Abrasive Belt Grip
An abrasive belt grip is an apparatus that is used to apply a finish to a knife blade. The apparatus includes a casing, a carbide plate, a drive roller, an idle roller, a heat-sinking saddle, a cooling system, and a serpentine belt. The casing is used as a structural base to mount all of the aforementioned components. The conveying movement of the serpentine belt allows the apparatus to apply a finish onto the knife blade. The conveying movement of the serpentine belt is driven by the rotation of the drive roller and is stabilized by the rotation of the idle roller. The carbide plate provides a flat backing for the serpentine belt as a knife blade is pressed against the serpentine belt. The heat-sinking saddle draws heat away from the serpentine belt and the carbide plate, while the cooling system exhausts that heat out of the casing.
The current application claims a priority to the U.S. Provisional Patent application serial number 62/490,142 filed on Apr. 26, 2018.
FIELD OF THE INVENTIONThe present invention relates generally to a grinding tool. More specifically, the present invention relates to a fixture that goes onto other knife grinding tools that eliminates damage to the grinding belt that results in the common scourge of “belt bump”. The present invention is also able to simultaneously dissipates harmful heat generated during the grinding process.
BACKGROUND OF THE INVENTIONThe process of making knives has evolved tremendously over centuries of development in metalworking tools. It is difficult to believe that many centuries ago, the first knives were made from processing of iron oxide ores. Now that metals are mined and processed regularly and efficiently into workable metal material, the subsequent processing for metal tools, such as cookware, weapons, electronics, and more has improved drastically as well. Knives of varying degrees of sharpness and quality can be mass-produced with relative ease at large metal-goods manufacturing facilities. The dimensions can often be controlled to a fairly high level of accuracy, making fully-automated knife creation often the best solution for companies seeking large quantities of generic butter knives, for example.
Even with technological advances, fully-automated large-scale manufacturing cannot capture the quality and uniqueness of knives made with a human touch. The highest quality modern knives are created using slightly modified combinations of several processing techniques that have been known for hundreds of years; high temperatures, forging with hammers, grinding, heat treatment, and finishing. The grinding step, which once required the intensive and exhausting use of metal files, can now be accomplished using a powered grinder. The finishing process also often utilizes a similar grinder with very high grit to accomplish anywhere from a low-shine finish to a mirror shine finish. Unfortunately, the high friction generated during use of the grinders results in high heat generation, which can not only warp the band being used into an increasingly defective shape, but also can affect the finish of the knife being grinded. What is needed is a grinder that cools as it is utilized. Further desirable is a grinder that has backing support to prevent warping of the belt during use.
The present invention addresses these issues. More specifically, the present invention has a heat-sinking saddle that collects heat, and a fan roller that simultaneously dissipates that heat during use. The frame houses a series of rollers for use by the belt, and the frame also uses several vents to allow for heat collected by the heat-sinking saddle to escape.
All illustrations of the drawings are for the purpose of describing selected versions of the present invention and are not intended to limit the scope of the present invention.
As can be seen in
The general configuration of the aforementioned components allows the present invention to efficiently and effectively apply a consistent finish to a knife blade. The casing 1 comprises a grinding cutout section 11, as seen in
The cooling system 6 comprises a fan roller 61, at least one venting system 62, and at least one fan 63. The fan roller 61 is rotatably mounted within the casing 1, allowing the fan roller 61 to rotate within the casing 1. The fan roller 61 is positioned offset from the heat-sinking saddle 5, opposite the carbide plate 2. This arrangement enables the fan roller 61 to dissipate heat collected by the heat-sinking saddle 5 from the carbide plate 2. The serpentine belt 7 is tensionably engaged about the fan roller 61, resulting in rotation of the fan roller 61 with motion of the serpentine belt 7. The at least one fan 63 is torsionally connected to the fan roller 61. This allows the at least one fan 63 to direct air through the casing 1. The at least one venting system 62 is integrated into the casing 1, adjacent to the at least one fan 63, so that the air directed by the at least one fan 63 can enter and exit the casing 1.
The at least one fan 63 comprises a first fan 631 and a second fan 632, as seen in
The first fan 631 comprises a plurality of input blades 6311, as seen in
The at least one venting system 62 seen in
During grinding, it is often necessary or desirable to adjust the tightness of the serpentine belt 7. To this end, the present invention further comprises a clevis 8, as seen in
The heat-sinking saddle 5 of the present invention further comprises a bracing surface 51, a saddle body 52, and at least one heat-dissipating channel, as seen in
The present invention further comprises a plurality of plate fasteners 102, as seen in
Although the invention has been explained in relation to its preferred embodiment, it is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention as hereinafter claimed.
Claims
1. An abrasive belt grip comprises:
- a casing;
- a carbide plate;
- a drive roller;
- an idle roller;
- a heat-sinking saddle;
- a cooling system;
- a serpentine belt;
- the casing comprises a grinding cutout section;
- the drive roller and the idle roller being rotatably mounted within the casing;
- the heat-sinking saddle being mounted within the casing;
- the heat-sinking saddle being positioned in between the drive roller and the idle roller;
- the carbide plate being mounted adjacent to the heat-sinking saddle;
- the carbide plate being positioned adjacent to the grinding cutout section;
- the cooling system being in thermal communication with the heat-sinking saddle;
- the serpentine belt being tensionably engaged about the drive roller and the idle roller; and
- the serpentine belt being positioned offset from the carbide plate, opposite the heat-sinking saddle.
2. The abrasive belt grip as claimed in claim 1 comprises:
- the cooling system comprises a fan roller, at least one venting system, and at least one fan;
- the fan roller being rotatably mounted within the casing;
- the fan roller being positioned offset from the heat-sinking saddle, opposite the carbide plate;
- the serpentine belt being tensionably engaged about the fan roller;
- the at least one fan being torsionally connected to the fan roller; and
- the at least one venting system being integrated into the casing, adjacent to the at least one fan.
3. The abrasive belt grip as claimed in claim 2 comprises:
- the at least one fan comprises a first fan and a second fan;
- the first fan being torsionally and adjacently connected to the fan roller; and
- the second fan being torsionally and adjacently connected to the fan roller, opposite to the first fan.
4. The abrasive belt grip as claimed in claim 3 comprises:
- the first fan comprises a plurality of input blades; and
- the plurality of input blades being radially positioned around a rotation axis of the fan roller.
5. The abrasive belt grip as claimed in claim 3 comprises:
- the second fan comprises a plurality of output blades; and
- the plurality of output blades being radially positioned around a rotation axis of the fan roller.
6. The abrasive belt grip as claimed in claim 2 comprises:
- the at least one venting system comprises a plurality of first vents and a plurality of second vents;
- the plurality of first vents being positioned adjacent to the fan roller; and
- the plurality of second vents being positioned adjacent to the fan roller, opposite the plurality of first vents.
7. The abrasive belt grip as claimed in claim 2 comprises:
- a clevis;
- a linear actuator;
- a first locking mechanism;
- a second locking mechanism;
- the clevis comprises a first leg, a second leg, and a crossbar;
- the linear actuator comprises a free end and a fixed end;
- the first leg and the second leg being positioned offset and parallel to each other;
- the crossbar being connected in between the first leg and the second leg;
- the fan roller being rotatably mounted in between the first leg and the second leg;
- the crossbar and the fan roller being positioned offset from each other;
- the first leg being slidably mounted onto the casing by the first locking mechanism;
- the second leg being slidably mounted onto the casing by the second locking mechanism;
- the fixed end being mounted into the crossbar;
- the free end being pressed against the casing.
8. The abrasive belt grip as claimed in claim 1 comprises:
- the heat-sinking saddle comprises a bracing surface, a saddle body, and at least one heat-dissipating channel;
- the carbide plate being attached across the bracing surface; and
- the at least one heat-dissipating channel traversing into the bracing surface and through the saddle body.
9. The abrasive belt grip as claimed in claim 1 comprises:
- a plurality of plate fasteners; and
- the carbide plate being attached adjacent to the heat-sinking saddle by the plurality of plate fasteners.
10. An abrasive belt grip comprises:
- a casing;
- a carbide plate;
- a drive roller;
- an idle roller;
- a heat-sinking saddle;
- a cooling system;
- a serpentine belt;
- the casing comprises a grinding cutout section;
- the cooling system comprises a fan roller, at least one venting system, and at least one fan;
- the drive roller and the idle roller being rotatably mounted within the casing;
- the heat-sinking saddle being mounted within the casing;
- the heat-sinking saddle being positioned in between the drive roller and the idle roller;
- the carbide plate being mounted adjacent to the heat-sinking saddle;
- the carbide plate being positioned adjacent to the grinding cutout section;
- the cooling system being in thermal communication with the heat-sinking saddle;
- the serpentine belt being tensionably engaged about the drive roller and the idle roller;
- the serpentine belt being positioned offset from the carbide plate, opposite the heat-sinking saddle;
- the fan roller being rotatably mounted within the casing;
- the fan roller being positioned offset from the heat-sinking saddle, opposite the carbide plate;
- the serpentine belt being tensionably engaged about the fan roller;
- the at least one fan being torsionally connected to the fan roller; and
- the at least one venting system being integrated into the casing, adjacent to the at least one fan.
11. The abrasive belt grip as claimed in claim 10 comprises:
- the at least one fan comprises a first fan and a second fan;
- the first fan being torsionally and adjacently connected to the fan roller; and
- the second fan being torsionally and adjacently connected to the fan roller, opposite to the first fan.
12. The abrasive belt grip as claimed in claim 11 comprises:
- the first fan comprises a plurality of input blades; and
- the plurality of input blades being radially positioned around a rotation axis of the fan roller.
13. The abrasive belt grip as claimed in claim 11 comprises:
- the second fan comprises a plurality of output blades; and
- the plurality of output blades being radially positioned around a rotation axis of the fan roller.
14. The abrasive belt grip as claimed in claim 10 comprises:
- the at least one venting system comprises a plurality of first vents and a plurality of second vents;
- the plurality of first vents being positioned adjacent to the fan roller; and
- the plurality of second vents being positioned adjacent to the fan roller, opposite the plurality of first vents.
15. The abrasive belt grip as claimed in claim 10 comprises:
- a clevis;
- a linear actuator;
- a first locking mechanism;
- a second locking mechanism;
- the clevis comprises a first leg, a second leg, and a crossbar;
- the linear actuator comprises a free end and a fixed end;
- the first leg and the second leg being positioned offset and parallel to each other;
- the crossbar being connected in between the first leg and the second leg;
- the fan roller being rotatably mounted in between the first leg and the second leg;
- the crossbar and the fan roller being positioned offset from each other;
- the first leg being slidably mounted onto the casing by the first locking mechanism;
- the second leg being slidably mounted onto the casing by the second locking mechanism;
- the fixed end being mounted into the crossbar; and
- the free end being pressed against the casing.
16. The abrasive belt grip as claimed in claim 10 comprises:
- the heat-sinking saddle comprises a bracing surface, a saddle body, and at least one heat-dissipating channel;
- the carbide plate being attached across the bracing surface; and
- the at least one heat-dissipating channel traversing into the bracing surface and through the saddle body.
17. The abrasive belt grip as claimed in claim 10 comprises:
- a plurality of plate fasteners; and
- the carbide plate being attached adjacent to the heat-sinking saddle by the plurality of plate fasteners.
Type: Application
Filed: Apr 26, 2018
Publication Date: Nov 1, 2018
Inventor: Jerry Micheal Moen (Dallas, TX)
Application Number: 15/964,056