FOOD MACHINE WITH VARIABLE RATIO MECHANISM AND CONTROL SYSTEM
20190011019 ยท 2019-01-10
Inventors
Cpc classification
B01F27/95
PERFORMING OPERATIONS; TRANSPORTING
F16H3/724
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A47J2043/04463
HUMAN NECESSITIES
F16H1/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F27/805
PERFORMING OPERATIONS; TRANSPORTING
F16H3/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F35/33
PERFORMING OPERATIONS; TRANSPORTING
F16H61/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A47J43/082
HUMAN NECESSITIES
International classification
F16H3/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A food processing machine includes a head extending over a bowl receiving location, the head including a rotatable output member for receiving a mixer tool. A drive system for effecting rotation of the rotatable output member includes a primary drive motor connected through a variable ratio transmission assembly to drive the output member, and a modulator motor linked to operate the variable ratio transmission assembly.
Claims
1. A food processing machine, comprising: a head extending over a bowl receiving location, the head including a rotatable output member for receiving a mixer tool; a drive system for effecting rotation of the rotatable output member, the drive system including a primary drive motor connected through a variable ratio transmission assembly to drive the output member and a modulator motor linked to operate the variable ratio transmission assembly.
2. The food processing machine of claim 1 wherein: the primary drive motor includes an output shaft, the variable ratio transmission assembly includes an input shaft coupled to the output shaft, the input shaft includes an eccentric cam within the variable ratio transmission assembly, where the eccentric cam is engaged to move an internal orbiting gear of the variable ratio transmission assembly, wherein the orbiting gear orbits relative to a control gear of the variable ratio transmission assembly, and the modulator motor is linked to effect rotation of the control gear.
3. The food processing machine of claim 2 wherein a plane of the orbiting gear and a plane of the control gear are parallel to each other.
4. The food processing machine of claim 3 wherein a face of the control gear includes a plurality of circumferentially spaced bushings that interact with a peripheral gear profile of the orbiting gear as the orbiting gear orbits within a perimeter defined by the circumferentially spaced bushings.
5. The food processing machine of claim 2 wherein the control gear is a worm wheel and the modulator motor drives the worm wheel through an associated worm.
6. The food processing machine of claim 2 wherein an output shaft of the variable ratio transmission assembly is coupled to an output plate internal of the variable ratio transmission assembly, wherein the output plate includes a plurality of pins passing through respective holes in the orbiting gear and orbiting movement of the orbiting gear rotates the output plate and the output shaft of the variable ratio transmission assembly.
7. The food processing machine of claim 1, further comprising: a controller coupled for controlling the primary drive motor and the modulator motor, the controller configured to effect single speed operation of the primary drive motor and single speed rotation of an input shaft of the variable ratio transmission assembly, wherein the controller is further configured to vary a speed of the modulator motor in order to control a speed of an output shaft of the variable ratio transmission assembly.
8. The food processing machine of claim 7 further comprising at least one sensor providing an input to the controller.
9. The food processing machine of claim 8 wherein the sensor is a speed indicator and the controller is configured to control the modulator motor to achieve a set speed for the output shaft of the variable ratio transmission assembly or a set speed for the output member.
10. The food processing machine of claim 7 wherein the controller is configured to define a speed of the modulator motor according to a type of food processing operation being carried out by the machine.
11. The food processing machine of claim 7 wherein the controller is configured to vary a speed of the modulator motor according to a food processing profile stored in memory of the controller.
12. The food processing machine of claim 8 wherein the sensor is a load sensor and the controller is configured to control the modulator motor to maintain a defined load setting or to achieve a defined load profile.
13. The food processing machine of claim 1 wherein the drive motor is a single speed motor and the modulator motor is a multi-speed motor.
14. A food processing machine, comprising: a head extending over a bowl receiving yoke, the head including a rotatable output member for receiving a mixer tool, the bowl receiving yoke mounted for movement up and down relative to the head; a drive system for effecting rotation of the rotatable output member, the drive system including a primary drive motor and a modulator motor, the primary drive motor operatively connected to an input of a variable ratio transmission assembly, the variable ratio transmission assembly including an output operatively connected to drive the output member, wherein the modulator motor is operatively connected to rotate a control wheel of the variable ratio transmission assembly, wherein rotation of the control wheel in a first direction results in an increase in speed of the output of the variable ratio transmission assembly and rotation of the control wheel in a second direction, opposite the first direction, results in a decrease in speed of the output of the variable ratio transmission assembly.
15. The food processing machine of claim 14 wherein the primary drive motor is a single speed motor and the modulator motor is a multi-speed motor.
16. The food processing machine of claim 14, further comprising: a controller coupled for controlling the primary drive motor and the modulator motor, wherein the controller is configured to vary a speed of the modulator motor in order to vary a speed of the output of the variable ratio transmission assembly.
17. The food processing machine of claim 16 further comprising at least one sensor providing an input to the controller.
18. The food processing machine of claim 17 wherein the controller is configured to control the modulator motor to achieve at least one of (i) a set speed for a component at an output side of the variable ratio transmission assembly, (ii) a defined speed profile for a component at an output side of the variable ratio transmission assembly, (iii) a defined load setting for a component, or (iv) a defined load profile for a component.
19. The food processing machine of claim 14 wherein the variable ratio transmission assembly includes an internal gear with a peripheral gear profiled that engages with an enclosing gear profile as the internal gear orbits.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
DETAILED DESCRIPTION
[0020] Referring to
[0021]
[0022] As seen in
[0023] More specifically, the operation of this system is as follows. The motor 52 (e.g., a single speed motor) will operate at constant speed, driving the input shaft 62 and eccentric cam plate 66. The modulator motor 56 will be controlled to operate at a variable speed, clockwise or counterclockwise, or even at zero speed, controlled by a system or machine controller. The modulator motor 56 can, for example, be a small variable speed induction motor, a brushless permanent magnet motor, a stepper motor, or other rotating electric machine capable of operating at a variable speed in response to a control signal.
[0024] Equation (1) below shows the basic mathematical relationships of this variable ratio transmission assembly:
OUTPUT_RPM=(INPUT_RPM)(P/L1)(MODULATOR_RPM)(N/M)(Eq. 1)
[0025] where,
[0026] OUTPUT_RPM=the rotating speed of the output shaft 64,
[0027] INPUT_RPM=the rotating speed of the input shaft 62,
[0028] P=the number of teeth on the orbiting internal gear 76,
[0029] L=the number of bushings 78 on the worm wheel housing,
[0030] N=the number of threads on the worm 58,
[0031] M=the number of teeth on the worm wheel 60, and
[0032] The sign indicates that the modulator motor speed can be controlled to take place clockwise or counterclockwise.
[0033] If the modulator motor speed is set at zero, then:
OUTPUT_RPM=(INPUT_RPM)(P/L1)
[0034] The machine 10 with this drive system 50 has the ability to operate at a variety of speeds to perform diverse food processing and food preparation functions. The machine controller 100 can detect functions and other conditions of the machine and control mixing shaft output speed accordingly.
[0035] The proposed drive system may utilize a set of sensors (e.g., 102 in
[0036] Notably, the variable speed operation and control of such a machine 10 is implemented without an inverter drive, resulting in lower cost, better reliability, and lack of electromagnetic noise, harmonics, and interference characteristic of inverter drive operation. The number of gears is reduced, and the overall construction of the transmission results in a set of two shafts with only one gear, and one worm, with the motor rotation collinear and aligned with the food preparation mechanism rotation. This arrangement can reduce the number of gears down from four in existing food preparation and food processing machines, and the number of shafts may be reduced from four in existing machines, down to two. This construction also reduces the number of bearings required to support the transmission, and simplifies the geometry of the housing required to support the transmission system.
[0037] The machine 10 with drive system 50 also allows for speed control that can deliver a wide range of control performance, including fast and slow ramp up, fast and slow ramp down, and consistent speed control of the food processing mechanism regardless of the torque load. Precise speed control intended to deliver consistent food processing recipe execution for superior results, regardless of the mechanical load imposed by the food material during the food processing function is possible. If the mechanical load is significant, the operation of the motor 52 can result in reduced speed and increased slip. The subject drive system will sense the reduction in speed, and compensate for it to bring the system back to a desired speed set point by increasing the speed of the modulator motor 56 and injecting more power to the transmission.
[0038] Such a machine 10 with drive system 50 also obviates the need for gear sets and other speed shifting mechanisms required to change speed in food processing machines of the prior art, producing a smooth transition of speeds from set point to set point, with the desired ramping or acceleration rates intended to improve the food processing/food preparation function. An additional advantage of this drive/transmission is that it is not reversible. This attribute means that, whereas either the modulator motor 56 or the single speed motor 52 can effectively drive the food processing mechanism through the output shaft 64, the output shaft 64 cannot effectively force the rotation of the electric motor 52 backwards or the modulator motor 56 backwards. This attribute results in a quick ramp down of speed as soon as either one or both motors (modulator motor or single speed motor) loses electrical power.
[0039] Per the high level control diagram 110 of
[0040] It is to be clearly understood that the above description is intended by way of illustration and example only, is not intended to be taken by way of limitation, and that other changes and modifications are possible.