Priority is claimed to European Patent Application No. EP 19 186 089.9, filed on Jul. 12, 2019, the entire disclosure of which is hereby incorporated by reference herein.
The invention relates to a slicing machine for cutting slices of, in particular, extrudate-shaped cutting material, preferably foodstuffs.
EP 076 40 73 B1 discloses such a foodstuffs cutting machine with a machine housing and a circular blade. The circular blade is mounted on a bearing shaft, which is driven by a drive motor with a stator and a rotor. The bearing shaft is mounted exclusively in the region of the drive motor.
A cutting machine, which has a motor, a bearing shaft and a blade, which is arranged directly at one end of the bearing shaft, is discussed in WO 2007/130292A1. A controller adjusts the actual rotational speed of the blade to the desired rotational speed.
In state of the art cutting machines, the drive motor for the circular blade can only be positioned and aligned in the machine housing of the cutting machine by expending a great deal of time. It is difficult to seal the region of a motor tower of the cutting machine against dirt and liquid where the motor shaft projects through the housing toward the blade axis.
In an embodiment, the present invention provides a slicing machine for cutting slices of extrudate-shaped cutting material. The slicing machine has: a machine housing, which holds a drive motor and a rotating or circumferentially movable circular blade, which is driven by the drive motor; a product feed, which is configured to feed the cutting material to the circular blade; a stop plate; and a slidably arranged carriage, which is configured to feed the cutting material to the circular blade. The circular blade is mounted directly on a bearing shaft arranged in the drive motor for the circular blade. The drive motor comprises at least one stator and one rotor. The rotor is configured to be detachable from the stator. The stator is arranged in the machine housing. The machine housing has an insertion opening where, in the assembled state, the stator is arranged and through which the rotor is at least partially inserted into the stator. The slicing machine has an attachment device comprising at least one fastener that is configured to fasten the rotor and the stator to the machine housing.
Embodiments of the present invention will be described in even greater detail below based on the exemplary figures. The present invention is not limited to the exemplary embodiments. All features described and/or illustrated herein can be used alone or combined in different combinations in embodiments of the present invention. The features and advantages of various embodiments of the present invention will become apparent by reading the following detailed description with reference to the attached drawings which illustrate the following:
Embodiments of the present invention relate to a slicing machine for cutting slices of, in particular, extrudate-shaped cutting material, preferably foodstuffs, with a machine housing, which holds a drive motor and a rotating and/or circumferentially movable circular blade driven by the drive motor, and with a product feed, which supplies the cutting material to the circular blade. The slicing machine has a stop plate and a slidably arranged carriage, via which the cutting material is fed to the circular blade. The circular blade is mounted directly on a bearing shaft arranged in the drive motor for the circular blade. The drive motor includes at least one stator and one rotor.
Embodiments of the present invention provide an improved slicing machine along with an improved method for manufacturing the slicing machine such that the drive motor can be mounted and aligned at the machine housing comparatively simply and with little expenditure of time.
Certain improvements are achieved with regard to the device in a technically particularly simple and surprisingly effective manner by providing a slicing machine, which is characterized by the rotor being formed to be detachable from the stator. Thereby, the stator is arranged in the machine housing. The machine housing has an insertion opening where, in the assembled state, the stator is arranged and through which the rotor is at least partially inserted into the stator. The slicing machine has an attachment device for fastening the rotor and stator to the machine housing by means of fastening means.
The stator can be fastened inside the machine housing. The rotor can then be introduced from outside through the insertion opening into the machine housing and the stator. The motor is not mounted as an entire unit. The stator and rotor are mounted separately. This avoids a cumbersome introduction of the entire motor into the machine housing and an alignment of the rotor out of the machine housing, which involves a high expenditure of time. In particular, the stator is fastened from the inside in a motor tower of the slicing machine and the rotor is fastened from outside to the motor tower. The motor tower can be given a comparatively narrow design. The simplified installation of the motor is effected by the additional step, not known from the state of the art, of introducing the rotor into the stator after the arrangement of the stator (without the rotor and the bearing shaft) in the machine housing. In contrast, in the state of the art, the entire motor is always fastened on the inside and the motor shaft projects through the housing. The motor must be displaced from bottom to top inside the motor tower and the bearing shaft then guided through an opening in the machine housing. This is only possible when the motor tower has a very wide or non-integral design.
In a first embodiment of the present invention, the attachment device includes first through-openings for introducing the fastening means, which are arranged around the insertion opening. The through-openings are arranged in particular symmetrically around the insertion opening. Fastening means (fasteners), such as screws or bolts, can be introduced through the first through-openings.
In a development of this embodiment, the stator has fastening-means receptacles in the circumferential direction for receiving the fastening means. In particular, the fastening means can be fastened in the fastening-means receptacles.
In advantageous embodiments, the rotor has second through-openings in the circumferential direction for introducing the fastening means. In this embodiment, the fastening means are in particular guided through the second through-openings in order to fasten the rotor to the machine housing.
A preferred embodiment of the slicing machine is characterized in that the fastening-means receptacles of the stator and the second through-openings of the rotor can be positioned, at the first through-openings of the attachment device, with positive locking for the introduction of the fastening means. In this embodiment, the fastening means are in particular guided through the second through-openings of the rotor and through the first through-openings around the insertion opening and introduced into the fastening receptacles of the stator in which they are fastened, for example by being screwed into internal threads of the fastening receptacles. The rotor is then fastened to the motor housing and the stator. The stator is not screwed from the inside to the housing. The stator is moved from the inside only to the correct location, then the rotor is introduced into the stator from outside, and the fastening means, in particular bolts which bolt the rotor to the machine housing, also bolt the stator from the inside. The fastening receptacles of the stator act like nuts for these bolts.
A preferred embodiment of the slicing machine according to the present invention is characterized in that the bearing shaft is arranged in the rotor partially or entirely outside the machine housing. This makes a comparatively simple replacement of the bearing shaft possible.
In a further embodiment of the slicing machine, the insertion opening of the machine housing has a stepped recess or chamfer for the centering insertion of the rotor. Due to the chamfer, the stator and the rotor align themselves suitably when being fastened to the machine housing.
In another preferred embodiment, the slicing machine can be characterized by a holder for holding the stator and/or the rotor being arranged on the inner wall of the machine housing. In particular, the holder causes the stator and the rotor to align themselves automatically when being fastened to the machine housing, so that all components fit into one another during assembly. The stator is supported by the holder in a stable manner.
An advantageous embodiment is characterized by a protective cap being arranged on the rotor in the circumferential direction and in a manner abutting the machine housing and the circular blade. The protective cap is used to shield the rotor, in particular from dirt from the environment.
A further preferred embodiment is characterized by the rotor having a fastening part, which can be fastened to the machine housing and/or to the stator, in which the bearing shaft with the circular blade is mounted rotatably and is preferably fluid-sealed relative to the interior of the machine housing. The rotor can be fastened to the machine housing and/or the stator from outside by means of the fastening part.
According to a further advantageous embodiment, the slicing machine can be characterized in that the rotor has an abutment section, which on the one hand is firmly seated on the bearing shaft and is connected by a connecting section to ball bearings, which separate a holding section connected to the stator from the rotatable bearing shaft, wherein the connecting section has a narrower diameter than the abutment section and the holding section. By means of sections with different diameters, among other things the weight of the rotor can be reduced.
In a further preferred embodiment, the stator has an insertion ring for insertion into the insertion opening of the machine housing. When using such an insertion ring, the insertion opening can be formed with a smaller diameter than the outer diameter of the stator.
A further embodiment is characterized by the insertion opening having a circular or square cross-section.
A preferred embodiment of the slicing machine is characterized by an integrally formed motor tower. The drive motor can be installed comparatively easily within an integrally formed motor tower. For this purpose, the stator is introduced into the motor tower and is positioned at the insertion opening. The rotor is introduced into the stator through the insertion opening and fastened to the motor tower and the stator. After assembly, the stator is fastened on the inside of the motor tower and the rotor is fastened to the motor tower from outside.
A method for manufacturing slicing machines according to an embodiment of the present invention is also provided. This method can include the following steps:
In such a method, the drive motor can be mounted in the machine housing in a particularly simple manner. The stator can be introduced comparatively easily into the machine housing and positioned at the insertion opening. The rotor can then be arranged through the insertion opening partly on the outside of the machine housing and partly in the rotor. A positioning and aligning of the drive motor with the drive shaft in the machine housing, which is associated with a high expenditure of time, is therefore avoided.
Other features and advantages of the present invention will become apparent from the following detailed description of embodiments of the invention with reference to the figures in the drawing, which show exemplary details of embodiments of the invention. The individual features can be implemented individually or combined in any combination in variants of the invention.
In the schematic drawing, exemplary embodiments of the present invention are shown which are explained in more detail in the following description.
The spacer 22c has a narrower diameter than the abutment section 22a and the holding section 22b in order to save weight.
A fastening part 8 of the rotor 17 with which the rotor 17 can be fastened to the machine housing 11 comprises a projection 23 which in the assembled state abuts the machine housing 11.
The attachment device 25 comprises first through-openings 28 for introducing the fastening means 27, which are arranged around the insertion opening 18 of the machine housing 11. Second through-openings 30 are formed in the projection 23 of the rotor 17. The stator 16 has fastening-means receptacles in the circumferential direction for receiving and fastening the fastening means 27. Arrows 32 indicate the direction of insertion of the fastening means 27 through the first and second through-openings 29, 30 into the fastening-means receptacles of the stator 16.
While embodiments of the invention have been illustrated and described in detail in the drawings and foregoing description, such illustration and description are to be considered illustrative or exemplary and not restrictive. It will be understood that changes and modifications may be made by those of ordinary skill within the scope of the following claims. In particular, the present invention covers further embodiments with any combination of features from different embodiments described above and below. Additionally, statements made herein characterizing the invention refer to an embodiment of the invention and not necessarily all embodiments.
While embodiments of the invention have been illustrated and described in detail in the drawings and foregoing description, such illustration and description are to be considered illustrative or exemplary and not restrictive. It will be understood that changes and modifications may be made by those of ordinary skill within the scope of the following claims. In particular, the present invention covers further embodiments with any combination of features from different embodiments described above and below. Additionally, statements made herein characterizing the invention refer to an embodiment of the invention and not necessarily all embodiments.
Number | Date | Country | Kind |
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19 186 089.9 | Jul 2019 | EP | regional |