Treadmill

Information

  • Patent Grant
  • 7544153
  • Patent Number
    7,544,153
  • Date Filed
    Tuesday, August 8, 2006
    17 years ago
  • Date Issued
    Tuesday, June 9, 2009
    15 years ago
Abstract
An articulating treadmill is disclosed that includes a support frame, a motor frame, and a base frame. The motor frame is pivotally attached to the support frame along a first pivot line, and the base frame is pivotally attached to motor frame along a second pivot line spaced from the first pivot line. The base frame pivots about the second pivot line from an unfolded configuration to a folded configuration, and vice versa. The treadmill includes an elevation motor having an extension arm. The elevation motor is attached between the motor frame and a base of the support frame. As the extension arm of the elevation motor extends or retracts, the incline of the treadmill support bed increases or decreases, respectively. The treadmill also includes an adjustable roller system.
Description
BACKGROUND OF THE INVENTION

This invention relates generally to treadmills, and more specifically to articulating treadmills that may be folded upright for storage.


DESCRIPTION OF RELATED ART

Existing articulating treadmills are awkward in use. The weight of the motors must be lifted along with the treadmill frame, complex securing mechanisms are used to lock the treadmill base frame into place, and once the treadmill is secured in the upright position, a user must go around to the other side of the treadmill to move it.


What is needed in the art is an articulating treadmill that allows for the convenient folding of the treadmill frame without requiring a user to lift extra weight, easy securing of the treadmill frame in its storage configuration, and/or ease of movement of the treadmill once it is in its storage configuration without allowing the treadmill to move when it is in its operational configuration.


BRIEF SUMMARY OF THE INVENTION

A treadmill of the present invention is disclosed herein that overcomes the shortcoming discussed above. The treadmill is preferably an articulating treadmill that is easily converted from an unfolded, operational configuration to a folded, generally upright configuration in which it is secured, and vice versa. The treadmill of the present invention is also preferably able to be moved with ease in the folded, generally upright configuration, but also prevents movement of the treadmill in the unfolded, operational configuration.


In a first embodiment, the treadmill of the present invention includes a support frame, a motor frame, and a base frame. The motor frame is pivotally attached to the support frame at a first pivot line, and the base frame is pivotally attached to the motor frame at a second pivot line spaced from the first pivot line. The treadmill includes an elevation motor having an extension arm. The elevation motor is attached between the motor frame and a base of the support frame. As the extension arm of the elevation motor extends or retracts, the incline of the treadmill support bed increases or decreases, respectively.


In another embodiment, the present invention includes a treadmill having an adjustable roller system in which the base frame includes a roller mounted on an axle. The axle is seated in a bushing and includes a threaded recess. The bushing includes a threaded fastener that extends through the bushing into the threaded recess of the axle. The threaded fastener and the axle are adapted to adjust the position of the roller by engaging with the threaded recess of the axle.


In an alternative embodiment, the treadmill of the present invention includes a support frame having a base, a motor frame pivotally attached to the support frame at a first pivot line, and a base frame pivotally attached to the motor frame at a second pivot line spaced from the first pivot line. The base frame pivots about the second pivot line from an unfolded configuration to a folded configuration.


In yet another embodiment, the base frame of the treadmill may be pivoted about the second pivot line to fold the base frame into a generally upright storage position.


In another embodiment, the treadmill of the present invention may also include at least one pivot spring to assist in lifting the base frame from the unfolded, operational configuration to the generally upright, storage position. The pivot spring is preferably located at the second pivot line and is loaded when the base frame is in the unfolded configuration so that the pivot spring urges the base frame in an upward direction.


In yet another embodiment, the treadmill of the present invention may also include a damper to aid a user in unfolding the base frame from the folded, storage position by resisting the downward movement of the base frame. The damper is preferably mounted at a first end to the base frame and at a second end to the motor frame.


In another embodiment, the treadmill of the present invention may also include at least one wheel located at a rear end of the base frame. Preferably the at least one wheel is offset from the bottom surface of the base so that the wheel will only contact the ground if the treadmill is leaned toward the wheel when the base frame is in the folded, generally upright position.


In yet another embodiment, the treadmill of the present invention may also include a means for securing the base frame in the folded, generally upright configuration. Preferably, the treadmill includes a hook attached to the base frame that is engageable with the support frame when the base frame is in the folded, generally upright configuration.





BRIEF DESCRIPTION OF THE DRAWINGS

The preferred embodiments of the invention will be described in detail with reference to the following figures, wherein like numerals refer to like elements, and wherein:



FIG. 1 is a perspective view of one embodiment of a treadmill of the present invention in an unfolded, operational configuration;



FIG. 2 is a side view of the treadmill of FIG. 1;



FIG. 3 is a perspective view of the treadmill of FIG. 1 in a folded, upright configuration;



FIG. 4 is a top cross-sectional view of the treadmill taken along the section line 4-4 shown in FIG. 2;



FIG. 5 is a cross-sectional view of the treadmill taken along the section line 5-5 shown in FIG. 4;



FIG. 6 is a cross-sectional view of the treadmill taken along the section line 6-6 shown in FIG. 4, wherein the front end of the treadmill base frame is lowered to provide a generally horizontal support bed;



FIG. 6A is a cross-sectional view of the treadmill similar to that of FIG. 6, wherein the front end of the treadmill base frame is elevated to provide an inclined support surface;



FIG. 6B is a block diagram of a control system for controlling the incline angle of the support bed of the treadmill;



FIG. 7 is a cross-sectional view of the treadmill taken along the section line 7-7 shown in FIG. 4;



FIG. 7A is cross-sectional view of the treadmill taken along the section line 7A-7A shown in FIG. 7;



FIG. 8 is a broken top view of the treadmill of FIG. 1 with the cover of the motor frame removed;



FIG. 8A is an exploded view of an embodiment of a pivotal connection of a treadmill of the present invention;



FIG. 9 is a broken cross-sectional view of the treadmill taken along the section line 9-9 shown in FIG. 5;



FIG. 10 is a broken cross-sectional view of the treadmill taken along the section line 10-10 shown in FIG. 8;



FIG. 11 is a cross-sectional view of the treadmill taken along the section line 11-11 shown in FIG. 10 when the base frame is in an unfolded, operational configuration; and



FIG. 11A is a cross-sectional view of the treadmill taken along the section line 11-11 shown in FIG. 10 when the base frame is in a folded, generally upright configuration.





DETAILED DESCRIPTION OF THE INVENTION


FIGS. 1 through 3 show an articulating treadmill 10 of the present invention. FIG. 1 shows a perspective view of the treadmill 10 in an unfolded, operational configuration. FIG. 2 shows a side view of the treadmill 10 in the same configuration as shown in FIG. 1. FIG. 3 shows a perspective view of the treadmill 10 in a folded, generally upright configuration such as may be desired for movement or storage. The treadmill 10 includes a support frame 12, a motor frame 14 and a base frame 16. The support frame 12 provides structural support for the treadmill 10 in both the unfolded, operational configuration and the folded, generally upright configuration. The base frame 16 provides a movable surface on which a user may exercise, such as running, walking, jogging and the like. The motor frame 14 houses motors and control circuitry for controlling the elevation and the speed of the exercise surface of the base frame 16.


The support frame includes a base 18 and at least one vertical support 20. The support frame may also include a handle 21 and one or more arms 22 that the user may grasp during exercise for balance or support. A display device 24 may optionally be attached to the support frame 12 for displaying information to a user and for controlling the operation of the treadmill 10, as described in more detail below.


The motor frame 14 is pivotally attached to the support frame 12 at or near a forward end 46 of the motor frame 14 and to the base frame 16 at or near a rear end 48 of the motor frame 14 (see FIG. 4). As the motor frame 14 pivots about the support frame 12, the motor frame 14 raises or lowers the front end 26 of the base frame in order to increase or decrease the incline angle of the base frame 16. For storage, the rear end 28 of the base frame 16 may be raised by pivoting the base frame 16 about the connection between the motor frame 14 and the front end 26 of the base frame 16. A retaining device, such as the hook 30, can be used to secure the base frame 16 in the upright position to the support frame 12.



FIG. 4 shows a top cross-sectional view of the treadmill 10 taken along the section line 4-4 (shown in FIG. 3) through the cover 32 of the motor frame 14, and the vertical supports 20 and the arms 22 of the support frame 12. The base frame 16 includes, among other elements, an endless belt 34, side rail members 36, and first and second elongated rollers 38 and 39. The first elongated roller 38 is rotatably mounted between side rail members 36 at the front end 26 of the base frame 16, and the second elongated roller 39 is rotatably mounted at the rear end 28 of the base frame 16. The endless belt 34 is looped about the first and second elongated rollers 38 and 39 to form a movable exercise surface. As described in more detail below, the first elongated roller 38 and/or the second elongated roller 39 are preferably mounted so that the roller angle is adjustable between the side rail members 36.


A drive motor 40 and an elevation motor 44 are mounted on the motor frame 14. The drive motor 40 drives the first roller 38 via the belt 42. The first roller 38, in turn, drives the endless belt 34 across the exercise surface of the treadmill 10. The elevation motor 44 pivots the motor frame 14 with respect to the support frame 12. As the motor frame 14 pivots about the support frame 12 at or near the first end 46 of the motor frame 14, the rear end 48 of the motor frame is raised or lowered. As the rear end 48 of the motor frame 14 raises or lowers, the motor frame 14 also raises or lowers the front end 26 of the base frame 16.



FIG. 5 is a cross-sectional view of the treadmill 10 taken along the section line 5-5 (shown in FIG. 4), which runs generally along the longitudinal centerline of the base frame 16. FIG. 5 shows the connection of the support frame 12 to the motor frame 14. As shown in FIG. 5, the motor frame 14 is connected on one side to a flange 51 of the support frame 12 at pivot point 52. The motor frame 14 is also connected to a second flange (not shown) on the opposite side of the support frame 12. The two pivot points form a pivot line on which the motor frame 14 pivots with respect to the support frame 12.


The endless belt 34 is looped about the first and second elongated rollers 38 and 39 and travels over a support bed 50 to define the exercise surface of the treadmill 10. The support bed 50 provides a rigid support surface to support the weight of a user exercising on the treadmill 10. The support bed 50 also preferably includes a cushioning layer such as a foam pad to reduce the stress on the user. The adjoining surfaces of the support bed 50 and/or the endless belt 34 are generally smooth so that the belt 34 does not snag on the support bed 50. In addition, one or both of the adjoining surfaces may comprise a low-friction material or may include a coating of such a material, e.g., Teflon™, so that the belt 34 slides easily over the support bed 50.



FIGS. 6 and 6A show cross-sectional views of the connections of the support frame 12, the motor frame 14, and the base frame 16 of the treadmill 10 taken along the section line 6-6 (shown in FIG. 4). As shown in FIGS. 6 and 6A, the elevation motor 44 is mounted between the motor frame 14 and the base 18 of the support frame 12. The elevation motor 44 is preferably a threaded motor, such as an Acme threaded motor, in which a an extension arm 45 can be extended or retracted. The elevation motor body 43 is mounted to the motor frame 14. The extension arm 45 of the elevation motor 44 extends downwardly through an opening 15 in the motor frame 14 and is fixed to the base 18 of the support frame 12.


As shown in FIGS. 6 and 6A, the elevation motor 44 is mounted at angle to the base 18 of the support frame 12 so that as the extension arm 45 is extended or retracted into the body 43 of the elevation motor 44, the motor frame pivots with respect to the support frame 12 about a pivot line formed by pivot point 52 as described above in reference to FIG. 5. In FIG. 6, the extension arm 45 of the elevation motor 44 is in a retracted position, and the motor frame 14 and the support bed 50 of the treadmill 10 are in a generally horizontal orientation. In FIG. 6A, however, the extension arm 45 of the elevation motor 44 is in an extended position, and the rear end 48 of the motor frame 14 is angled upwards away from the support frame 12.


As the arm 45 of the elevation motor 44 extends and pushes the motor frame 14 away from the base 18 of the support frame 12, the front end 46 of the motor frame 14 rotates about the pivot line formed through the pivot point 52, and the rear end 48 of the motor frame 14 raises up away from the base 18 of the support frame 12. As the rear end 48 of the motor frame 14 is elevated, the front end 26 of the base frame 16 is raised. By raising the front end 26 of the base frame 16, the support bed 50 is angled upwards from the rear end 28 of the base frame 16 (see e.g., FIG. 1) to the front end 26 of the base frame 16. Thus, the extension and retraction of the extension arm 45 of the elevation motor 44 control the incline angle of the support bed 50. As the front end 26 of the base frame 16 is raised and lowered, the rear wheels 29, shown in FIG. 2, rotate along a support surface to allow the rear end 28 of the base frame 16 to move longitudinally as the front end 26 of the base frame 16 is raised and lowered.


The range of motion of the extension arm 45 of the elevation motor 44 determines the variance of the incline angle of the support bed 50 from a fully retracted position to a fully extended position of the extension arm 45. Thus, the greater the distance between the fully retracted position of the extension arm 45 to the fully extended position of the extension arm 45, the greater the angle that the support bed 50 may be raised from the generally horizontal position shown in FIG. 6.



FIG. 6A also shows the base 18 of the support frame 12, which provides a stable base for the treadmill 10 in both the unfolded, operational and folded, generally upright configurations. The base 18 extends rearwardly from the vertical support 20 underneath the motor frame 14 and beyond the pivot axis of the motor frame 14 and the base frame 16, which, as described below, extends coincidentally with the axis of rotation of the roller 38, so that the base 18 prevents the treadmill 10 from falling rearwardly when the base frame is in the folded, generally upright configuration shown in FIG. 3. The base 18 also includes a pair of flanges 51 to which the motor frame 14 is mounted. The base 18 includes feet 17 to prevent the treadmill 10 from rolling across the floor during operation or storage of the treadmill 10. As described in more detail below, the wheels 27 of the base 18 do not contact the ground unless the base is tilted backwards onto the wheels.



FIG. 6B shows a block diagram of a control system that may be used to control the elevation motor 44, and, thus, to control the incline angle of the support bed 50. At power up, the extension arm is fully retracted to the home position at step 110 so that the support bed 50 starts off at a generally horizontal position. This allows a user to more easily climb onto the support bed. Then, the control system waits for a change in elevation request at step 120. When a change in elevation request is made, such as a user pushing a key on the display device 24 shown in FIG. 1, the control system determines whether the request is for an increase in elevation or a decrease in elevation at step 130. If the control system detects a decrease in elevation request at step 130, the control system next determines whether the extension arm is in the fully retracted, home position at step 140. If the extension arm 45 is already at the home position, the support bed is at the its lowest elevation, i.e., the generally horizontal position, and the control system returns to step 120 to wait for another elevation change request. If the extension arm 45 is not at the home position, however, the control system incrementally retracts the extension arm 45 of the elevation motor 44 by one increment at step 150 to lower the incline angle of the support bed 50 by one angular increment. The extension arm is preferably retracted or extended in constant incremental lengths for each time an elevation request is received. After the extension arm 45 has been retracted at step 150, the control system returns to step 120 to wait for another elevation change request.


If the elevation change request was determined to be for an increase in elevation at step 130, however, the control system next determines whether the extension arm is fully extended at step 160, i.e., whether the support bed 50 is at its highest elevation. If the extension arm 45 is already at its fully extended position, the control system returns to step 120 to wait for another elevation change request. If the extension arm 45 is not at the home position, however, the control system incrementally extends the extension arm 45 of the elevation motor 44 and by one increment at step 170 to increase the incline angle of the support bed 50 by one angular increment. After the extension arm 45 has been extended at step 170, the control system returns to step 120 to wait for another elevation change request. If desired, the control system may also receive an interrupt when the treadmill 10 is being powered down and fully extend the extension arm to raise the elevation of the support bed 50 to its highest position in order to make lifting the base frame 16 easier.


As shown in FIG. 1, the treadmill 10 has a lower profile in the unfolded, operational configuration than a treadmill that controls the incline of the support bed 50 of the base frame 16 by lowering the back end of the base frame 16. Since the incline angle of the support bed 50 of the treadmill 10 is controlled by raising the front end 26 of the base frame 16, as shown in FIG. 6A, instead of lowering the rear end 28 of the base frame 16, the rear end 28 of the base frame 16 does not have to be raised off the ground in the generally horizontal position of the support bed of the treadmill 10. Thus, the entire base frame 16 can be mounted closer to the ground when the support bed 50 is in the generally horizontal position. This, for example, allows for a user to more easily step on and off the treadmill without stumbling.



FIG. 7 shows a cross-sectional view of the treadmill 10 taken along the section line 7-7 (shown in FIG. 4). In FIG. 7, the drive mechanism for driving the endless belt 34 is shown. The drive motor 40 is mounted on the motor frame 14 and includes drive shaft 60 and pulley 62. The pulley 62 drives the belt 42, which, in turn, drives the pulley 64 mounted on the first roller 38 about which the endless belt 34 is trained.



FIG. 7A shows a cross-sectional view of the treadmill 10 taken along the section line 7-7 (shown in FIG. 7). As shown in FIG. 7A, the drive belt resides in a groove of the pulley 64. The sensor pair 66 and 68 may collect information such as the rotational velocity of the pulley 64. The display device 24 may display the information collected, such as speed, distance, acceleration, and the like, or may even calculate other information from the information collected for display, such as elevation change traveled, estimated calories burned, and the like. The sensor pair 66 and 68 may, for example, be an optical sensor pair, an infrared sensor pair, or any other sensor technology known in the art.



FIGS. 8 and 8A show the pivotal connection of the motor frame 14 and the base frame 16 of the treadmill 10. FIG. 8 shows a broken, top view of the connection of the motor frame 14 and the base frame 16 with the cover 32 of the motor frame 14 removed. FIG. 8A shows an exploded view of the components forming the pivotal connection on the non-drive side of the elongated roller 38 between the motor frame 14 and the base frame 16. The drive side connection is similar to that shown in FIG. 8A, but as can be seen in FIG. 9, a pulley 64 is mounted about the roller 38, the opening of the u-shaped inner bushing 78 is reversed, i.e., points forward towards the motor frame 14, and the inner bushing 78 does not include a threaded fastener 80.


The motor frame pivot brackets 70 are attached to the motor frame 14 and extend rearwardly from the motor frame 14 towards the ends of the axle 35. The base frame pivot brackets 72 are attached to the base frame 16 and extend forwardly towards the ends of the axle 35. The brackets 70 and 72 may be welded, bolted, riveted or attached to the respective frames by any other means known in the art. At the ends of the axle 35, the motor frame pivot brackets are generally parallel to each other and each of the brackets includes an aperture.


As can be seen more clearly in FIG. 8A, the ends of the axle 35 extend into the u-shaped opening of the inner bushing 78. On the non-drive side of the axle 35, the axle 35 includes a threaded recess 41 into which a threaded fastener 80 is engaged. The threaded fastener 80 holds the axle in the inner bushing 78, and, as described in more detail below, is used to adjust the angle of the roller to help align the roller so that the endless belt 34 is maintained in the desired orientation. On the non-drive side of the axle 35 (shown in FIG. 9), the u-shaped opening of the inner bushing 78 opens in the opposite direction, and the end of the axle extends into the u-shaped opening of the inner bushing 78. Instead of a fastener holding the drive side end of the axle in the inner bushing 78, the tension of the endless belt 34 holds the roller in the inner bushing 78.


The pivotal connections each include an outer bushing 74, a motor frame pivot bracket 70, a base frame pivot bracket 72, and an inner bushing 78. Opposite ends 84 and 86 of the inner bushing 78 extend through the apertures 71 and 73 of the base frame pivot bracket 72 and the motor frame pivot bracket 70, respectively. The flange 79 of the inner bushing 78 separates the brackets 70 and 72 and allows the brackets 70 and 72 to pivot with respect to each other about the inner bushing 78. The outer bushing 74 locks the motor frame pivot bracket 70 onto the inner bushing 78.


The pivotal connection also includes a spring pivot 56 to assist in lifting the base frame 16. The spring pivot 56 includes an inner casing 90, a spring coil 92, and an outer casing 94. The inner casing 90 includes a recess 91 and a pair of spaced parallel ribs 88. The recess 91 fits around the outer edge of the outer bushing 74. The parallel ribs 88 engage the outside of the motor frame pivot bracket 70 to anchor the inner casing 90 to the bracket 70 so that the inner casing 90 is not movable with respect to the bracket 70. The end 95 of the coil spring 92 anchors in the aperture 89 of the motor frame pivot bracket 70. The outer casing 94 includes a central post 96, which engages with the inner bushing 78, and one or more distal posts 98, which engage with the apertures 75 of the base frame pivot bracket 72, such as via two bolts, to secure the spring pivot 56 to the base frame 16.


As shown in FIGS. 11 and 11A, the tail 93 of the spring coil 92 engages the outer casing 94 of the spring pivot 56, and as the outer casing 94 rotates with respect to the inner casing 90, the spring coil 92 is loaded and unloaded, respectively. In FIG. 11, for example, the spring pivot 56 is oriented in a generally horizontal position that corresponds to the base frame being in the unfolded, operational configuration, such as shown in FIG. 1. In FIG. 11A, however, the spring pivot 56 is oriented in a generally vertical position that corresponds to the base frame being in the folded, generally upright configuration, such as shown in FIG. 3. The spring pivots 56 are preferably loaded when the base frame is in the unfolded, operational configuration, or are at least loaded for a portion of the distance from the unfolded, operational configuration to the generally upright, storage configuration. When the base frame 16 is lifted, the spring pivots thus provide a force to help urge the base frame 16 upward.



FIGS. 9 and 10 show broken, cross-sectional views of the treadmill 10 taken along the section lines 9-9 (shown in FIG. 5) and 10-10 (shown in FIG. 8) and are from a similar perspective as FIG. 8. FIGS. 9 and 10 show the pivotal connection of the motor frame 14 and the base frame 16 in further detail. The front roller 38 is rotatably mounted about axle 35. The roller 38 may, for example, be rotatably mounted about the axle 35 on a bearing 33 or other mounting known in the art. The axle 35 is seated in the u-shaped inner bushings 78. The opening of the drive side u-shaped inner bushing 78 faces forwardly and the axle is held in the drive side inner bushing 78 by the tension of the endless belt 34. On the opposite side, the bushing preferably includes a threaded fastener 80 that is attached through the inner bushing front wall and extends into a threaded aperture formed in the axle 35, holding it in place in the inner bushing 78. The threaded fastener 80 may further be used to adjust the angle of the roller to help align the roller 38 so that the endless belt 34 is in the desired orientation. By tightening or loosening the threaded fastener 80, the non-drive side of the axle 35 and the roller 38 may be adjusted forwardly or rearwardly, respectively, within the inner bushing 78. Further, the use of open-ended bushings allow for the roller 38 to be removed and/or replaced without having to disassemble the entire base frame 16 or the motor frame 14 assemblies of the pivot connection.


The second elongated roller 39 (shown in FIGS. 4 and 5) can also be adjustable, such as in the same manner as the first elongated roller 38 described above or in any other manner. The second elongated roller 39, for example, may be mounted on an axle such as the first elongated roller 38 is mounted on axle 35. The ends of the axle, on which the second elongated roller 39 is mounted, can extend into a pair of elongated openings, such as the u-shaped openings of the inner bushings 78 shown in FIGS. 8A, 9, and 10. Preferably, however, these openings are reversed in orientation from the u-shaped openings of the inner bushings 78 described above. On one end, the axle can include a threaded recess into which a threaded fastener, such as threaded fastener 80 described above, can be engaged. The threaded fastener extends through a wall of the elongated opening, holds the axle in the elongated opening, and is used to adjust the angle of the roller as described above with reference to the first elongated roller 38. On the opposite end of the axle, the elongated opening is preferably a u-shaped opening, such as the u-shaped opening of the inner bushing 78 described above. This u-shaped opening, however, preferably opens towards the rear end 28 of the base frame 16. Thus, the tension of the endless belt 34 will hold the roller in the u-shaped opening. Alternatively, the second elongated roller 39 can be fixed, or can be adjustable in any other manner.


Referring now to FIG. 1, the treadmill 10 may be folded into a generally upright configuration to move or store the treadmill 10. A user may lift the rear end 28 of the base frame 16 upwards toward the handle 21 of the support frame 12. As described above, the base frame 16 is pivotally connected to the motor frame 14. As the rear end 28 of the base frame 16 is lifted, the base frame 16 pivots about the motor frame 14 at the attachment point between the motor frame pivot bracket 70 and the base frame pivot bracket 72. The axis of rotation 13 of between the motor frame 14 and the base frame 16 is coincidental with the axis of rotation of the roller 38 as described above with reference to FIG. 9.


Since the base frame 16 pivots about the axis of rotation of the roller 38, the base frame may be lifted into the storage position shown in FIG. 3 regardless of whether the support bed 50 is in an inclined position or a generally horizontal position. It may also be desirable to automatically elevate the front end 26 of the base frame when the treadmill 10 is powered down in order to make the base frame 16 easier to lift. Then, when the treadmill is powered on, the elevation motor may automatically retract the extension arm 45, which will automatically lower the support bed 50 of the treadmill 10 to a generally horizontal starting position.


When the base frame 16 has been lifted into the generally upright configuration shown in FIG. 3, the hook 30 may be used to engage the handle 21 of the support frame 12 to secure the base frame in the upright configuration. Alternatively, however, many other engagement techniques known in the art may be used instead of, or in addition to, the hook 30. Other engagement mechanisms such as straps, cords, cables, sliding latches, and the like may be used to secure the base frame in the generally upright configuration.


When the base frame 16 is in the generally upright configuration, the treadmill 10 may be moved using the rear wheels or rollers 27 of the support frame 12. As shown in FIGS. 3, 5, 5, and 6A, the rear wheels are located on the rear end of the base 18 of the support frame 12 and are positioned above the bottom of the base 18. The treadmill 10 may be moved by leaning the treadmill 10 back towards a user after the base frame 16 has been secured in the generally upright configuration and rolling the treadmill 10 on the wheels 27. The rear wheels 27 of the support frame 12 allow the user to raise and secure the base frame 16, lean the treadmill 10 back onto the wheels 27, and to more easily move the treadmill 10 without having to walk around to the opposite side of the treadmill after securing the base frame 16. Further, because the wheels 27 do not project below the base 18 of the support frame 12, the treadmill will not roll on these wheels unless the base frame is in the upright position and the treadmill 10 is tilted back toward the wheels.


The treadmill 10 also preferably includes a damper 100 (shown in FIG. 1) that is attached to the base of the support frame 12 and the base frame 16. The damper acts to resist the weight of the base frame 16 when the base frame is being lowered from the generally upright configuration. Thus, the damper 100 prevents the base frame 16 from slamming into the ground when the base frame 16 is being lowered.


The treadmill of the present invention includes a support frame, a motor frame, and a base frame. The support frame includes a base and at least one vertical support. The motor frame is pivotally attached to the support frame about a first pivot line, and is pivotally attached to the base frame about a second pivot line spaced from the first pivot line. The treadmill preferably includes an elevation motor that pivots the motor frame about the first pivot line. As the motor frame pivots with respect to the support frame, the motor frame also raises or lowers the front end of the base frame to change the incline angle of a support bed of the treadmill. Alternatively, the treadmill may include an adjustable roller system in which the roller is circumferentially mounted on an axle. The axle includes a threaded recess formed therein and is seated in a bushing. The bushing includes a threaded fastener that extends through a wall in the bushing into the threaded recess of the axle. The threaded fastener and the axle are adapted to adjust the position of the roller by engaging with the recess of the axle. In another embodiment, the base frame pivots about the second pivot line from an unfolded configuration to a folded configuration.


While the invention has been described in conjunction with the specific embodiments outlined above, it is evident that many alternatives, modifications, and variations will be apparent to those skilled in the art. Accordingly, the preferred embodiments of the invention are intended to be illustrative and not limiting. Various changes may be made without departing from the spirit and scope of the invention as defined in the following claims.

Claims
  • 1. A treadmill comprising: a support frame having a base;a motor frame pivotally attached to the support frame along a first pivot line;a base frame having a support bed, the base frame being pivotally attached to the motor frame along a second pivot line spaced from the first pivot line; andan elevation motor having an extension arm, the elevation motor being attached to the motor frame and to the base of the support frame, wherein as the extension arm extends, an incline of the support bed of the base frame changes and the second pivot line translates relative to the base of the support frame as the incline of the support bed of the base frame changes.
  • 2. The treadmill of claim 1, wherein the base frame pivots from an unfolded configuration to a folded configuration about the second pivot line.
  • 3. The treadmill of claim 2, further comprising a pivot spring located along the second pivot line, and wherein the pivot spring is loaded when the base frame is in the unfolded configuration.
  • 4. The treadmill of claim 2, further comprising a damper attached at a first end to the base frame and at a second end to the base of the support frame, wherein the damper resists a downward force when the base frame is being lowered from the folded configuration.
  • 5. The treadmill of claim 2, wherein the base of the support frame has a front end and a rear end, the base further comprising at least one wheel located at the rear end of the base support.
  • 6. The treadmill of claim 5, wherein the at least one wheel is raised above a bottom surface of the base of the support frame.
  • 7. The treadmill of claim 2, wherein the base frame further comprises a means for securing the base frame.
  • 8. The treadmill of claim 7, wherein the means for securing the base frame comprises a hook to selectively engage the support frame.
  • 9. The treadmill of claim 1, wherein the motor frame has a front end and a rear end, the first pivot line being at the front end of the motor frame, and the second pivot line being at the rear end of the motor frame.
  • 10. A treadmill comprising: a support frame having a base;a motor frame pivotally attached to the support frame along a first pivot line; anda base frame pivotally attached to the motor frame along a second pivot line spaced from the first pivot line, wherein the base frame pivots relative to the motor frame from an unfolded configuration to a folded configuration about the second pivot line and the second pivot line translates relative to the base of the support frame as an incline of the support bed of the base frame changes.
  • 11. The treadmill of claim 10, further comprising a pivot spring located along the second pivot line, and wherein the pivot spring is loaded when the base frame is in the unfolded configuration.
  • 12. The treadmill of claim 10, further comprising a damper attached at a first end to the base frame and at a second end to the base of the support frame, wherein the damper resists a downward force when the base frame is being lowered from the folded configuration.
  • 13. The treadmill of claim 10, wherein the base of the support frame has a front end and a rear end, the base further comprising at least one wheel located at the rear end of the base support.
  • 14. The treadmill of claim 13, wherein the at least one wheel is raised above a bottom surface of the base of the support frame.
  • 15. The treadmill of claim 10, wherein the base frame further comprises a means for securing the base frame.
  • 16. The treadmill of claim 15, wherein the means for securing the base frame comprises a hook to engage the support frame.
  • 17. The treadmill of claim 10, wherein the motor frame has a front end and a rear end, the first pivot line being at the front end of the motor frame, and the second pivot line being at the rear end of the motor frame.
  • 18. A treadmill comprising: a support frame having a base;a base frame including a support bed;a motor frame including a first portion pivotally attached adjacent to an end of the base frame and a second portion pivotally attached to the support frame; andan elevation motor including an extension arm attached to the motor frame and to the base of the support frame, wherein as the extension arm moves, an incline of the support bed of the base frame changes and a pivot line defined by the attachment of the first portion of the motor frame to the base frame translates relative to the base of the support frame as the incline of the support bed of the base frame changes.
  • 19. The treadmill of claim 18, wherein the incline of the support bed changes by the base frame pivoting relative to the motor frame.
  • 20. A treadmill comprising: a support frame having a base;a motor frame pivotally attached to the support frame along a first pivot line;a base frame having a support bed, the base frame being pivotally attached to the motor frame along a second pivot line spaced from the first pivot line; andan elevation motor having an extension arm, the elevation motor being attached to the motor frame and to the base of the support frame, wherein as the extension arm extends the motor frame pivots around the first pivot line and the base frame pivots around the second pivot line and the second pivot line translates relative to the base of the support frame as the incline of the support bed of the base frame changes.
CROSS-REFERENCE TO RELATED APPLICATION

This application is a continuation of co-pending U.S. patent application Ser. No. 10/039,070 titled “Treadmill” and filed on Dec. 31, 2001, which is hereby incorporated herein in its entirety by reference.

US Referenced Citations (532)
Number Name Date Kind
219439 Blend Sep 1879 A
321388 Ruebsam Jun 1885 A
625905 Souder May 1899 A
663486 Boren Dec 1900 A
683124 Lange Sep 1901 A
782010 Dodge Feb 1905 A
783769 Wright Feb 1905 A
881521 Wilson Mar 1908 A
931394 Day Aug 1909 A
956681 Clarke May 1910 A
1015071 Reach Jan 1912 A
1020777 Peterson Mar 1912 A
1166304 Albert Dec 1915 A
1239077 Begg Sep 1917 A
1587749 Bierly Jun 1926 A
1715870 Spain Jun 1929 A
1824406 Petersime Sep 1931 A
1850530 Brown Mar 1932 A
1870244 Elston Aug 1932 A
1902694 Edwards Mar 1933 A
1928089 Blickman Sep 1933 A
1969901 Pilates Aug 1934 A
1973945 Chavin et al. Sep 1934 A
2209034 Paul Jul 1940 A
2239076 Biedess Apr 1941 A
2239687 Parker Apr 1941 A
2374730 Catlin May 1945 A
2380221 Cundall Jul 1945 A
2399915 Drake May 1946 A
2425860 Brady Aug 1947 A
2434760 Eggleston Jan 1948 A
2603486 Hughes Jul 1952 A
2855200 Blickman Oct 1958 A
2866538 Goldberg Dec 1958 A
3022433 Ferranti Feb 1962 A
3127171 Noland et al. Mar 1964 A
3295847 Matt, Sr. Jan 1967 A
3312466 Melchiona Apr 1967 A
D207541 Hesen May 1967 S
3316898 Brown May 1967 A
3319767 Breternitz et al. May 1967 A
3348678 Flowers Oct 1967 A
3378259 Kupchinski Apr 1968 A
D211801 Quinton Jul 1968 S
3427019 Brown Feb 1969 A
3444830 Doetsch May 1969 A
3473843 Hart Oct 1969 A
3497215 Harrison et al. Feb 1970 A
3501040 Martelee Mar 1970 A
3501140 Eichom Mar 1970 A
3511500 Dunn May 1970 A
3525522 Piller Aug 1970 A
3529474 Olson et al. Sep 1970 A
3559986 Ehrmantraut Feb 1971 A
3586322 Kverneland Jun 1971 A
3589715 Mark Jun 1971 A
3590980 Bengtsson Jul 1971 A
3592466 Parsons Jul 1971 A
3602502 Hampl Aug 1971 A
3614097 Blickman Oct 1971 A
3627313 Schonfeld Dec 1971 A
3628654 Haracz Dec 1971 A
3638941 Kulkens Feb 1972 A
3642279 Cutter Feb 1972 A
3643943 Erwin, Jr. et al. Feb 1972 A
3647209 La Lanne Mar 1972 A
3659845 Quinton May 1972 A
3689066 Hagen Sep 1972 A
3703284 Hesen Nov 1972 A
3709487 Walker Jan 1973 A
3711812 Cherry Jan 1973 A
3731917 Townsend May 1973 A
3741538 Lewis et al. Jun 1973 A
3741540 Shimizu Jun 1973 A
3747924 Champoux Jul 1973 A
3759511 Zinkin et al. Sep 1973 A
3770267 McCarthy Nov 1973 A
3814420 Encke Jun 1974 A
3826491 Elder Jul 1974 A
3870297 Elder Mar 1975 A
3874657 Niebojewski Apr 1975 A
3892404 Martucci Jul 1975 A
3896925 Mitsui et al. Jul 1975 A
3918710 Niebojewski Nov 1975 A
3948351 Baumann Apr 1976 A
3956976 Vogel et al. May 1976 A
3962595 Eddens Jun 1976 A
3963101 Stadelmann et al. Jun 1976 A
3966182 Stadelmann et al. Jun 1976 A
3970302 McFee Jul 1976 A
4023466 Strassheimer May 1977 A
4026545 Schonenberger May 1977 A
4066257 Moller Jan 1978 A
4072309 Wilson Feb 1978 A
4085344 Eddens Apr 1978 A
4093196 Bauer Jun 1978 A
4131266 Carter Dec 1978 A
4140312 Buchmann Feb 1979 A
4151988 Nabinger May 1979 A
4157179 Ecklor, Jr. Jun 1979 A
4185622 Swenson Jan 1980 A
4194442 Martelli Mar 1980 A
4204673 Speer, Sr. May 1980 A
4240627 Brentham Dec 1980 A
4248476 Phelps Feb 1981 A
4270749 Hebern Jun 1981 A
4300761 Howard Nov 1981 A
4316609 Silberman Feb 1982 A
4319747 Rogers Mar 1982 A
D263978 Brentham Apr 1982 S
4334676 Schonenberger Jun 1982 A
4344616 Ogden Aug 1982 A
4350336 Hanford Sep 1982 A
4350913 Eddens Sep 1982 A
4358105 Sweeney, Jr. Nov 1982 A
4363480 Fisher et al. Dec 1982 A
4364556 Otte Dec 1982 A
4369966 Silberman et al. Jan 1983 A
4370766 Teague, Jr. Feb 1983 A
4374587 Ogden Feb 1983 A
4383714 Ishida May 1983 A
4411342 Katsumori et al. Oct 1983 A
4422635 Herod et al. Dec 1983 A
4423864 Wiik Jan 1984 A
4072309 Wilson Mar 1984 A
4445683 Ogden May 1984 A
4452448 Ausherman Jun 1984 A
4462252 Smidt et al. Jul 1984 A
4470597 McFee Sep 1984 A
4477071 Brown et al. Oct 1984 A
4480832 Bulmash et al. Nov 1984 A
4492375 Connelly Jan 1985 A
4502679 De Lorenzo Mar 1985 A
4509510 Hook Apr 1985 A
4509742 Cones Apr 1985 A
4521013 Dofel Jun 1985 A
D280224 Wilson Aug 1985 S
4563001 Terauds Jan 1986 A
4572500 Weiss Feb 1986 A
4576352 Ogden Mar 1986 A
D283239 Smith et al. Apr 1986 S
4582320 Shaw Apr 1986 A
4588065 Maiden et al. May 1986 A
4591147 Smith et al. May 1986 A
D284597 Smith et al. Jul 1986 S
4600187 Schenker Jul 1986 A
4600196 Jones Jul 1986 A
4602779 Ogden Jul 1986 A
4614337 Schonenberger Sep 1986 A
4616822 Trulaske et al. Oct 1986 A
4618144 Gibson Oct 1986 A
4621623 Wang Nov 1986 A
4625962 Street Dec 1986 A
4627619 Rockwell et al. Dec 1986 A
4629062 Silverthorn et al. Dec 1986 A
4632385 Geraci Dec 1986 A
4635927 Shu Jan 1987 A
4635928 Ogden et al. Jan 1987 A
4643418 Bart Feb 1987 A
4645197 McFee Feb 1987 A
4645200 Hix Feb 1987 A
4659077 Stropkay Apr 1987 A
4660247 Frohbieter et al. Apr 1987 A
D289668 Gremonprez et al. May 1987 S
4664371 Viander May 1987 A
4664646 Rorabaugh May 1987 A
4679787 Guilbault Jul 1987 A
4681316 DeCloux Jul 1987 A
4685666 DeCloux Aug 1987 A
4687195 Potts Aug 1987 A
4690398 Smith Sep 1987 A
4708337 Shyu Nov 1987 A
4708338 Potts Nov 1987 A
4720093 Del Mar Jan 1988 A
4726583 Olsen et al. Feb 1988 A
4729558 Kuo Mar 1988 A
4733858 Lan Mar 1988 A
4749181 Pittaway et al. Jun 1988 A
4750735 Furgerson et al. Jun 1988 A
4757987 Allemand Jul 1988 A
4759540 Yu et al. Jul 1988 A
4766996 Gibson Aug 1988 A
4786050 Geschwender Nov 1988 A
4792134 Chen Dec 1988 A
4796881 Watterson Jan 1989 A
4799676 Sheppard et al. Jan 1989 A
4805901 Kulick Feb 1989 A
4813667 Watterson Mar 1989 A
4819583 Guerra Apr 1989 A
4826153 Schalip May 1989 A
4830362 Bull May 1989 A
4836543 Holzer Jun 1989 A
4838543 Armstrong et al. Jun 1989 A
4842266 Sweeney, Sr. et al. Jun 1989 A
4844449 Truslaske Jul 1989 A
4848737 Ehrenfield Jul 1989 A
4852874 Sleichter, III et al. Aug 1989 A
4854577 Sims Aug 1989 A
D303414 Armstrong et al. Sep 1989 S
4869494 Lambert, Sr. Sep 1989 A
D304849 Watterson Nov 1989 S
4881934 Harston et al. Nov 1989 A
4886266 Trulaske Dec 1989 A
D306468 Watterson Mar 1990 S
D306891 Watterson Mar 1990 S
4905330 Jacobs Mar 1990 A
4913396 Dalebout et al. Apr 1990 A
4913423 Farran et al. Apr 1990 A
4918766 Leonaggeo, Jr. Apr 1990 A
4921247 Sterling May 1990 A
4927138 Ferrari May 1990 A
4938473 Lee et al. Jul 1990 A
4944518 Flynn Jul 1990 A
4949954 Hix Aug 1990 A
4949993 Stark et al. Aug 1990 A
4959040 Gardner et al. Sep 1990 A
4974831 Dunham Dec 1990 A
D313826 Birrell et al. Jan 1991 S
4984810 Stearns et al. Jan 1991 A
4989858 Young et al. Feb 1991 A
D315765 Measom et al. Mar 1991 S
4998725 Watterson et al. Mar 1991 A
5000440 Lynch Mar 1991 A
5002271 Gonzales Mar 1991 A
D316124 Dalebout et al. Apr 1991 S
5007630 Real et al. Apr 1991 A
5019029 Calvert May 1991 A
5026046 DeCloux Jun 1991 A
D318085 Jacobson et al. Jul 1991 S
D318699 Jacobson et al. Jul 1991 S
5029801 Dalebout et al. Jul 1991 A
5039088 Shifferaw Aug 1991 A
5040786 Jou Aug 1991 A
5058881 Measom Oct 1991 A
5058882 Dalebout et al. Oct 1991 A
5061231 Dietrich et al. Oct 1991 A
D321388 Dalebout Nov 1991 S
D321734 Dunham et al. Nov 1991 S
5062626 Dalebout et al. Nov 1991 A
5062627 Bingham Nov 1991 A
5067937 Aschaber et al. Nov 1991 A
5071115 Welch Dec 1991 A
5072928 Stearns et al. Dec 1991 A
D323009 Dalebout et al. Jan 1992 S
D323198 Dalebout et al. Jan 1992 S
D323199 Dalebout et al. Jan 1992 S
5078389 Chen Jan 1992 A
5078669 Dietrich et al. Jan 1992 A
5081991 Chance Jan 1992 A
5085426 Wanzer et al. Feb 1992 A
5088729 Dalebout Feb 1992 A
5090690 Huang Feb 1992 A
5100127 Melnick et al. Mar 1992 A
5102380 Jacobson et al. Apr 1992 A
5102385 Calvert Apr 1992 A
5105931 Lashyro Apr 1992 A
D326491 Dalebout May 1992 S
5109778 Berkowitz et al. May 1992 A
5110117 Fisher et al. May 1992 A
5114388 Trulaske May 1992 A
5114389 Brentham May 1992 A
5129872 Dalton et al. Jul 1992 A
5129873 Henderson et al. Jul 1992 A
5131895 Rogers, Jr. Jul 1992 A
D328770 Henderson et al. Aug 1992 S
5135216 Bingham et al. Aug 1992 A
5135447 Robards, Jr. et al. Aug 1992 A
5139469 Hennessey et al. Aug 1992 A
5139470 Wang Aug 1992 A
5141479 Vanjani et al. Aug 1992 A
5145481 Friedebach Sep 1992 A
5149084 Dalebout et al. Sep 1992 A
5160302 Li Nov 1992 A
5163885 Wanzer et al. Nov 1992 A
5171196 Lynch Dec 1992 A
5180353 Snyderman Jan 1993 A
5183448 Wang Feb 1993 A
5183449 DeCloux Feb 1993 A
5184988 Dunham Feb 1993 A
5188577 Young et al. Feb 1993 A
5190505 Dalebout et al. Mar 1993 A
5192255 Dalebout et al. Mar 1993 A
5199932 Liao Apr 1993 A
5203800 Meredith Apr 1993 A
5203826 Dalebout Apr 1993 A
5205800 Grant Apr 1993 A
4913396 Dalebout et al. May 1993 A
5207621 Koch et al. May 1993 A
5207622 Wilkinson et al. May 1993 A
5207628 Graham May 1993 A
5209714 Sainte et al. May 1993 A
5215515 Bershadsky Jun 1993 A
5226866 Engel et al. Jul 1993 A
5232421 Chen et al. Aug 1993 A
5236407 Wang Aug 1993 A
5242343 Miller Sep 1993 A
5246410 Fun Sep 1993 A
5247853 Dalebout Sep 1993 A
5251742 Campbell Oct 1993 A
5254067 Habing et al. Oct 1993 A
5256117 Potts et al. Oct 1993 A
5263910 Yang Nov 1993 A
5267923 Piaget et al. Dec 1993 A
5277677 Terauds Jan 1994 A
5279528 Dalebout et al. Jan 1994 A
D344557 Ashby Feb 1994 S
5282776 Dalebout Feb 1994 A
5282992 Reichgott Feb 1994 A
5290204 Lee Mar 1994 A
5290205 Densmore et al. Mar 1994 A
5290211 Stearns Mar 1994 A
5299992 Wilkinson Apr 1994 A
5299993 Habing Apr 1994 A
5302162 Pasero Apr 1994 A
5304105 Hsieh Apr 1994 A
5318490 Henderson et al. Jun 1994 A
5320588 Wanzer et al. Jun 1994 A
5322491 Wanzer et al. Jun 1994 A
5323784 Shu Jun 1994 A
D348493 Ashby Jul 1994 S
D348494 Ashby Jul 1994 S
5330397 Prince et al. Jul 1994 A
5330401 Walstead Jul 1994 A
5335146 Stucke Aug 1994 A
5336142 Dalebout et al. Aug 1994 A
5336144 Rodden Aug 1994 A
5336146 Piaget et al. Aug 1994 A
5338271 Wang Aug 1994 A
5344371 Wang Sep 1994 A
5346452 Ku Sep 1994 A
D351202 Bingham Oct 1994 S
D351633 Bingham Oct 1994 S
5352167 Ulicny Oct 1994 A
5352169 Eschenbach Oct 1994 A
5368532 Farnet Nov 1994 A
5372559 Dalebout et al. Dec 1994 A
5372560 Chang Dec 1994 A
5374227 Webb Dec 1994 A
5382207 Skowronski et al. Jan 1995 A
5383829 Miller Jan 1995 A
5401226 Stearns Mar 1995 A
RE34959 Potts May 1995 E
5411454 Chang May 1995 A
5429563 Engel et al. Jul 1995 A
5431612 Holden Jul 1995 A
D360915 Bostic et al. Aug 1995 S
5441467 Stevens Aug 1995 A
5441468 Deckers et al. Aug 1995 A
5445583 Habing Aug 1995 A
5454772 Rodden Oct 1995 A
5476430 Lee et al. Dec 1995 A
5480365 Lundin et al. Jan 1996 A
5484362 Skowronski et al. Jan 1996 A
5489250 Densmore et al. Feb 1996 A
5492517 Bostic et al. Feb 1996 A
5499956 Habing et al. Mar 1996 A
5509872 Chen Apr 1996 A
5512025 Dalebout et al. Apr 1996 A
5514068 Calvert et al. May 1996 A
5518470 Piaget et al. May 1996 A
5518471 Hettinger et al. May 1996 A
5518473 Miller May 1996 A
5527245 Dalebout et al. Jun 1996 A
5529553 Finlayson Jun 1996 A
5536231 Nilsson Jul 1996 A
5538489 Magid Jul 1996 A
5540637 Rodgers, Jr. Jul 1996 A
5542892 Buhler Aug 1996 A
5545112 Densmore et al. Aug 1996 A
D373805 Rawls et al. Sep 1996 S
5558604 Hopkins Sep 1996 A
5562574 Miller Oct 1996 A
5577985 Miller Nov 1996 A
D376828 Conley et al. Dec 1996 S
5591106 Dalebout et al. Jan 1997 A
5595554 Maresh Jan 1997 A
5595556 Dalebout et al. Jan 1997 A
5599259 Skowronski et al. Feb 1997 A
5607375 Dalebout et al. Mar 1997 A
5611758 Rodgers, Jr. Mar 1997 A
5622527 Watterson et al. Apr 1997 A
5626538 Dalebout et al. May 1997 A
5626539 Piaget et al. May 1997 A
5643153 Nylen et al. Jul 1997 A
5645512 Yu Jul 1997 A
5649882 Parikh et al. Jul 1997 A
5650709 Rotunda et al. Jul 1997 A
5658223 Habing et al. Aug 1997 A
5662557 Watterson et al. Sep 1997 A
5665033 Palmer Sep 1997 A
5669856 Liu Sep 1997 A
5669857 Watterson et al. Sep 1997 A
5672140 Watterson et al. Sep 1997 A
5674156 Watterson et al. Oct 1997 A
5674453 Watterson et al. Oct 1997 A
5676624 Watterson et al. Oct 1997 A
5683332 Watterson et al. Nov 1997 A
5685804 Whan-Tong et al. Nov 1997 A
5702305 Norman et al. Dec 1997 A
5702325 Watterson et al. Dec 1997 A
5704879 Watterson et al. Jan 1998 A
5711745 Yang Jan 1998 A
5718657 Dalebout et al. Feb 1998 A
5722922 Watterson et al. Mar 1998 A
5741205 Doll et al. Apr 1998 A
5743833 Watterson et al. Apr 1998 A
5746682 Hung May 1998 A
5747955 Rotunda et al. May 1998 A
5749807 Webb May 1998 A
5752897 Skowronski et al. May 1998 A
5759135 Chen Jun 1998 A
5762587 Dalebout et al. Jun 1998 A
5762588 Chen Jun 1998 A
5772560 Watterson et al. Jun 1998 A
5779599 Chen Jul 1998 A
5782723 Kuo Jul 1998 A
5792029 Gordon Aug 1998 A
5803870 Buhler Sep 1998 A
5803880 Allen Sep 1998 A
5810696 Webb Sep 1998 A
5827155 Jensen et al. Oct 1998 A
D400941 Allen Nov 1998 S
5830113 Coody et al. Nov 1998 A
5836855 Eschenbach Nov 1998 A
5839993 Fox Nov 1998 A
5853352 Login Dec 1998 A
5855537 Coody et al. Jan 1999 A
5856736 Rotunda et al. Jan 1999 A
5860893 Watterson et al. Jan 1999 A
5860894 Dalebout et al. Jan 1999 A
D406621 Piaget Mar 1999 S
5879270 Huish et al. Mar 1999 A
D407771 Garza Apr 1999 S
5897459 Habing et al. Apr 1999 A
5899833 Ryan et al. May 1999 A
5899834 Dalebout et al. May 1999 A
5908373 Pitre Jun 1999 A
5910072 Rawls et al. Jun 1999 A
5916065 McBride et al. Jun 1999 A
5921894 Eschenbach Jul 1999 A
D412953 Armstrong Aug 1999 S
5938570 Maresh Aug 1999 A
5947872 Ryan et al. Sep 1999 A
5951441 Dalebout et al. Sep 1999 A
5964682 Sokol Oct 1999 A
D416596 Armstrong Nov 1999 S
5976061 Moon et al. Nov 1999 A
5993358 Gureghian et al. Nov 1999 A
6013011 Moore et al. Jan 2000 A
6019710 Dalebout et al. Feb 2000 A
D421779 Piaget et al. Mar 2000 S
6033344 Trulaske et al. Mar 2000 A
6033347 Dalebout et al. Mar 2000 A
6042514 Abelbeck Mar 2000 A
6042518 Hildebrandt et al. Mar 2000 A
6050921 Wang Apr 2000 A
6068578 Wang May 2000 A
6077197 Stearns et al. Jun 2000 A
D429509 Garza Aug 2000 S
6095951 Skowronski et al. Aug 2000 A
6106439 Boland Aug 2000 A
6117053 Chiu Sep 2000 A
6123646 Colassi Sep 2000 A
6132340 Wang et al. Oct 2000 A
6171217 Cutler Jan 2001 B1
6174267 Dalebout et al. Jan 2001 B1
6179753 Barker et al. Jan 2001 B1
6213919 Wang et al. Apr 2001 B1
6234936 Wang May 2001 B1
D445152 Wang et al. Jul 2001 S
6258012 Yoshimura Jul 2001 B1
6261209 Coody Jul 2001 B1
6273842 Wang et al. Aug 2001 B1
6273843 Lo Aug 2001 B1
6280362 Dalebout et al. Aug 2001 B1
6312363 Watterson et al. Nov 2001 B1
6325745 Yu Dec 2001 B1
6328676 Alessandri Dec 2001 B1
D453543 Cutler Feb 2002 S
D453948 Cutler Feb 2002 S
6350218 Dalebout et al. Feb 2002 B1
5383829 Miller Mar 2002 C1
6387016 Lo May 2002 B1
6413195 Barzelay Jul 2002 B1
6436008 Skowronski et al. Aug 2002 B1
6447424 Ashby et al. Sep 2002 B1
6450923 Vatti Sep 2002 B1
6458060 Watterson et al. Oct 2002 B1
6461275 Wang et al. Oct 2002 B1
6461279 Kuo Oct 2002 B1
6471622 Hammer et al. Oct 2002 B1
6475121 Wang et al. Nov 2002 B2
6569062 Wang et al. May 2003 B2
6572512 Anderson et al. Jun 2003 B2
6572513 Whan-Tong et al. Jun 2003 B1
6579211 Wu Jun 2003 B2
6589138 Dyer et al. Jul 2003 B2
6626799 Watterson et al. Sep 2003 B2
6626803 Oglesby et al. Sep 2003 B1
6638200 Chang Oct 2003 B2
6652424 Dalebout Nov 2003 B2
6695581 Wasson et al. Feb 2004 B2
6730002 Hald et al. May 2004 B2
6743153 Watterson et al. Jun 2004 B2
6761667 Cutler et al. Jul 2004 B1
6786852 Watterson et al. Sep 2004 B2
6811517 Eschenbach Nov 2004 B1
6821230 Dalebout et al. Nov 2004 B2
6830540 Watterson et al. Dec 2004 B2
6837829 Eschenbach Jan 2005 B2
6918858 Watterson et al. Jul 2005 B2
6974404 Watterson et al. Dec 2005 B1
6997852 Watterson et al. Feb 2006 B2
7166065 Chang Jan 2007 B2
7192388 Dalebout et al. Mar 2007 B2
20010016542 Yoshimura Aug 2001 A1
20020016235 Ashby et al. Feb 2002 A1
20020082146 Stearns Jun 2002 A1
20030040405 Watterson et al. Feb 2003 A1
20030045401 Watterson et al. Mar 2003 A1
20030073545 Liu et al. Apr 2003 A1
20030125165 Trevino et al. Jul 2003 A1
20030139261 Kuo Jul 2003 A1
20030153434 Dalebout et al. Aug 2003 A1
20040018916 Marin et al. Jan 2004 A1
20040018917 Corbalis et al. Jan 2004 A1
20040018918 Reyes et al. Jan 2004 A1
20040132583 Ohrt et al. Jul 2004 A1
20040162191 Ercanbrack et al. Aug 2004 A1
20040214693 Piaget et al. Oct 2004 A1
20050026752 Lull et al. Feb 2005 A1
20050037898 Chang Feb 2005 A1
Foreign Referenced Citations (49)
Number Date Country
233194 Aug 1959 AU
644774 Jul 1962 CA
2018219 Dec 1990 CA
2016756 Jan 1991 CA
2061470 Sep 1992 CA
2143341 Sep 1995 CA
2225342 Dec 1973 DE
24 08 052 Aug 1975 DE
24 08 055 Aug 1975 DE
24 28 515 Jan 1976 DE
25 28 414 May 1976 DE
29 19 494 Nov 1980 DE
36 01 184 Jul 1987 DE
38 39 391 Jun 1989 DE
40 03 871 Aug 1991 DE
41 00 066 Sep 1991 DE
43 37 874 May 1994 DE
0 196 877 Oct 1986 EP
225810 Jun 1987 EP
0 403 924 Dec 1990 EP
0 504 649 Sep 1992 EP
0 914 842 May 1999 EP
1505702 Feb 2005 EP
1 565 617 May 1969 FR
2 616 132 Dec 1988 FR
2 152 825 Aug 1985 GB
2212729 Aug 1989 GB
2272167 May 1994 GB
51-10842 Mar 1976 JP
58 213 Jun 1995 SE
66 279 Oct 2000 SE
66 280 Oct 2000 SE
546523 Feb 1977 SU
1265113 Oct 1986 SU
1 297 879 Mar 1987 SU
1 567 221 May 1990 SU
283956 Aug 1996 TW
547102 Aug 2003 TW
559085 Oct 2003 TW
WO 8101960 Jul 1981 WO
WO 8201138 Apr 1982 WO
WO 9211905 Jul 1992 WO
WO 9420170 Sep 1994 WO
WO 9516502 Jun 1995 WO
WO 9921620 May 1999 WO
WO 0006256 Feb 2000 WO
WO 0018472 Apr 2000 WO
WO 0030717 Jun 2000 WO
WO 0158534 Aug 2001 WO
Related Publications (1)
Number Date Country
20070054780 A1 Mar 2007 US
Continuations (1)
Number Date Country
Parent 10039070 Dec 2001 US
Child 11463297 US