, such as insertion, sliding, snapping, rotating, or other coupling activities. In other embodiments, the battery 138 may be a dedicated battery contained (e.g., partially or entirely housed) within the pipe cutter 110. When coupled to the handle portion, the battery 138 provides power directly to the motor 146 or may power the motor 146 through a control circuit (not shown). The control circuit controls various aspects of the pipe cutter 110, the motor 146, and/or the battery 138 and may also monitor operation of the pipe cutter 110 and its components.
As shown in
In the illustrated embodiment, the casing 116 supports the cutting gear assembly 158, a knife 130, and a pipe holder 126. The cutting gear assembly 158 is driven by the drive assembly 154 and operates to control cutting motion of the knife 130, which performs the cutting action of the pipe cutter 110. The knife 130 includes a blade 166 and is pivotally movable relative to the housing assembly 14 (
In the illustrated embodiment, the pipe holder 126 includes a cover 174 that forms an exterior portion of the pipe cutter 110 and houses various mechanical and/or electrical components of the pipe cutter 110. The cover 174 may be integrally formed with the housing assembly 14, may be removably coupled to the forward portion 22, or may be permanently coupled to the forward portion 22. The cover 174 may be formed from a hard plastic material, a metal material, and/or any other material or combination of materials suitable for housing the various components of the pipe cutter 110. In the illustrated embodiment, the cover 174 is coupled to the forward portion 22 of the housing assembly 14 and the pipe holder 126. The portion of the cover 174 that is coupled to the holder 126 is formed with a curved surface of the same shape as the curved surface 170 of the pipe holder 126 such that the pipe holder 126 and the cover 174 cooperate to support a pipe during the cutting motion.
The cutting gear assembly 158 is coupled to and driven by the drive assembly 154 to pivot the knife 130 of the pipe cutter 110. The cutting gear assembly 158 may include various numbers of gears in various configurations. Referring to
The second gear 182 includes a spline 186 (also shown in
The cutting gear assembly 158 includes a third gear 202, which is a driven gear that causes the cutting motion of the knife 130. In the illustrated embodiment, the third gear 202 intermeshes with and is driven by the toothed portion 194 of the spline 186; however, the non-toothed portion 198 of the spline 186 does not engage the third gear 202.
Referring to
In a further embodiment, the spline 186 is fully toothed (e.g., a full spur gear) and the knife 130 may be returned to the initial position, or the first position, by other means than the spring, such as by reversing the motor 146.
During operation of the pipe cutter 110, a user positions a pipe in the slot 134 such that the pipe rests on the curved surface 170 of pipe holder 126. A user electrically couples the power supply 138 to the motor 146 (e.g., by actuating a switch assembly or circuit) to power the motor 146 and, thereby, drive the drive assembly 154. The drive assembly 154 intermeshes with and drives the first gear 178 of the cutting gear assembly 158, which rotates the second gear 182. As the second gear rotates 182, the spline 186 also rotates. When the toothed portion 194 of the spline 186 engages the third gear 202, the third gear 202 rotates to pivot the knife 130.
As the third gear 202 rotates, the knife 130 pivots toward the pipe holder 126 such that the blade 166 of the knife 130 cuts through a pipe (not shown) positioned in the slot 134. The pivot range of the knife 130 corresponds to the arc length of the toothed portion 194 on the spline 186. In the illustrated embodiment, after the toothed portion 194 of the spline 186 rotates past the third gear 202, the knife 130 will have completed the pipe cut and cutting motion. When the non-toothed portion 198 of the spline 186 is adjacent to the third gear 202, the spline 186 and the third gear 202 do not engage such that the spring 210 (
As shown in
The gear assembly 218 also includes a planetary gear reduction 246. The planetary gear reduction 246 is positioned about the elongated shaft 230 and includes four planetary gears 250, a ring gear 254, and a driven gear 258. The spline 234 engages the planetary gears 250 such that, as the second gear 226 is rotated, the planetary gears 250 move about the shaft 230 within the ring gear 254. The driven, or output, gear 258 is coupled to the planetary gears via short rods 262 (
As shown in
The drive mechanism 218 also includes a size switch 282 coupled to the pipe holder 126. The size switch 282 allows a user to limit the size of the slot 134 (
Similar to the previous embodiments, the pipe cutter 310 includes a knife 330, a pipe holder 326, and a drive mechanism 350. The illustrated drive mechanism 350 includes a screw 354, a coupling block 358, and a pair of links 362, 366. The screw 354 is formed as an elongated threaded rod and is rotatably driven in a forward and/or a reverse direction by a drive assembly (not shown). In some embodiments, the drive assembly may be, for example, a dedicated drive assembly of an existing power tool or the drive assembly 154 discussed with reference to
The screw 354 extends, and is rotatably movable, through a threaded hole in the coupling block 358. The coupling block 358 is pivotally coupled to a rear portion 370, 374 of each of the links 362, 366, which extend outward from and on opposite sides of a driven end of the screw 354. Forward ends 378, 382 of the links 362, 366 are coupled to the knife 330 and the pipe holder 326, respectively, to pivotally move the knife 330 and the pipe holder 326 toward and away from each other.
The knife 330 is configured to perform the cutting action of the pipe cutter 310, and the pipe holder 326 provides support for a pipe, P, to be cut. Together, the knife 330 and the pipe holder 326 define a slot 334 to receive the pipe, P, to be cut. As shown in
During operation of the piper cutter 310, a user positions the pipe, P, in the slot 334 between the pipe holder 330 and the knife 326. The user activates the drive mechanism 350 (e.g., with a power supply and a motor) to rotate the screw 354 and drive the coupling block 358. Rotating the screw 354 in the forward direction drives the coupling block 358 and the rear portions 370, 374 of the links 362, 366 toward the forward end of the screw 354 (i.e., toward the bracket 390). As the links 362, 366 move forward, the forward ends 378, 382 of the links 362, 366 pivot away from each other, pushing the knife 330 and the pipe holder 326, respectively. The knife 330 and the pipe holder 326 thereby pivot about the pivot point 386 toward one another to cut the pipe, P, with the knife 330.
Rotating the screw 354 in the reverse direction drives the coupling block 358 and the rear portions 370, 374 of the links 362, 366 away from the forward end of the screw 354 (i.e., away from the bracket 390). As the links 362, 366 move backward, the forward ends 378, 382 of the links 362, 366 pivot toward each other, pulling the knife 330 and the pipe holder 326, respectively. The knife 330 and the pipe holder 326 thereby pivot about the pivot point 386 away from one another to enlarge the slot 334 defined between the knife 330 and the pipe holder 326.
The pipe cutters and knives described above include blades having a single, straight blade. Although such a blade is able to adequately cut pipes during normal operating conditions, under more extreme operating conditions, such as a low-temperature condition (e.g., below approximately 5° C.), a knife having a straight cutting blade may crack the pipe due to the torque generated by the pipe cutter, the deformation of the pipe caused by the pipe cutter, and the rigidity of the cold pipe. In some embodiments, the pipe cutter's blade is angled to provide a burr-free cut with minimal deformation of the pipe, under both normal operating conditions and low-temperature conditions. For example, instead of the pipe cutter having a knife with a straight blade as shown and described above, a knife with an angled blade is used to increase the force applied to a single point or area of the pipe. The increased force facilities the splitting of the pipe, and enables the pipe cutter to be used during low-temperature conditions without cracking the pipe.
For descriptive purposes, a straight blade is considered to have a blade angle of 180°, that is, the knife has a linear cutting edge or blade as shown in
The angled cutting edge 502 concentrates the force applied by the knife 500 to a single location on a pipe. As such, the knife 500 is able to split or penetrate the pipe more quickly than a knife having, for example, a straight cutting edge. Additionally, a blade angle of approximately 145° substantially reduces the pipe deformation which occurs during a cut. For example, testing has shown that a knife having a blade angle of 145° produces a pipe deformation of 4 mm-5 mm before the pipe splits, and applies a force of approximately 4,500 N to the pipe (based on a torque of approximately 195 N·m generated by the pipe cutter). In contrast, a straight cutting edge produces a pipe deformation of 11 mm-12 mm before the pipe splits. The reduction in pipe deformation and increased concentration of applied force to the pipe before splitting also makes the blade angle of approximately 145° effective during low-temperature conditions to prevent the pipe from cracking, or the cut from burring. Also, although not specifically illustrated in
Other embodiments of the invention include knives having angled blades with angles other than 145°. For example, knives 600, 700, and 800 illustrated in
In some embodiments, the pipe cutters described above may include a controller for executing control processes that further improve the performance of the pipe cutters. For example, the pipe cutters may include a controller and control process such as that illustrated and described in International Patent Application Publication No. WO______, entitled “PIPE CUTTER”, filed Sep. 1, 2009 (Attorney Docket No. 066042-9915-WO03), the entire contents of which is hereby incorporated by reference.
Although the invention has been described in detail with reference to certain preferred embodiments, variations and modifications exist within the scope and spirit of one or more independent aspects of the invention as described. Various features and advantages are set forth in the following claims.
This application is a continuation-in-part of International Application PCT/US2008/069188, filed Jul. 3, 2008, and International Application PCT/US2008/069189, also filed Jul. 3, 2008, both of which claim priority to U.S. Provisional Patent Application No. 60/947,706, filed Jul. 3, 2007, the entire contents of which are all hereby incorporated by reference.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/US09/55371 | 8/28/2009 | WO | 00 | 10/18/2013 |