Adjustable I-C-AW Kneading Eccentric
20200037619 ยท 2020-02-06
Inventors
Cpc classification
International classification
Abstract
A device for kneading dough, in particular a kneading drum, has a rotationally driven inner kneading drum and a rotationally driven outer kneading drum. The inner kneading drum is arranged within the hollow outer kneading drum, in particular in a concentric. The device includes a kneading drive, by means of which the inner kneading drum can be driven or adjusted in an oscillating manner in the direction of the inner kneading drum axis relative to the outer kneading drum and/or so as to carry out a defined deflection at an angle about the axis of the inner kneading drum relative to the outer kneading. The outer kneading drum has a number of kneading recesses which are distributed over the circumference and/or along the length of the outer kneading drum in a uniform manner in.
Claims
1. A device for kneading dough, comprising a rotationally driven inner kneading drum and a rotationally driven outer kneading drum, such that the inner kneading drum is arranged inside the hollow outer kneading drum, wherein the device includes a kneading drive, by means of which the inner kneading drum can be driven or adjusted in an oscillating manner in the direction of the inner kneading drum axis relative to the outer kneading drum and/or so as to carry out a defined deflection at an angle about the axis of the inner kneading drum relative to the outer kneading drum, whereby the outer kneading drum has a number of kneading recesses which are distributed over the circumference and/or along the length of the outer kneading drum in a uniform manner, wherein the kneading recesses are designed such that a number of kneading chambers, said number corresponding to the number of kneading recesses, are formed between the outer kneading drum and the inner kneading drum, and a respective portion of dough can be introduced into each kneading chamber, said portion of dough being kneaded by the oscillating movement of the inner kneading drum relative to the outer kneading drum, whereby the kneading drive includes a kneading lever which is connected to the inner kneading drum at one end and is hinged to the crank protrusion of an eccentric crank at the other end, wherein the protrusion of the dough drive is adjustable, whereby the eccentric crank is mounted in an eccentrically rotatable manner in a setting shaft, and the setting shaft is rotatably mounted in the eccentric drive shaft of the eccentric crank such that the position of the crank protrusion is adjusted relative to the rotational axis of the eccentric drive shaft of the eccentric crank, thus modifying the deflection of the inner kneading drum relative to the outer kneading drum, when the setting shaft is rotated relative to the eccentric drive shaft.
2. The device according to claim 1, wherein the kneading drive includes an adjustment device, which is configured in such a way that the setting shaft can be adjusted by a defined angle relative to the eccentric drive shaft.
3. The device according to claim 1, wherein the eccentric drive shaft of the eccentric crank is rotatably connected with the eccentric drive by a large pair of cogwheels.
4. The device according to claim 1, wherein the setting shaft is rotatably connected with the eccentric drive by a small pair of cogwheels, such that the small drive shaft of the small pair of cogwheels is positioned and mounted in the large hollow drive shaft of the large pair of cogwheels.
5. The device according to claim 1, wherein the setting shaft can be connected by a coupling with the eccentric drive in a manner capable of transmitting torque.
6. The device according to claim 5, wherein the coupling is configured as a spring-loaded magnetic coupling, such that the connection of the eccentric drive with the setting shaft is configured in such a way that upon actuation of the magnet of the magnetic coupling, the connection of the eccentric drive with the setting shaft is severed.
7. The device according to claim 1, wherein the eccentric crank is connected with the eccentric drive shaft by a single universal joint for centerpoint compensation.
8. The device according to claim 1, wherein the kneading drive is mounted and supported in a gearbox, such that the gearbox is connected with the drive of the outer kneading drum, so that the gearbox co-rotates with the outer kneading drum upon driving the outer kneading drum.
9. The device according to claim 1, wherein the kneading drive includes a drive which is coupled with the drive of the outer kneading drum.
10. The device according to claim 1, wherein the inner kneading drum is connected with the drive of the outer kneading drum so that the inner kneading drum co-rotates with the outer kneading drum.
11. The device according to claim 1, wherein the inner kneading drum and the outer kneading drum are releasably and replaceably disposed on the device, so that kneading drums of various dimensions can be secured to the device.
12. A device for treating and kneading dough, comprising a device according to claim 1, such that the outer kneading drum is surrounded at least partly by a belt on its periphery, and such that dough can be incorporated from a dough drum into the kneading chambers of the device.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021] The present teaching is schematically depicted hereinafter with reference to the particularly advantageous embodiments, which however are not to be considered restrictive, in the drawings and it is described by way of example with reference to the drawings, which are as follows:
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
DETAILED DESCRIPTION
[0030] Shown in
[0031]
[0032] The kneading drive 10 is mounted or supported in a gearbox 18. The gearbox 18 is driven by a cogwheel 43 secured to the gearbox 18 and is co-rotated or rotated with the outer kneading drum 2.
[0033] The gear housing 44 of the device 100 is depicted in
[0034]
[0035] In this embodiment the coupling 17 is configured as a spring-loaded magnetic coupling, such that, with the electro-magnets disconnected, that is, in a condition without electric power, the coupling 17, by means of the spring mounted in the coupling 17, produces the connection between the large drive shaft 22 and the small drive shaft 25 or between the small drive shaft 25 and the eccentric drive 23. If at this point the electro-magnet of the coupling 17 is actuated, then the connection between the small drive shaft 25 and the large drive shaft 22 is severed and a relative movement of the large drive shaft 22 with respect to the small drive shaft 25 becomes possible. The coupling 17 can thus produce the contact between the small drive shaft 25 and the large drive shaft 22 by forming two cogwheel connections or other connecting elements known from the prior art. Alternatively, the coupling 17 can also function conversely, that is, in a currentless state, severing the connection of the small drive shaft 25 from the large drive shaft 22 or eccentric drive 23 and, contrary to it, severing the connection of the small drive shaft 25 with the large drive shaft 22 by spring-loading the coupling 17 in a currentless state. Alternatively, the coupling 17 can be configured as another coupling known from the prior art, for example as a multi-plate clutch, claw coupling or other types of coupling that can establish a dissoluble, adjustable connection, such as a setting gear, locking lever and the like, between the small drive shaft 25 and the large drive shaft 22.
[0036]
[0037] Hereinafter, the functioning of the preferred embodiment, described in
[0038] As shown in
[0039] If at this point the coupling 17 or the magnet of the magnetic coupling is actuated, the connection between the small drive shaft 25 and the large drive shaft 22 is severed. As a result of severing the connection between the small drive shaft 25 and the large drive shaft 22, the large drive shaft 22 is rotated by the eccentric drive 23 or pulley 28 relative to the small drive shaft 25. Thanks to the relative rotation of the large drive shaft 22 with respect to the small drive shaft 25, the large pair of cogwheels 21 is rotated in relation to the small pair of cogwheels 23. Thus, by means of the eccentric drive shaft 14, the eccentric crank 12, mounted eccentrically in the setting shaft 16, is rotated or shifted relative to the setting shaft 16 by a defined angle to the latter. The setting shaft 16 or its eccentric recess, in which the eccentric crank 12 is mounted, is shifted or rotated in the eccentric drive shaft 14 by means of the eccentric mounting of the eccentric crank 12 in the setting shaft 16 and the free running of the small pair of cogwheels 23 or their drive shaft 25 caused by the released coupling 17. The eccentricity x of the eccentric crank 12 and thus the deflection of the crank protrusion 13 is modified by the rotation of the setting shaft 16 relative to the eccentric drive shaft 14. If at this point the required eccentricity X is reached, the coupling 17 is closed again and the setting shaft 16 rotates again with the eccentric drive shaft 14, so that the eccentricity X is held constant.
[0040] The minimal eccentricity X.sub.min of the eccentric crank 12 in relation to the setting shaft 16 is depicted in
[0041] A preferred application of the inventive device 100 foresees that the latter is included in a device for treating and portioning dough, such that the outer kneading drum 2 is surrounded by a belt and the dough pieces are introduced, for instance from a dough drum, in defined portions into the kneading chambers 31 of the device 100. The device 100 is then co-rotated by means of the belt or with the belt and, by the relative movement of the inner kneading drum 1 in relation to the outer kneading drum 2, the dough pieces introduced into the kneading chambers 31 are shaped or kneaded and, after a defined rotation of the device 100 by an angle, are then removed by means of the belt from the kneading chambers 31 of the device 100.
[0042] Alternatively to the shifting by means of the small pair of cogwheels 24 and the large pair of cogwheels 21, the eccentric crank 12 can be rotated relative to the setting shaft 16, for example directly by an electro-motor, or other gearbox forms known from the prior art can be foreseen in place of the pairs of cogwheels.
[0043] An alternative embodiment foresees that the kneading drive 10 includes an adjusting device, with which the setting shaft 16 can be shifted by a defined angle with respect to the eccentric drive shaft 14. Thus, for example, the small pair of cogwheels 24 can include a separate power drive, which is powered in the same way as the power drive of the large pair of cogwheels 21, so that the small pair of cogwheels 24 rotates with the same angular speed as the large pair of cogwheels 21 and at a required shift the angular speed of the small pair of cogwheels 24 is modified relative to the angular speed of the large pair of cogwheels 21. In addition, an alternative calls for the setting shaft 16 to be driven directly, for example by an electro-motor, and in that way the shifting of the setting shaft 16 occurs with respect to the eccentric drive shaft 14.