This disclosure relates to the field of compound archery bows. More particularly, this disclosure relates to a cam system for a compound bow.
Single-cam and dual-cam compound archery bows have a power cam mounted on one or both ends of the bow limbs to control the draw force on the bowstring and the bending of the limbs as the bowstring is drawn. In single-cam bows, there is a power cam on the end of one bow limb, and wheel on the end of the other bow limb to facilitate control or time take-up of a power cable at the power cam and let-out of the bowstring and control cables at the power cam as the bow is drawn. In dual-cam bows, power cams are mounted on the ends of both limbs, with each including groove segments to control let-out of the bowstring cable at the opposing cam.
With reference to
With reference to
Draw modules 16, 16′ are secured to corresponding bases 42, 42′ such that the draw modules 16, 16′ are in a fixed position as compared to bases 42, 42′. With reference specifically to
With reference now to
As explained above, the opposing upper cam 40 and lower cam 40′ of dual cam archery bow 8 are thus slaved together to eliminate any cam-to-cam timing issues. The bowstring having ends 11, 11′ are positioned in a first plane while the first cable having ends 13, 12′ and the second cable having ends 12, 13′ are positioned in a second plane. In operation, cable ends 13, 13′ are let out at a significantly lower rate than the take-up of cable ends 12, 12′, which results in maximum limb compression of the opposing bow limbs 10, 10′. This helps achieve a high level of stored bow energy, dynamic efficiency and kinetic energy, achieving improved arrow speed.
Most compound bows are set-up to accommodate a desired draw length of the archer intending to use the bow. In this regard, cam systems of the prior art will typically include an adjustable draw module for modifying the draw length. Further, the positioning of limb stops and/or cable stops may be adjustable to modify the draw length. However, these systems require significant time and experience to properly adjust the different drawstring characteristics (e.g., draw length, let off, and holding weight of the drawstring). Further, many of the characteristics may only be adjustable in larger increments than desired by the archer.
What is needed therefore is an improved cam system that allows for relatively simple and precise adjustments in the drawstring characteristics of a compound archery bow.
The above and other needs are met by a cam assembly for a compound archery bow that includes a first drive mechanism, a second drive mechanism positioned and configured to engage the first drive mechanism, a base, and a cam adjustable component configured to be adjustably secured to the base. One of the base and the cam adjustable component includes the first drive mechanism. Rotation of the second drive mechanism is operable to move the cam adjustable component with respect to the base, and wherein movement of the cam adjustable component with respect to the base modifies at least one drawstring characteristic of the compound archery bow.
According to certain embodiments, the cam adjustable component includes at least one of a cable stop, a limb stop, and a draw module.
According to certain embodiments, the cam adjustable component includes a cable stop and the base includes a draw module such that the cable stop is independently adjustable with respect to the draw module.
According to certain embodiments, the cam adjustable component includes a limb stop and the base includes a draw module such that the limb stop is independently adjustable with respect to the draw module.
According to certain embodiments, the cam adjustable component includes the first drive mechanism, the first drive mechanism includes a plurality of gear teeth, and the second drive mechanism is a drive gear having a plurality of drive teeth configured to engage the plurality of gear teeth of the first drive mechanism.
According to certain embodiments, the base includes the first drive mechanism, the first drive mechanism includes a plurality of gear teeth, and the second drive mechanism is a drive gear having a plurality of drive teeth configured to engage the plurality of gear teeth of the first drive mechanism.
According to certain embodiments, the base includes a slot positioned adjacent a first end of the first drive mechanism and the cam adjustable component includes an aperture configured to be aligned with the slot of the base. The cam assembly further includes a fastener configured to be inserted through the aperture and into the slot for securing the cam adjustable component to the base in a plurality of positions. The cam adjustable component is configured to be moved with respect to the base when the fastener is loosened and the second drive mechanism is rotated.
According to another embodiment of the disclosure, a cam assembly for a compound archery bow includes a base having at least a first groove portion and a second groove portion, the first groove portion including a plurality of gear teeth. A drive gear having drive teeth is disposed within the first groove portion such that the drive teeth of the drive gear are operable to engage the plurality of gear teeth of the first groove portion. A draw module is configured to be adjustably secured to the base, the draw module including at least a first aperture and a second aperture, the first aperture configured to engage the drive gear such that rotation of the drive gear is operable to move the draw module with respect to the base, the second aperture being aligned with the second draw module groove portion such that the second groove portion is configured to receive first a fastener along a plurality of positions of the second groove portion. The draw module is further configured to be in an adjustable position when at least the first fastener is loosened with respect to the second groove portion and the draw module is configured to be in a fixed position when the fastener is tightened with respect to the second groove portion.
According to certain embodiments, the draw module includes a cable stop incorporated into one end of the draw module such that movement of the draw module with respect to the base simultaneously moves the cable stop with respect to the base. In some embodiments, the cable stop is independently adjustable with respect to the draw module.
According to certain embodiments, the draw module includes a limb stop incorporated into one end of the draw module such that movement of the draw module with respect to the base simultaneously moves the limb stop with respect to the base. In some embodiments, the limb stop is independently adjustable with respect to the draw module.
According to certain embodiments, the draw module includes a cable stop incorporated into a first end of the draw module and a limb stop incorporated into a second end of the draw module such that movement of the draw module with respect to the base simultaneously moves the cable stop and the limb stop with respect to the base.
According to certain embodiments, the base is a draw module base and includes a first side and a second side with the draw module configured to be adjustably secured to the first side of the draw module base. The draw module base further includes a third groove portion and a fourth groove portion. The cam assembly further includes a limb stop base disposed on the second side of the base having a first end and a second end, a second fastener for securing the first end of the limb stop base to the draw module through the third groove portion, a limb stop disposed on the second end of the limb stop base and positioned within the fourth groove portion. When at least the first fastener is loosened with respect to the second groove portion and the second fastener is loosened with respect to the third groove portion, the draw module is operable to be moved with respect to the base by rotation of the drive gear such that the limb stop is simultaneously moved with respect to the fourth groove portion.
According to another embodiment of the disclosure, a cam assembly for a compound archery bow includes a base, a draw module configured to be movably positioned with respect to the base, and at least one of a cable stop and a limb stop operatively connected to the draw module such that movement of the draw module with respect to the base simultaneously moves the at least one of the cable stop and the limb stop with respect to the base.
According to certain embodiments, the cable stop and the limb stop are operatively connected to the draw module.
According to certain embodiments, the cable stop is operatively connected to the draw module and the cable stop is incorporated into one end of the draw module.
According to certain embodiments, the cable stop is operatively connected to the draw module and the cable stop is independently adjustable with respect to the draw module.
According to certain embodiments, the limb stop is operatively connected to the draw module and the limb stop is independently adjustable with respect to the draw module.
According to certain embodiments, the base is a draw module base having a first side and a second side with the draw module configured to be adjustably secured to the first side of the draw module base. The draw module base further includes a limb stop base groove portion and a limb stop groove portion. The cam assembly further includes a limb stop base disposed on the second side of the base having a first end and a second end, a fastener for securing the first end of the limb stop base to the draw module through the limb stop base groove portion, and a limb stop disposed on the second end of the limb stop base and positioned within the limb stop groove portion. When at least the fastener is loosened with respect to the limb stop base, the draw module is operable to be moved with respect to the base and the limb stop is simultaneously moved with respect to the limb stop groove portion.
Other embodiments of the disclosure will become apparent by reference to the detailed description in conjunction with the figures, wherein elements are not necessarily to scale so as to more clearly show the details, wherein like reference numbers indicate like elements throughout the several views, and wherein:
According to the present disclosure, and as further described below, various cam assemblies are disclosed herein having one or more cam adjustable components operable to be adjusted using a first drive mechanism and a second drive mechanism that is configured to engage the first drive mechanism. Upon rotation of the second drive mechanism, the cam adjustable component is moved with respect to the base for modifying at least one drawstring characteristic of the compound archery bow. The cam adjustable component may be a draw module, a cable stop, and/or a limb stop. In certain embodiments, the base is the draw module itself with the cable stop and/or limb stop being the cam adjustable component that is able to be moved with respect to the draw module by rotation of the second drive mechanism.
With reference to
As shown best in
To adjust the position of the draw module 116, the fasteners inserted through apertures 124a and/or 124b of draw module 116 are first loosened or otherwise removed with respect to grooves 144a and/or 144b of base 142. The drive gear 148 is then rotated using a hex key or similar tool to incrementally adjust the positioning of the drive gear 148 with respect to the groove 144c. Moving the drive gear 148 along groove 144c provides a corresponding movement of the draw module 116 with respect to base 142. Once the draw module 116 is moved to its desired position, the fasteners inserted through apertures 124a and/or 124b are tightened with respect to their respective positions along grooves 144a and/or 144b to secure the draw module 116 back to the base 142.
The drive gear as described above provides micro adjustments to the draw length of the compound bow. In preferred embodiments, the drive gear provides for adjustments down to at least 0.0625 inches, thus providing a more custom draw length fit for the user. It should be understood that other means for the first and second drive mechanisms are possible and within the scope of the disclosure including a worm drive, block and tackle, wheel drive, etc.
According to another aspect of the disclosure, the draw module 116 of this embodiment further incudes a cable stop 126 integrated into the first end 127 of draw module 116. As shown, the cable stop 126 is a raised portion extending out from the draw module 116 that is positioned and configured to abut one of the cables of the bow to limit bow draw when the cam assembly 140 is rotated. More specifically, and assuming the cable stop feature 126 of cam assembly 140 was incorporated into the upper cam 40 and lower cam 40′ of
According to another aspect of the embodiment of
According to another embodiment of the disclosure, and with reference to
As shown best in the rear view of the draw module 216 as depicted in
With continued reference to
With reference to
According to another embodiment of the disclosure, and with reference to
According to another embodiment of the disclosure, and with reference to
In summary, the present disclosure provides a cam system in which a cam adjustable component such as a draw module, cable stop, and/or limb stop is easily adjustable. Further, in the case of an adjustable draw module, the draw module may incorporate an integrated cable stop and/or limb stop. Thus, when the position of the draw module is adjusted, the positioning of the cable stop and/or limb stop is also automatically adjusted. The ability to simultaneously adjust the cable stop and/or limb stop with the draw module is to prevent the user from forgetting to set a stop after adjusting the draw length, which would potentially lock up the cams at over rotation and damage the bow or user.
Further, the present disclosure also provides embodiments in which the cable stop and/or limb stop may be further adjustable independently of the draw module for additional fine tuning. For example, a user may adjust the draw module to adjust the draw length. This adjustment also adjusts the integrated cable stop and/or limb stop to the desired draw length. However, if the user felt a little more or a little less effective let off was needed, then the user could fine tune the cable stop and/or limb stop independent of the draw module.
It should be understood that many different variations of the cam assemblies are possible and within the scope of the present disclosure including, but not necessarily limited to: (1) a draw length module to where the draw length and limb stop and cable stop are all adjusted simultaneously by adjusting the positioning of the draw module; (2) a draw length module to where the draw length, limb stop, and cable stop are all adjusted simultaneously, but further micro adjustment of the limb stop and cable stop are available for finer tuning; (3) a draw length module to where the draw length is adjusted, and a limb stop and cable stop are adjusted independently of each other and the draw module; (4) a draw length module to where the draw length and a limb stop is adjusted simultaneously, and the cable stop is adjusted independently; and (5) a draw length module to where the draw length is adjusted and the cable stop is adjusted simultaneously, and the limb stop is adjusted independently.
Further, adding a micro adjustment device such as a gear drive to the cable stop and/or limb stop provides for infinite adjustments of full draw holding weight and full draw let off percentages. For example, the present disclosure provides a full draw holding weight that can be adjusted as close as ¼ pound, and a let off percentage that can be adjusted to as little as a 1-3% adjustment from the normal. While the industry has various standards of let off which amounts to holding weight, the more popular is 80% let off, so a 70-pound bow at 80% let off would have a full draw holding weight of 14 pounds. The 14 pounds can be micro-managed with a gear in place to be less or more for a more custom perfect fit and feel for the user.
According to another aspect of the disclosure, and with reference to
More specifically, according to this exemplary embodiment, the first end 513 of the first cable extends from a cable terminating post 515 located in a second plane into a feed out groove 522 located in the draw module 516 with feed out groove 522 also disposed in the second plane. The first cable then extends to the lower cam 540′ where the second end 512′ of the first cable extends through a take up groove 522′ located in the draw module 516′ to cable terminating post 514′. Take up groove 522′ of the lower cam 540′ is also in the second plane according to this embodiment. The first end 512 of the second cable is then fixed to cable terminating post 514 of the upper cam 540 and extends to the lower cam 540′ where the second end 513′ of the second cable is wrapped around a groove 550′ disposed adjacent or otherwise incorporated into cable terminating post 515′. According to this embodiment, the feed out groove 550′ of the lower cam 540 is disposed in a third plane, or the groove 550′ can transition from the second plane to the third plane by using a multi-plane feed out helical groove. When the groove 550′ is disposed in the third plane as compared to the second plane, the second end 513′ of the second cable bypasses the draw module 516′ as depicted in
According to other embodiments, the three-plane cam can be implemented in the upper cam 540 while the two-plane cam can be implemented in the lower cam 540′. Further, the various grooves can be positioned in different planes as desired and within the teachings of the present disclosure. Additionally, grooves can be configured to allow the first cable and/or second cable to change planes as desired. It is also noted that the take up and feed out grooves can be located on a first cam side or a second cam side configuration. The feed out groove can also be on one cam side and the take up groove can be on the opposite cam side separated by the bowstring groove.
The foregoing description of preferred embodiments for this disclosure have been presented for purposes of illustration and description. They are not intended to be exhaustive or to limit the invention to the precise form disclosed. Obvious modifications or variations are possible in light of the above teachings. The embodiments are chosen and described in an effort to provide the best illustrations of the principles of the disclosure and its practical application, and to thereby enable one of ordinary skill in the art to utilize the disclosure in various embodiments and with various modifications as are suited to the particular use contemplated. All such modifications and variations are within the scope of the disclosure as determined by the appended claims when interpreted in accordance with the breadth to which they are fairly, legally, and equitably entitled.
This application claims priority to co-pending U.S. Provisional Application Ser. No. 63/241,028 filed Sep. 6, 2021; U.S. Provisional Application Ser. No. 63/274,971 filed Nov. 3, 2021; U.S. Provisional Application Ser. No. 63/304,344 filed Jan. 28, 2022; and U.S. Provisional Application Ser. No. 63/318,320 filed Mar. 9, 2022, the contents of each being incorporated herein by reference in their entireties.
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