Mixing devices that provide a rotational movement and also a vertical or oscillatory motion are known in the art. One example of such a device that provides rotational movement and also vertical and oscillatory motion is U.S. Pat. No. 5,150,967 to Neilson, et al. (hereinafter “Neilson”). Neilson discloses a milk shake mixing machine that includes a first motor and a second motor for vertical or oscillatory motion.
There is a need for a mixing device that can provide both vertical, oscillatory motion and rotational motion without limiting the RPM rating and/or torque of both motors. According to a first aspect of the present disclosure there is provided an appliance. The appliance has a primary motor that is configured to rotate a blade connected to a spindle. The blade and the spindle are disposed on a blade platform and the primary motor is mounted on a second platform. A second motor is configured to translate the blade platform and the spindle by a first linkage from a first position to a second position relative to the second platform. In another aspect, the first motor and the second motor are independent from one another. In yet another aspect, the appliance further has a first output shaft. The first output shaft is connected to the spindle and the spindle is connected to a spindle head. The spindle head is configured to rotate a plurality of blades with the first output shaft connected to the primary motor.
In a further aspect, the blade platform includes an aperture and the spindle is positioned through the aperture and configured to rotate the blade above the blade platform.
In another embodiment, the second motor includes an output shaft. The output shaft is connected to a geared arrangement to move a first linkage in a longitudinal manner. The first linkage includes a rocker arm. The rocker arm has a first end configured to rotate and a second lever end configured to longitudinally reciprocate between an elevated and a lowered position.
In another aspect, the second lever end is connected to the first linkage and the first linkage is connected to the blade platform by a pin. In another aspect, the appliance further includes a container. The container is disposed above the second or blade platform. In another aspect, the appliance includes a number of blades. In yet another embodiment, the geared arrangement can include a first gear that has a plurality of teeth connected to a second gear. The second gear further is configured to reciprocate the first linkage from the first position to the second position by reciprocating a rocker arm.
According to another aspect of the present disclosure, the geared arrangement may include a second gear. That second gear is connected to a first cam and the first cam is connected to a first end of an intermediate linkage. The intermediate linkage rotates the first end. The intermediate linkage also includes a second end that is opposite the first end with a second end being configured to move the rocker arm in a longitudinal manner in response to the rotation. In another embodiment, the container is suspended above the first platform.
In another embodiment, there is provided an appliance. The appliance includes a primary motor configured to rotate a blade disposed above a first platform with the primary motor being stationary and connected to a second stationary platform. The first platform is disposed above the second platform. The appliance also has a second motor independent of the primary motor. The second motor is operatively connected to the first platform by a first linkage, which is connected to a rocker arm.
The second motor operates to move the rocker arm connected to the first linkage. The rocker arm moves the first linkage in response to the rotation. The rocker arm reciprocates the first platform relative to the second platform from a first elevated position to a second lowered position. The second motor includes an output shaft. The output shaft is connected to a sun gear. The sun gear is connected to a planet gear. The sun gear rotates the planet gear to rotate a first cam. The first cam is connected to a second linkage and the second linkage rotates the rocker arm.
The first linkage further includes a second end connected to a pivot, and the pivot is connected to the first platform. Rotation of a first end of the first linkage, connected to the rocker arm, reciprocates the second end in a longitudinal manner. This elevates and lowers the first platform relative to the second platform. The appliance can also have the blade supported on a spindle. The spindle extends through an aperture in the first platform. The spindle rotates relative to the first platform. It should be appreciated that the first platform does not spin with the spindle. A bearing may be provided to permit the spindle to rotate while the first platform moves upwardly, and downwardly.
In yet another embodiment of the present disclosure, the appliance includes a primary motor that is configured to rotate a blade disposed above a first platform. The primary motor is stationary and connected to a second platform. The first platform is located above the second platform. A second motor independent of the primary motor is operatively connected to the first platform by a first linkage. The primary motor rotates the blade disposed above the first platform. The second motor rotates a second linkage connected to the first linkage. The first linkage, in response to the rotation, is configured to reciprocate the first platform relative to the stationary second platform, or between a first elevated position and a second lowered position.
In a further embodiment of the present disclosure, the appliance has a first motor that includes a first output shaft connected to a spindle. The spindle is connected to a spindle head. The spindle head is configured to rotate a plurality of blades and the appliance also has a blade platform. The platform includes an aperture. The spindle extends above the aperture and is configured to rotate the plurality of blades above the blade platform. The appliance also has a second motor that is stationary and connected to a second platform.
The second platform is positioned under the blade platform. The second motor includes a second output shaft and the second output shaft is connected to a first gear. The first gear is rotatably connected to a second gear. The second gear is also connected to a first cam. The first cam is operatively connected to a first linkage at a first end and the first linkage is connected to a rocker arm. In this embodiment, the second motor operates to rotate the second output shaft to rotate the first gear. The first gear rotates the second gear and the second gear rotates the first linkage. The first linkage rotates the rocker arm and the rocker arm is connected to a second linkage. The second linkage has a first end and a second end. The first end, in response to the rotation, moves the second end in a longitudinal direction. The second linkage is connected to the blade platform at the second end and is configured to reciprocate the blade platform in a longitudinal manner relative to the second platform, or between a first position and a second position.
In another embodiment, the apparatus further has a post connected on the second platform. The post can be disposed through the blade platform. The post orients the blade platform during movement of the blade platform from the first position to the second position. It should be appreciated that the post is optional, and the blade platform may move without an orientation or guide post. In another embodiment, the apparatus has the post supporting a container. The apparatus can further include a secondary linkage connected to the blade platform on an opposite side. This secondary linkage may be configured to translate the blade platform from the first position to the second position.
According to yet another aspect of the present disclosure, there is provided an appliance that has a motor, which is configured to rotate a blade disposed above a first platform. The motor includes a first rotatable shaft and a second rotatable shaft. The second rotatable shaft extends opposite the first rotatable shaft. The motor also has a blade connected to the first rotatable shaft. The appliance further has a worm gear positioned over the second rotatable shaft. The appliance also has a gear that engages the worm gear.
A cam is connected to the gear, and a linkage connects the cam to the first platform. In operation, the motor rotates the worm gear, and the worm gear rotates the gear. The gear is configured to rotate about the cam, and the gear moves a second linkage. The second linkage moves the motor to translate the blade upwardly and downwardly. The second linkage preferably moves the entire motor vertically, and this translates the blade, which is connected to the drive shaft, upwardly and downwardly, and in a cyclic manner. Preferably, the motor is vertically moved in the cyclic manner, which is based on the rotation of the worm gear. A post can also be provided, which is connected to a stationary platform. The post assists with guiding the motor. A resilient looped member can be connected to the motor to assist with engaging the post, and to guide the motor.
In another embodiment, the appliance can have multiple posts connected to a stationary platform, and multiple loops connected to the motor. Each loop preferably engages each post supported on the platform to assist with guiding the motor. Multiple blades can also be connected to the first rotatable shaft. In one embodiment, the cam can be connected to the gear by a third linkage. The cam is preferably located at an end of the linkage. The cam is connected to the third linkage preferably by a pin. The linkage can also be connected to the first platform by a pin.
The motor is preferably lightweight and conducive to moving upwardly and downward, but also has sufficient power for chopping and grating. The worm gear can be positioned over the second rotatable shaft, and may include a spiral shaped groove that engages with teeth on the gear. The linkage (connecting the cam to the first platform) preferably is a bar-like resilient member. The appliance may also include a housing with a container connected to the housing, and preferably the blade extends into the container for processing food. The motor rotates the worm gear in a first rotational direction, and the worm gear rotates the gear. In response, the gear is configured to rotate about the cam in a second rotational direction with the gear moving the second linkage in a cyclic, and vertical manner. The first rotatable shaft extends from a top of the motor, and the second rotatable shaft extends from a bottom of the motor. The first rotatable shaft extends above the first platform through a sealed aperture. The worm gear is disposed in a generally coaxial manner over the second rotatable shaft.
According to another aspect of the present disclosure, there is provided an appliance that includes a movable motor configured to rotate a blade disposed above a first platform. The motor includes a first rotatable shaft and a second rotatable shaft. The second shaft extends opposite the first rotatable shaft. A blade is connected to the first rotatable shaft.
A worm gear is disposed coaxial over the second rotatable shaft. A gear engages the worm gear. A cam surface is connected to the gear by a first link. The cam surface includes a second link connecting the cam surface to the first platform so the cam surface remains stationary relative to the moveable motor.
In operation, the motor rotates the worm gear, and rotates the gear. The gear is configured to rotate about the cam surface, and the gear moves a third link. The third link is connected to the motor. The third link moves the motor to translate the blade upwardly and downwardly based on the rotation of the worm gear.
In yet another aspect, there is provided a method of moving a blade of an appliance in an oscillating, rotating, and cyclic motion. The method includes providing a motor includes a first rotating shaft, and a second opposite rotating shaft. The method also includes providing a blade on the first rotating shaft, and rotating the blade using the first rotating shaft. The method further provides a stationary cam surface and translates rotation from the second opposite rotating shaft to the stationary cam surface to move the motor vertically, and in a cyclic manner. The motor, in turn, moves the rotating blade vertically.
The foregoing will be apparent from the following more particular description of example embodiments of the invention, as illustrated in the accompanying drawings in which like reference characters refer to the same parts throughout the different views. The drawings are not necessarily to scale, emphasis instead being placed upon illustrating embodiments of the present invention.
A description of example embodiments of the invention follows.
Turning now to
As shown in
Turning again to
Turning to the interior contents of the housing 15, which is shown in
Operation of the blade platform 50 and, in particular movement in the direction of reference arrows B and C, will now be shown and described. In one aspect, blade platform 50 is moved using an independent power source exclusive of motor 55. Turning to the interior contents of the housing 15, the food processor 10 includes a second motor 60. The second motor 60 can be a similar or different type of motor relative to the primary motor 55, and is preferably disposed horizontally on the stationary platform 50′. The second motor 60 can be disposed through a block-like support structure 65 that is fixedly supported on the stationary platform 50′, or using an L-shaped bracket 65. The second motor 60 preferably outputs rotational movement that is converted to the longitudinal movement of the blade platform 50 in the direction of reference arrows B and C. Preferably, the rotational movement is converted using a geared arrangement.
In this aspect, the second motor 60 includes a sun gear 70. The second motor 60 is preferably connected to the sun gear 70 by a motor output drive shaft 75 with the drive shaft 75 extending through the sun gear 70. Motor 60 preferably can be a switched reluctance motor, or any suitable electric motor known in the art. It should be appreciated that the motor 60 may be connected to a different or the same switch (not shown) relative to motor 55. Preferably, the second motor 60 is electrically coupled to a power source (not shown) and the second motor 60 can spin or rotate the sun gear 70 in a clockwise or counterclockwise fashion when energized with power. The second motor 60 spins the sun gear 70 in a clockwise or counterclockwise fashion by rotating the motor output shaft 75 upon being energized from the power source. Various rotational configurations are possible and within the scope of the present invention.
The food processor 10 also includes a planet gear 80. The planet gear 80 is disposed offset relative to the sun gear 70, which is coupled to the second motor 60, such that the teeth of the sun gear 70 mesh with the teeth of the planet gear 80 and rotational movement from motor 60 is communicated to the planet gear 80. In this manner, upon being energized, the second motor 60 will spin the sun gear 70 using a motor output drive shaft 75 and, the spinning teeth will engage the teeth of the planet gear 80. This will drive the planet gear 80 in an opposite direction relative to the rotation of the sun gear 70. The planet gear 80 is further connected to a first cam 85 using a pin (not shown) or other suitable connection member. The first cam 85 is preferably rotationally connected to the planet gear 80 and rotates in a similar manner. In this manner, upon the planet gear 80 being rotated, the first cam 85 will also be rotated in the similar rotational manner and direction.
The food processor 10 further includes a first linkage 90. The first linkage 90 is a bar like resilient member that operates as a member to connect first cam 85 to a rocker arm 95. The first linkage 90 is rotationally connected to the first cam 85 or fastened to an outside of the first cam 85. Upon the first cam 85 rotating, the first linkage 90 will rotate in a similar manner or rotate in a direction along its longitudinal axis to move perpendicular relative to the output shaft 75.
The food processor 10 further includes a rocker arm 95. The first linkage 90 is connected between the first cam 85 and the rocker arm 95. The rocker arm 95 is preferably a triangular shaped member. Rocker arm 95 has a first end 90a connected to the first linkage 90 by a pin and a second end 90b that is connected to a post 100. Rocker arm 95 can rotate about the second end 90b. Post 100 is rigidly connected to the stationary platform 50′ and is stationary to provide support to rocker arm 95. The rocker arm 95 will rotate in response to the rotation of the first linkage 90. This rotation will cause an end 90c of the rocker arm 95 to move a second linkage 105 (
Turning now to
The food processor 10 further includes an orientation post 115. The orientation post 115 is a cylindrical-shaped resilient member that extends upwardly from the stationary platform 50′ through the blade platform 50. Post 115 may extend through an aperture formed in the blade platform 50. It should be appreciated that the orientation post 115 does not move relative to the stationary platform 50′. Post 115 is configured to correctly orient the blade platform 50 as the blade platform 50 moves in the direction of reference arrows B and C throughout use. Post 115 also supports the food processing canister 20 in an elevated position. Post 115 is optional, and the blade platform 50 may move in the directions B, C, without a post 115.
It should be appreciated that if the device 10 is larger, other additional posts may be necessary to support the food processing canister 20.
Turning now to
Primary motor 55 having high torque or a high revolution per minute (“RPM”) rating can be used to provide for increased chopping action. It should be appreciated that in another embodiment, instead of a rocker arm 95, an additional gear (not shown) may be used to move the second linkage 105 for vertical motion of the blade platform 50. Various gear configurations are possible and within the scope of the present disclosure, such as a hypoid gear, a planetary gear, or any other device to convert the rotational motion of the motor 60 to vertical action of linkage 105. It should be appreciated that drive shaft 55′ of motor 55 shown in
Turning now to
In this embodiment, the second motor 60 includes an axle 205 that is disposed parallel to the stationary platform 50′ and that is connected to the planet gear 80 as shown. In this aspect, the secondary motor 60 may rotate the sun gear 70, which in turn, rotates the planet gear 80. In response, the planet gear 80 may further be connected to the axle 205 to rotate the axle 205. Here, axle 205 rotates a secondary linkage system 210 connected to an opposite side of the blade platform 50. In this aspect, the food processor 10 includes a third linkage 105′ that is connected to the blade platform 50 by a pin 110′ at an opposite radial edge of the blade platform 50. In this manner, the rotational movement of planet gear 80 can be translated to a second planet gear (not shown) on an opposite side, which is a connected to a second rocker arm 95′ in a similar manner as described above. Second rocker arm 95′ is connected to the third linkage 105 in the same manner previously described with reference to
In this manner, the blade platform 50 may be supported on two or more radial sides or edges for support to move the spindle 25 which rotates the first and second blades 35, 40 in the direction of reference arrow A. Blade platform 50 may be supported in other locations besides the edges to move the spindle 25, and is not limited to being supported in the edges. This provides vertical motion in the direction of reference arrows B and C using both second linkage 105 and the third linkage 105′. It should be appreciated that the food processor 10 can be configured with blade platform 50 moving using only secondary linkage 105, for oscillatory, vertical motion, and third linkage 105 is optional. The secondary linkage system 210 forms no limitations to the food processor 10. It should also be appreciated that the food processor 10 may be configured with three or more linkages (not shown) with each connected to a different radial edge of the blade platform 50 and with each coupled to motor 60 by a linkage system for a controlled vertical motion. Again, the linkages are not limited to being supported on the radial edge of the blade platform 50, and various linkage to blade platform support configurations are envisioned. In yet a further embodiment, the apparatus may be formed with a single motor 55 instead of two motors 55, 60. The single motor 55 can be connected to a worm gear (not shown). The worm gear can be connected by a linkage to the single motor 55 for a spinning and reciprocating motion of the blades 35, 40. Various configurations are possible and within the scope of the present disclosure.
Turning now to
Turning now to the opposite end of the motor 205 shown as
This movement preferably is translated to move the entire motor 205 in a vertical manner. The motor's 205 vertical movement, will also move the drive shaft 215 that moves vertically the pair of blades 220a, and 220b to achieve an oscillating and rotating motion. Preferably, the motor 205 will cycle from between an upper limit and a lower limit, and repeat this vertical motion.
Preferably, in another embodiment, the motor 205 can be configured to only rotate, and then selectively move in a vertical manner to achieve the oscillating and rotating motion, when desired by the user. A switch, circuit, controller, or similar device may selectively actuate the rotation of the second drive shaft 215′. Alternatively, in yet another embodiment, the motor 205 can be configured to rotate together with the vertical motion at all times.
Preferably, the apparatus 200 also includes a gear 230 with a number of teeth that engages worm gear 225. During rotation of the worm gear 225, gear 230 will move in a similar manner, or cycle from between an upward motion, and a downward motion about the cam surface 265. Turning now to
The apparatus 200 also includes a blade platform 235. The blade platform 235, in this embodiment, is stationary and does not move. Preferably, the motor 205 includes the drive shaft 215 with a pair of blades 220a, 220b that extends over the blade platform 235. Preferably, the blade platform 235 includes an aperture 240 (
Preferably, a first link 245 is connected to blade platform 235 by a first pin 250 at a first end 255. First link 245 also includes an opposite second end 260. Preferably, the first link 245 also remains stationary during the upward and downward motion of the motor 205. Second end 260 of the first link 245 forms a camming surface 265, and the gear 230 preferably rotates about the camming surface 265 to translate the rotation of the worm gear 225 to the motor 205.
Gear 230 preferably includes a second link 270 (shown in
Preferably, in operation, the worm gear 225 will rotate in a counter clockwise manner shown by reference arrow A. The worm gear 225, thus, will rotate gear 230 in a first rotational manner. Preferably, the camming surface 265 is generally fixed relative to the gear 230, and the gear 230 is also connected to the motor 205 by third link 275. In operation, the gear 230 will rotate about the camming surface 265 as shown by reference arrow B. The gear 230 communicates with the motor 205 via the third link 275, and during rotation will drive the motor 205 in a cyclic manner or in a direction upwardly, or downwardly as shown in
As shown in
While this invention has been particularly shown and described with references to example embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the scope of the invention encompassed by the appended claims.