Mixing device, in particular bulk material mixing device

10751677 · 2020-08-25

Assignee

Inventors

Cpc classification

International classification

Abstract

A mixing device, in particular bulk material mixing device, with at least one mixing container comprises a receiving region for receiving a material to be mixed, with at least one mixing unit which is configured for mixing the material to be mixed that is present in the mixing container, and with at least one lump breaker unit comprising at least one cutter element which protrudes into the mixing container, wherein the at least one lump breaker unit is arranged in a frontal region of the mixing container.

Claims

1. A mixing device, comprising: at least one mixing container with a receiving region for receiving a material to be mixed, the mixing container comprises a first end wall having an opening, a second end wall, a circumferential lateral wall, and a pivot door attached to the first end wall to cover the opening, wherein and the mixing container has a cylindrical basis shape in which the receiving region comprises a middle region and two end regions arranged on opposite sides of the middle region, and wherein the first end wall, the second end wall, and the circumferential lateral wall delimit the receiving region; a discharge opening in the circumferential lateral wall; a shutter for closing the discharge opening; at least one mixing unit configured for mixing the material to be mixed that is present in the mixing container, wherein the at least one mixing unit is supported one-sidedly and comprises at least one mixer shaft; and at least one lump breaker unit comprising at least one cutter element that protrudes into the mixing container, wherein the at least one lump breaker unit is arranged in one of the two end regions of the mixing container, and the pivot door is different from the shutter.

2. The mixing device according to claim 1, wherein a rotary axis of the cutter element of the at least one lump breaker unit extends at least substantially in parallel to a rotary axis of the at least one mixer shaft of the one-sidedly supported mixing unit.

3. The mixing device according to claim 1, wherein the at least one mixing unit comprises at least two mixer shafts extending substantially in parallel to each other.

4. The mixing device according to claim 3, wherein the at least one cutter element of the lump breaker unit is arranged at least partly between the at least two mixer shafts of the at least one mixing unit.

5. The mixing device according to claim 1, wherein the at least one cutter element of the lump breaker unit intersects with a rotary axis of the mixer shaft of the at least one mixing unit.

6. The mixing device according to claim 1, wherein the receiving region of the at least one mixing container comprises at least one bulge which is located outside a mixing zone of the at least one mixer shaft and into which the at least one cutter element of the lump breaker unit protrudes.

7. The mixing device according to claim 1, wherein viewed in a plane that is perpendicular to a rotary axis of the at least one cutter element, the at least one cutter element of the lump breaker unit comprises a cutter impact surface, the area value of which amounts to at least 2% of an area value of a wall surface of an end wall of the mixing container.

8. A method for operating a mixing device according to claim 1, wherein in at least one first method step the material to be mixed is transported to the cutter element of the at least one lump breaker unit of the mixing device by means of the mixer shaft of the mixing unit of the mixing device, wherein in at least one further method step the material to be mixed is transported away from the cutter element of the at least one lump breaker unit by means of the mixer shaft of the mixing unit of the mixing device.

9. The mixing device according to claim 1, wherein the first end wall and the second end wall extend substantially vertically.

10. The mixing device according to claim 1, wherein the first end wall and the second end wall respectively extend in a plane that is perpendicular to the middle axis of the receiving region.

11. The mixing device according to claim 1, wherein a main extension direction of the mixing container extends substantially horizontally during operation, wherein a rotary axis of the mixer shaft extends substantially in parallel to the main extension direction of the mixing container.

12. A mixing device, comprising: at least one mixing container with a receiving region for receiving a material to be mixed, the mixing container comprises a first end wall having an opening, a second end wall, a circumferential lateral wall, and a pivot door attached to the first end wall to cover the opening, wherein the mixing container has a cylindrical basis shape in which the receiving region comprises a middle region and two end regions arranged on opposite sides of the middle region, wherein the first end wall, the second end wall, and the circumferential lateral wall delimit the receiving region; a discharge opening in the circumferential lateral wall; a shutter for closing the discharge opening; at least one mixing unit configured for mixing the material to be mixed that is present in the mixing container, wherein the at least one mixing unit is supported one-sidedly and comprises at least two mixer shafts, wherein the mixer shafts of the mixing unit comprise rotary axes, which extend in parallel; and at least one lump breaker unit comprising at least one cutter element which protrudes into the mixing container, wherein the at least one lump breaker unit is arranged in one of the two end regions of the mixing container, wherein the at least one cutter element of the lump breaker unit is arranged at least partly between the at least two mixer shafts of the at least one mixing unit, wherein a rotary axis of the cutter element and the rotary axes of the mixer shafts of the mixing unit are arranged offset with respect to one another, wherein the pivot door is different from the shutter element.

13. A mixing device, comprising: a cylindrical mixing container that includes a flat front wall having a front opening, a flat rear wall, and a cylindrical sleeve that has a top inlet, lateral sides that connect the flat front wall to the flat rear wall, and a curved bottom having a bottom outlet; a door attached to the flat front wall by hinges to open and close the front opening, the door extends parallel to the flat front wall; a shaft bearing located in the door; a lump breaker having one or more blades attached to a shaft, the shaft is rotatably supported by the shaft bearing with a rotary axis perpendicular to the door; a mixing shaft that extends perpendicular from the flat rear wall, and one or more bulges that outwardly protrude from the curved bottom of the cylindrical sleeve underneath one or more of the mixing shaft and the shaft of the lump breaker.

Description

DRAWINGS

(1) Further advantages will become apparent from the following description of the drawings. In the drawings five exemplary embodiments of the invention are shown. The drawings, the description and the claims contain a plurality of features in combination. Someone skilled in the art will purposefully also consider the features separately and will find further expedient combinations.

(2) It is shown in:

(3) FIG. 1 a mixing device according to the invention, with a mixing container, with a one-sidedly supported mixing unit and with a lump breaker unit, in a schematic presentation, in an operating state,

(4) FIG. 2 the mixing device according to the invention, with the mixing container, with the one-sidedly supported mixing unit and with the lump breaker unit, in a schematic presentation, in an opened state,

(5) FIG. 3 the mixing device according to the invention, with the mixing container, with the one-sidedly supported mixing unit and with the lump breaker unit comprising a cutter element, in a schematic sectional view along the section line III-III,

(6) FIG. 4 the mixing device according to the invention, with the mixing container, with the one-sidedly supported mixing unit and with the lump breaker unit comprising the cutter element, in a schematic sectional view along the section line IV-IV,

(7) FIG. 5 a schematic flow chart of a method for operating the mixing device,

(8) FIG. 6 an alternative mixing device according to the invention, with a mixing container, with a one-sidedly supported mixing unit and with a lump breaker unit, in a schematic sectional view perpendicularly to a rotary axis of the mixing unit,

(9) FIG. 7 a further alternative mixing device according to the invention, with a mixing container, with a two-sidedly supported mixing unit and with a lump breaker unit, in a schematic sectional view in parallel to a rotary axis of the mixing unit,

(10) FIG. 8 another alternative mixing device according to the invention, with a mixing container, with a mixing unit and with a lump breaker unit, in a schematic presentation, in an operating state, and

(11) FIG. 9 a further alternative mixing device according to the invention, with a mixing container, with a two-sidedly supported mixing unit and with a lump breaker unit, in a schematic sectional view in parallel to a rotary axis of the mixing unit.

DESCRIPTION OF THE EXEMPLARY EMBODIMENTS

(12) FIGS. 1 and 2 show a mixing device 10a. The mixing device 10a is implemented by a bulk material mixing device. The mixing device 10a is implemented by a bulk material batch mixing device. The mixing device 10a is embodied by a two-shaft mixer. The mixing device 10a is embodied as a horizontally positioned dual-shaft mixer. Preferably the mixing device 10a may be configured for batch mixing processes as well as for continuous mixing processes. Principally however a different implementation of the mixing device 10a, deemed expedient by someone skilled in the art, would also be conceivable. A structure could principally also be applied for a single-shaft mixer correspondingly. By means of the mixing device 10a, by incidental particle exchange, in particular dispersion, and by selective dividing-up and mingling, in particular convection, a homogeneous mixing of different materials to be mixed is achieved. The mixing device 10a is configured for mixing solid matters as well as mixing solid matters with liquids. Principally however a different usage deemed expedient by someone skilled in the art would also be conceivable.

(13) The mixing device 10a comprises a mixing container 12a. The mixing container 12a has a cylindrical basis shape. A main extension direction 50a of the mixing container 12a extends substantially horizontally during operation. The mixing container 12a therefore has a horizontally cylindrical basis shape. Furthermore the mixing container 12a implements a housing of the mixing device 10a. The mixing container 12a comprises an outer sleeve 48a. The outer sleeve 48a comprises a plurality of feet supporting the mixing container 12a. The mixing container 12a is preferably mounted on a rack (not shown in detail) via the feet of the outer sleeve 48a. The outer sleeve 48a is substantially made of metal. Principally however a different material implementation, deemed expedient by someone skilled in the art, would also be conceivable. The mixing container 12a further comprises a receiving region 14a for receiving a material to be mixed. The receiving region 14a has a cylindrical shape. Along a middle axis, viewed in a plane that is perpendicular to the middle axis, the receiving region 14a features a constant cross section. The middle axis of the receiving region 14a extends in parallel to the main extension direction 50a of the mixing container 12a. The receiving region 14a is partially delimited by the outer sleeve 48a of the mixing container 12a. The receiving region 14a is on an encompassing surface delimited by the outer sleeve 48a of the mixing container 12a. Furthermore the mixing container 12a comprises two end walls 24a, 52a. The end walls 24a, 52a close the mixing container 12a on two opposite ends of the outer sleeve 48a. The end walls 24a, 52a delimit the receiving region 14a on opposite ends along the middle axis of the receiving region 14a. The end walls 24a, 52a respectively extend in a plane that is perpendicular to the middle axis of the receiving region 14a. The mixing container 12a comprises, in the region of an end wall 24a, a pivot door 36a. The pivot door 36a is arranged in the end wall 24a. The end wall 24a of the mixing container 12a is substantially completely embodied by the pivot door 36a. The pivot door 36a serves in particular for making the receiving region 14a of the mixing container 12a accessible. The pivot door 36a is embodied by a front door. FIG. 2 shows the pivot door 36a in an opened state.

(14) Furthermore the mixing device 10a comprises a mixing unit 16a, which is supported in a one-sided manner. The one-sidedly supported mixing unit 16a is configured for mixing the material to be mixed that is present in the mixing container 12a. The mixing unit 16a is one-sidedly supported in an end wall 52a of the mixing container 12a. The mixing unit 16a is embodied by a shaft-mixing unit. The one-sidedly supported mixing unit 16a comprises at least one mixer shaft 26a, 28a. The one-sidedly supported mixing unit 16a comprises two mixer shafts 26a, 28a. The mixer shafts 26a, 28a extend substantially in parallel to one another. The mixer shafts 26a, 28a of the mixing unit 16a comprise rotary axes 32a, 34a, which extend in parallel. The rotary axes 32a, 34a of the mixer shafts 26a, 28a respectively extend in parallel to the main extension direction 50a of the mixing container 12a. The mixer shafts 26a, 28a are each supported in a one-sided manner. The mixer shafts 26a, 28a are embodied by one-sidedly supported free-running mixing tools. The mixer shafts 26a, 28a are each supported in the end wall 52a of the mixing container 12a. For this purpose, a bearing for the mixer shafts 26a, 28a is arranged in the end wall 52a. The mixer shafts 26a, 28a are each configured of a shaft 54a, 56a as well as of a plurality of mixing elements 58a, 60a arranged on a circumference of the shaft 54a, 56a. The shafts 54a, 56a of the mixer shafts 26a, 28a are each embodied by a circle-cylindrical full shaft. Principally however a different implementation of the shafts 54a, 56a, deemed expedient by someone skilled in the art, would also be conceivable, e.g. as a hollow shaft. In case of an implementation of the shaft 54a, 56a as a hollow shaft, it would principally be conceivable that fluids, in particular liquids, could be introduced via a hollow space of the shaft 54a, 56a. In particular, liquids could be introduced into the receiving region 14a via the shaft. The mixing elements 58a, 60a are respectively embodied by paddles. Principally however a different implementation of the mixing elements 58a, 60a, deemed expedient by someone skilled in the art, would also be conceivable. During operation the mixer shafts 26a, 28a are arranged substantially in the receiving region 14a of the mixing container 12a. The mixer shafts 26a, 28a protrude into the receiving region 14a. The mixer shafts 26a, 28a define in the receiving region 14a respectively one circle-cylindrical mixing zone, in which a direct mixing is carried out by the respective mixer shaft 26a, 28a. The shafts 54a, 56a of the mixer shafts 26a, 28a protrude at one end through the end wall 52a out of the receiving region 14a, and are in the receiving region 14a driven by a drive unit 62a. The drive unit 62a drives the two mixer shafts 26a, 28a via a gearing, which is not shown. The drive unit 62a drives the two mixer shafts 26a, 28a rotationally. The drive unit 62a is embodied by a motor. The drive unit 62a is embodied by an electromotor. The mixing unit 16a is embodied in such a way that it is completely deployable out of the mixing container 12a. Deployment is effected via a deployment carriage (not shown in detail), on which the mixing unit 16a is mounted and which is guided on extension rails (not shown in detail). In a deployment, the drive unit 62a and the end wall 52a are moved as well. By a deployment of the mixing unit 16a, the mixer shafts 26a, 28a may be pulled out of the mixer easily and completely. In this way, the whole mixing container 12a is advantageously accessible for cleaning.

(15) The mixing device 10a moreover comprises a lump breaker unit 18a. The lump breaker unit 18a is configured for comminuting clumpings that have occurred in the material to be mixed during operation of the mixing device 10a. The lump breaker unit 18a is arranged in a frontal region 22a of the mixing container 12a. The lump breaker unit 18a is arranged on a side of the receiving region 14a that is situated opposite the bearing point of the mixing unit 16a, in a frontal region 22a of the mixing container 12a. The lump breaker unit 18a is arranged in an end region of the mixing container 12a. The lump breaker unit 18a is arranged in the end wall 24a of the mixing container 12a. The lump breaker unit 18a is arranged in the end wall 24a of the mixing container 12a, which is situated opposite the end wall 52a, which the mixing unit 16a is supported in. The end wall 24a is arranged on a bottom side of the cylindrical mixing container 12a. The lump breaker unit 18a is arranged in the pivot door 36a of the mixing container 12a. The lump breaker unit 18a is arranged in the pivot door 36a of the end wall 24a of the mixing container 12a. Via the pivot door 36a, the lump breaker unit 18a is pivotable out of the receiving region 14a of the mixing container 12a. When the pivot door 36a is opened, the lump breaker unit 18a is pivoted as well (FIG. 2). The lump breaker unit 18a comprises a cutter element 20a, which protrudes into the mixing container 12a. Principally it would also be conceivable that the lump breaker unit 18a comprises a plurality of cutter elements 20a which are, for example, arranged side by side. The cutter element 20a protrudes into the mixing container 12a for a direct comminution of clumpings. The cutter element 20a implements a tool of the lump breaker unit 18a. The cutter element 20a comprises a shaft 64a, which protrudes through the pivot door 36a of the end wall 24a. In the pivot door 36a a bearing 66a for the shaft 64a is accommodated. On an outer side of the pivot door 36a, a drive unit 68a of the lump breaker unit 18a is arranged, which is configured for driving the cutter element 20a during operation. The drive unit 68a drives the shaft 64a of the cutter element 20a rotationally. The cutter element 20a further comprises a plurality of blades 70a. The cutter element 20a comprises two blades 70a. The blades 70a are each implemented by a double-blade implementing respectively one cutting edge on both sides of a rotary axis. Principally however a different number and/or implementation of the blades 70a, deemed expedient by someone skilled in the art, would also be conceivable. The blades 70a are respectively arranged on a free side of the shaft 64a, which faces away from the drive unit 68a. The blades 70a are each arranged on an end of the shaft 64a, which protrudes into the receiving region 14a. The blades 70a are arranged offset to each other by 90. Principally however a different implementation of the cutter element 20a, deemed expedient by someone skilled in the art, would also be conceivable. The cutter element 20a is supported in a one-sided manner. The cutter element 20a is supported on a side of the receiving region 14a that is situated opposite the bearing point of the mixer shafts 26a, 28a of the mixing unit 16a (FIGS. 1 and 3).

(16) A rotary axis 30a of the cutter element 20a of the lump breaker unit 18a extends substantially in parallel to the rotary axes 32a, 34a of the mixer shafts 26a, 28a of the one-sidedly supported mixing unit 16a. The rotary axis 30a of the cutter element 20a of the lump breaker unit 18a is arranged offset to the rotary axes 32a, 34a of the mixer shafts 26a, 28a. Furthermore the cutter element 20a of the lump breaker unit 18a is partially arranged between the two mixer shafts 26a, 28a of the mixing unit 16a. The cutter element 20a is arranged, at least with a partial region, viewed in a plane that is perpendicular to the rotary axes 32a, 34a of the mixer shafts 26a, 28a, between the at least two mixer shafts 26a, 28a. The cutter element 20a of the lump breaker unit 18a furthermore intersects with a rotary axis 32a of the first mixer shaft 26a of the mixing unit 16a. During operation the cutter element 20a of the lump breaker unit 18a intersects with the rotary axis 32a of the first mixer shaft 26a of the mixing unit 16a in at least one rotational position of the cutter element 20a. The rotary axis 30a of the cutter element 20a of the lump breaker unit 18a is offset to the rotary axis 32a of the first mixer shaft 26a wherein, during operation, the blades 70a of the cutter element 20a intersect with the rotary axis 32a of the first mixer shaft 26a depending on a rotational position. The first mixer shaft 26a comprises a recess in a region of the cutter element 20a, allowing the cutter element 20a intersecting with the rotary axis 32a of the first mixer shaft 26a of the mixing unit 16a. The first mixer shaft 26a of the mixing unit 16a is shortened and does not protrude up to the end wall 24a of the mixing container 12a, which the lump breaker unit 18a is arranged in. The first mixer shaft 26a of the mixing unit 16a is shortened with respect to the second mixer shaft 28a. The cutter element 20a is arranged at least partly below an imaginary plane extending through the rotary axes 32a, 34a of the mixer shafts 26a, 28a. The rotary axis 30a of the cutter element 20a is arranged below an imaginary plane extending through the rotary axes 32a, 34a of the mixer shafts 26a, 28a (FIG. 3).

(17) The cutter element 20a of the lump breaker unit 18a comprises, viewed in a plane that is perpendicular to the rotary axis 30a of the cutter element 20a, a cutter impact surface A.sub.1. The cutter impact surface A.sub.1 extends in parallel to a main extension plane of the cutter element 20a. Furthermore the cutter impact surface A.sub.1 extends in parallel to a main extension plane of the end wall 24a of the mixing container 12a. The cutter impact surface

(18) A.sub.1 is implemented by a circle area, the radius of which is equivalent to a radius of the cutter element 20a. An area value of the cutter impact surface A.sub.1 is at least 2% of an area value of a wall surface A.sub.2 of the end wall 24a of the mixing container 12a. The area value of the cutter impact surface A.sub.1 is approximately 4% of the area value of the wall surface A.sub.2 of the end wall 24a of the mixing container 12a. Principally however a different area ratio that is deemed expedient by someone skilled in the art would also be conceivable. The wall surface A.sub.2 of the end wall 24a extends in parallel to a main extension plane of the end wall 24a. The wall surface A.sub.2 is arranged on a side of the end wall 24a that faces towards the receiving region 14a of the mixing container 12a (FIG. 4).

(19) FIG. 5 shows a flow chart of a method for operating the mixing device 10a. FIG. 5 shows a flow chart of a mixing method. During the method a mixing of a material to be mixed, which is fed to the mixing device 10a, is carried out. A mixing of solid matters as well as a mixing of solid matters with liquids is carried out. For this purpose a liquid input is effected during a method (not shown in detail). For this purpose, for example, liquid is sprayed into the receiving region 14a by a nozzle or by a plurality of nozzles. Furthermore, during the method, in a first method step 44a, a material to be mixed is transported to the cutter element 20a of the lump breaker unit 18a of the mixing device 10a by means of the first mixer shaft 26a of the mixing unit 16a of the mixing device 10a. The mixing elements 58a of the first mixer shaft 26a, which are embodied as paddles, are for this purpose oriented in such a way that a material to be mixed that is present in the mixing zone of the first mixer shaft 26a is transported to the cutter element 20a of the lump breaker unit 18a of the mixing device 10a by means of the mixing elements 58a. The material to be mixed is herein transported towards the cutter element 20a along the rotary axis 32a of the first mixer shaft 26a. Then, in a second method step 72a, clumpings in the material to be mixed are destroyed by means of the cutter element 20a of the lump breaker unit 18a. The material to be mixed is moreover partly conveyed, in particular hurled, into the mixing zone of the second mixer shaft 28a by the cutter element 20a. Following this, in a further method step 46a, material to be mixed is transported away from the cutter element 20a of the lump breaker unit 18a by means of the second mixer shaft 28a of the mixing unit 16a of the mixing device 10a. The mixing elements 60a of the second mixer shaft 28a, which are embodied as paddles, are for this purpose oriented in such a way that a mixing material conveyed into the mixing zone of the second mixer shaft 28a by the cutter element 20a of the lump breaker unit 18a is transported away from the cutter element 20a of the lump breaker unit 18a by the mixing elements 60a. The material to be mixed is herein transported away from the cutter element 20a along the rotary axis 34a of the second mixer shaft 28a. Then the first method step 44a is repeated. The material to be mixed is hence partly conveyed through the mixing container 12a cyclically.

(20) In FIGS. 6 to 9 four further exemplary embodiments of the invention are shown. The following descriptions are substantially limited to the differences between the exemplary embodiments, wherein regarding structural components, features and functions that remain the same, the description of the other exemplary embodiments, in particular of FIGS. 1 to 5, may be referred to. For distinguishing between the exemplary embodiments, the letter a in the reference numerals of FIGS. 1 to 5 has been replaced by the letters b to e in the reference numerals of the exemplary embodiments of FIGS. 6 to 9. As regards structural components with the same denomination, in particular structural components having the same reference numerals, principally the drawings and/or description of the other exemplary embodiments, in particular of FIGS. 1 to 5, may also be referred to.

(21) FIG. 6 shows a mixing device 10b with a mixing container 12b, with a one-sidedly supported mixing unit 16b and with a lump breaker unit 18b. The one-sidedly supported mixing unit 16b is configured for mixing the material to be mixed that is present in the mixing container 12b. The mixing unit 16b is embodied by a shaft-mixing unit. The one-sidedly supported mixing unit 16b comprises two mixer shafts 26b, 28b. The mixer shafts 26b, 28b extend substantially in parallel to one another. The two mixer shafts 26b, 28b of the mixing unit 16b comprise rotary axes 32b, 34b running in parallel. The mixer shafts 26b, 28b each respectively define, in a receiving region 14b of the mixing container 12b, a circle-cylindrical mixing zone 38b, 40b in which a direct mixing is effected by the respective mixer shaft 26b, 28b. The mixer shafts 26b, 28b protrude along a main extension direction of the mixing container 12b through the entire receiving region 14b. The mixer shafts 26b, 28b protrude with a free end up to shortly before an end wall 24b of the mixing container 12b.

(22) The mixing container 12b furthermore comprises the receiving region 14b for receiving a material to be mixed. The receiving region 14b has a substantially cylindrical shape. The receiving region 14b of the mixing container 12b comprises a bulge 42b that is situated outside the mixing zones 38b, 40b of the mixer shafts 26b, 28b. The bulge 42b is implemented by a circle-portion cylindrical bulge. The bulge 42b is only configured in a frontal region 22b of the mixing container 12b. Principally however it would also be conceivable that the bulge 42b could extend over a full length of the mixing container 12b. The bulge 42b abuts on an end wall 24b of the mixing container 12b. The bulge 42b is arranged below the rotary axes 32b, 34b of the mixer shafts 26b, 28b.

(23) During operation of the mixing device 10b, the lump breaker unit 18b is also configured for a comminution of clumpings that have occurred in the material to be mixed. The lump breaker unit 18b is arranged in a frontal region 22b of the mixing container 12b. The lump breaker unit 18b is arranged, on a side of the receiving region 14b that is situated opposite a bearing point of the mixing unit 16b, in a frontal region 22b of the mixing container 12b. The lump breaker unit 18b is arranged in the end wall 24b of the mixing container 12b. The lump breaker unit 18b is arranged in a pivot door 36b of the end wall 24b of the mixing container 12b. The lump breaker unit 18b comprises a cutter element 20b protruding into the mixing container 12b. A rotary axis 30b of the cutter element 20b of the lump breaker unit 18b extends substantially in parallel to the rotary axes 32b, 34b of the mixer shafts 26b, 28b of the one-sidedly supported mixing unit 16b. The rotary axis 30b of the cutter element 20b of the lump breaker unit 18b is arranged offset to the rotary axes 32b, 34b of the mixer shafts 26b, 28b. Furthermore the cutter element 20b of the lump breaker unit 18b is partially arranged between the two mixer shafts 26b, 28b of the mixing unit 16b. The cutter element 20b is arranged substantially outside the mixing zones 38b, 40b of the mixer shafts 26b, 28b. The cutter element 20b is arranged substantially within the bulge 42b. The cutter element 20b of the lump breaker unit 18b protrudes into the bulge 42b.

(24) FIG. 7 shows a mixing device 10c with a mixing container 12c, with a two-sidedly supported mixing unit 16c and with a lump breaker unit 18c. The two-sidedly supported mixing unit 16c is configured for mixing the material to be mixed that is present in the mixing container 12c. The mixing unit 16c is implemented by a shaft-mixing unit. The mixing unit 16c comprises two mixer shafts 26c. It would however principally also be conceivable that the mixing unit 16c comprises only one mixer shaft 26c. A construction may principally also be applied to a single-shaft mixer correspondingly. The mixer shafts 26c extend substantially in parallel to one another. The two mixer shafts 26c of the mixing unit 16c have rotary axes 32c, 34c extending in parallel. The mixer shafts 26c protrude through the entire receiving region 14c along a main extension direction of the mixing container 12c. The mixer shafts 26c are each supported on both ends.

(25) Beyond this, the mixing container 12c comprises the receiving region 14c for receiving a material to be mixed. The receiving region 14c has a cylindrical shape. The receiving region 14c of the mixing container 12c comprises a bulge 42c that is located outside a mixing zone of the mixer shafts 26c. The bulge 42c is embodied by a circle-portion cylindrical bulge. Principally however, for example, a rectangular embodiment of the bulge 42 would also be conceivable. The bulge 42c extends over an entire length of the mixing container 12c. The bulge 42c abuts on an end wall 24c of the mixing container 12c. The bulge 42c is arranged below the rotary axes 32c, 34c of the mixer shafts 26c. On an underside of the bulge 42c a discharge opening 74c of the mixing device 10c is arranged.

(26) Furthermore, the lump breaker unit 18c is configured, during operation of the mixing device 10c, for a comminution of clumpings that have occurred in the material to be mixed. The lump breaker unit 18c is arranged in a frontal region 22c of the mixing container 12c. The lump breaker unit 18c is arranged, on a side of the receiving region 14c that is situated opposite the bearing point of the mixing unit 16c, in a frontal region 22c of the mixing container 12c. The lump breaker unit 18c is arranged in the end wall 24c of the mixing container 12c. The lump breaker unit 18c comprises at least one cutter element 20c protruding into the mixing container 12c. The lump breaker unit 18c comprises a plurality of cutter elements 20c protruding into the mixing container 12c. The cutter elements 20c have a shared shaft 64c, which protrudes through the end wall 24c. In the end wall 24c a bearing for the shaft 64c is accommodated. On an outer side of the end wall 24c a drive unit 68c of the lump breaker unit 18c is arranged, which is configured for driving the cutter elements 20c during operation. The drive unit 68c drives the shaft 64c of the cutter elements 20c rotationally. The shaft 64c of the cutter elements 20c is supported in a two-sided manner. The shaft 64c of the cutter elements 20c is supported on both end walls 24c, 52c of the mixing container 12c. A rotary axis 30c of the cutter elements 20c of the lump breaker unit 18c extends substantially in parallel to the rotary axes 32c, 34c of the mixer shafts 26c of the mixing unit 16c. The rotary axis 30c of the cutter elements 20c of the lump breaker unit 18c is arranged offset to the rotary axes 32c, 34c of the mixer shafts 26c. Furthermore the cutter elements 20c of the lump breaker unit 18c are partially arranged between the two mixer shafts 26c of the mixing unit 16c. The cutter elements 20c are arranged substantially outside the mixing zones of the mixer shafts 26c. The cutter elements 20c are arranged substantially inside the bulge 42c.

(27) FIG. 8 shows a mixing device 10d with a mixing container 12d, with a mixing unit 16d and with a lump breaker unit 18d. The mixing unit 16d is configured for mixing a material to be mixed that is present in the mixing container 12d. The mixing unit 16d is implemented by a shaft-mixing unit. The mixing unit 16d comprises two mixer shafts 28d. The mixer shafts 28d extend substantially in parallel to one another. The two mixer shafts 28d of the mixing unit 16d comprise rotary axes 32d, 34d running in parallel. The mixer shafts 28d are each configured of a shaft 56d as well as of a plurality of mixing elements 60d, which are arranged on a circumference of the shaft 56d. The shafts 56d of the mixer shafts 28d protrude at one end through an end wall 52d of the mixing container 12d, out of a receiving region 14d, where they are driven by a drive unit 62d. The drive unit 62d drives the two mixer shafts 28d via a gearing that is not shown. The drive unit 62d drives the two mixer shafts 28d rotationally.

(28) The lump breaker unit 18d is moreover configured, during operation of the mixing device 10d, for a comminution of clumpings that have occurred in the material to be mixed. The lump breaker unit 18d is arranged in a frontal region 22d of the mixing container 12d. The lump breaker unit 18d is arranged, on a side of the receiving region 14d that faces towards the bearing point of the mixing unit 16d, in a frontal region 22d of the mixing container 12d. The lump breaker unit 18d is arranged in the end wall 52d of the mixing container 12d, in which end wall 52d the mixing unit 16d is also borne. The lump breaker unit 18d comprises a cutter element 20d protruding into the mixing container 12d. A rotary axis of the cutter element 20d of the lump breaker unit 18d extends substantially in parallel to the rotary axes of the mixer shafts 28d of the one-sidedly supported mixing unit 16d. The rotary axis of the cutter element 20d of the lump breaker unit 18d is arranged offset to the rotary axes of the mixer shafts 28d. The cutter element 20d of the lump breaker unit 18d is partially arranged between the two mixer shafts 28d of the mixing unit 16d.

(29) FIG. 9 shows a mixing device 10e with a mixing container 12e, with a two-sidedly supported mixing unit 16e and with a lump breaker unit 18e. The mixing device 10e is implemented by a continuous bulk material mixing device. The two-sidedly supported mixing unit 16e is configured for mixing a material to be mixed that is present in the mixing container 12e. The mixing unit 16e is implemented by a shaft-mixing unit. The mixing unit 16e comprises a mixer shaft 26e. Principally it would however also be conceivable that the mixing unit 16e comprises, for example, two mixer shafts 26e. The mixer shaft 26e of the mixing unit 16e comprises a rotary axis 32e. The rotary axis 32e runs in parallel to a main extension direction 50e of the mixing container 12e. The mixer shaft 26e protrudes through an entire receiving region 14e along the main extension direction 50e of the mixing container 12e. The mixer shaft 26e is supported on both ends.

(30) The mixing container 12e has a substantially cylindrical basis shape. During operation a main extension direction 50e of the mixing container 12e extends substantially horizontally. The mixing container 12e furthermore implements a housing of the mixing device 10e. The mixing container 12e comprises an outer sleeve 48e. The mixing container 12e also comprises the receiving region 14e for receiving a material to be mixed. The receiving region 14e has a substantially cylindrical shape. The receiving region 14e is partly delimited by the outer sleeve 48e of the mixing container 12e. The receiving region 14e is delimited on an encompassing surface by the outer sleeve 48e of the mixing container 12e. The mixing container 12e further comprises two end walls 24e, 52e. The end walls 24e, 52e close the mixing container 12e on two opposite ends of the outer sleeve 48e. The end walls 24e, 52e delimit the receiving region 14e on opposite ends along a middle axis of the receiving region 14e. The end walls 24e, 52e respectively run perpendicularly to the middle axis of the receiving region 14e. The end walls 24e, 52e are respectively inclined with respect to the rotary axis 32e of the mixer shaft 26e by a smallest angle of 70. Principally however a different angle conceivable which is deemed expedient by someone skilled in the art. The end walls 24e, 52e are inclined away from one another on one side. The end walls 24e, 52e taper towards one another conically towards a top. The end walls 24e, 52e are respectively inclined to one another by 40.

(31) Furthermore the lump breaker unit 18e is configured, during operation of the mixing device 10e, for a comminution of clumpings that have occurred in the material to be mixed. The lump breaker unit 18e is arranged in a frontal region 22e of the mixing container 12e. The lump breaker unit 18e is arranged, on a side of the receiving region 14e that is situated opposite a bearing point of the mixing unit 16e, in a frontal region 22e of the mixing container 12e. The lump breaker unit 18e is arranged in an end wall 24e of the mixing container 12e. The lump breaker unit 18e comprises a cutter element 20e protruding into the mixing container 12e. The cutter element 20e comprises a shaft 64e, which protrudes through the end wall 24e. In the end wall 24e a bearing for the shaft 64e is accommodated. On an outer side of the end wall 24e, a drive unit 68e of the lump breaker unit 18e is arranged, which is configured to drive the cutter element 20e during operation. The drive unit 68e drives the shaft 64e of the cutter element 20e rotationally. A rotary axis 30e of the cutter element 20e of the lump breaker unit 18e extends substantially in parallel to the rotary axis 32e of the mixer shaft 26e of the mixing unit 16e. The rotary axis 30e of the cutter element 20e of the lump breaker unit 18e is inclined with respect to the rotary axis 32e of the mixer shaft 26e of the mixing unit 16e by at least 5. The rotary axis 30e of the cutter element 20e of the lump breaker unit 18e is inclined with respect to the rotary axis 32e of the mixer shaft 26e of the mixing unit 16e by at least 15. The rotary axis 30e of the cutter element 20e of the lump breaker unit 18e is inclined with respect to the rotary axis 32e of the mixer shaft 26e of the mixing unit 16e by no more than 30. The rotary axis 30e of the cutter element 20e of the lump breaker unit 18e is inclined with respect to the rotary axis 32e of the mixer shaft 26e of the mixing unit 16e by 20.