Crushing Device And Method For Crushing Raw Materials
20180318840 ยท 2018-11-08
Inventors
Cpc classification
B02C2/10
PERFORMING OPERATIONS; TRANSPORTING
B02C7/175
PERFORMING OPERATIONS; TRANSPORTING
International classification
B02C2/10
PERFORMING OPERATIONS; TRANSPORTING
B02C7/175
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method and crushing device for coarse-grained material. The crushing device includes one first axially rotatable grinding mechanism and a second grinding mechanism which is fixed with respect to the first axially rotatable grinding mechanism. The second grinding mechanism accommodates the first axially rotatable grinding mechanism and is in operative connection with the first axially rotatable grinding mechanism for the purpose of crushing the coarse-grained material. The axially rotatable grinding mechanism has one transport channel for the respective material to be crushed. The transport channel includes a first section extending axially and a second section which adjoins the first section at an angle and passes through an outer lateral surface of the axially rotatable grinding mechanism.
Claims
1. A crushing device consisting of at least two parts for crushing coarse-grained material, in particular coarse-grained materials from the foodstuffs sector, including at least one first axially rotatable grinding means; at least one second grinding means which is fixed with respect to the at least one first axially rotatable grinding means, which second grinding means accommodates the at least one first axially rotatable grinding means and is in operative connection with the at least one first axially rotatable grinding means for the purpose of crushing the coarse-grained material, characterized in that the axially rotatable grinding means has at least one transport channel for the respective material to be crushed; wherein the at least one transport channel has at least one first section extending axially and at least one second section which adjoins the at least one first section at an angle and extends along part of an outer lateral surface of the first axially rotatable grinding means.
2. The crushing device according to claim 1, wherein the first axially rotatable grinding means has the form of a circular cone with a cone axis, a lateral surface, a cone apex and a cone base; wherein the circular cone has at least one second section which extends along part of a lateral surface of the circular cone from the cone apex towards the base surface of the circular cone; wherein the circular cone has at least one second section which extends along part part of a generatrix of the circular cone from the cone apex towards the base surface.
3. The crushing device according to claim 2, wherein the circular cone has at least one third section which extends radially starting from the first section to the at least one second section.
4. The crushing device according to claim 3, wherein the circular cone has at least two second sections which extend along opposite generatrixes and wherein the two second sections are connected to each other and to the first, axial section by at least one third section, wherein the third section extends from the one generatrix to the other generatrix and passes through the cone axis of the circular cone.
5. The crushing device according to claim 3, wherein the circular cone has at least three second sections which are arranged at angular intervals of 120 degrees on the lateral surface, and wherein the three second sections are each connected to the first section by a third section, wherein the three third sections each extend at radial intervals of 120 degrees starting from the cone axis and radially starting from the first section are far as each second section.
6. The crushing device according to claim 3, wherein the circular cone has at least four second sections, which are arranged at angular intervals of 90 degrees on the lateral surface and wherein the respectively opposite second sections are each connected to each other and to the first section by a third section, wherein the respective third section extends from a second section to the opposite second section and passes through the cone axis.
7. The crushing device according to claim 1, wherein the first section has a depth corresponding to between 5% and 95% of a distance between an intersection point of the base surface with the cone axis and the cone apex, the depth of the first section preferably corresponds to between 50% to 95% of the distance between an intersection point of the base surface with the cone axis and the cone apex, the depth of the first section particularly preferably corresponds to at least 80% of the distance between an intersection point of the base surface with the cone axis and the cone apex.
8. The crushing device according to claim 6, wherein the at least one second section extends along a partial length of a total length of the generatrix from the cone apex towards the base surface, which corresponds to the percentage of the depth of the first section relative to the distance between the intersection point of the base surface with the cone axis and the cone apex.
9. The crushing device according to claim 7, wherein the at least one third section connects the at least one second section to the first section in such manner that an at least substantially flat surface is formed in a plane parallel to the base surface of the circular cone inside the circular cone.
10. The crushing device according to claim 4, wherein the at least one second section extends along a partial length of the total length of the generatrix from the cone apex towards the base surface, which is at least one percent longer than the percentage of the depth of the first section relative to the distance between the intersection point of the base surface with the cone axis and the cone apex.
11. The crushing device according to claim 9, wherein the at least one third radial section connects the at least one second section to the first axial section in such manner that a surface that is convex with respect to the base surface of the circular cone is formed inside the circular cone, wherein a greatest distance between the convex surface and the base surface of the circular cone is created on the cone axis.
12. A method for crushing a coarse-grained material, particularly for crushing a coarse-grained material in the foodstuffs sector, in a crushing device including a first axially rotatable grinding means and at least one second grinding means which is fixed with respect to the at least one first axially rotatable grinding means, which second grinding means accommodates the at least one first axially rotatable grinding means and is in operative connection with the at least one first axially rotatable grinding means for the purpose of crushing the coarse-grained material, characterized in that when it enters the crushing device the material is accelerated radially radial and delivered for crushing via at least one transport channel of the first grinding means.
13. The method according to claim 12, wherein upon entering the crushing device the material encounters a smooth surface of the first grinding means, is accelerated radially and is fed to a coarse crushing area.
14. The method according to claim 12, wherein the first grinding means has wide breakthroughs via which the material is guided to a crushing zone between the first grinding means and the second grinding means.
15. The method according to claim 12, wherein a crushing device is provided and includes: at least one first axially rotatable grinding means; at least one second grinding means which is fixed with respect to the at least one first axially rotatable grinding means, which second grinding means accommodates the at least one first axially rotatable grinding means and is in operative connection with the at least one first axially rotatable grinding means for the purpose of crushing the coarse-grained material, characterized in that the axially rotatable grinding means has at least one transport channel for the respective material to be crushed; wherein the at least one transport channel has at least one first section extending axially and at least one second section which adjoins the at least one first section at an angle and extends along part of an outer lateral surface of the first axially rotatable grinding means.
16. The method according to claim 13, wherein the first grinding means has wide breakthroughs via which the material is guided to a crushing zone between the first grinding means and the second grinding means.
17. The crushing device according to claim 2, wherein the first section has a depth corresponding to between 5% and 95% of a distance between an intersection point of the base surface with the cone axis and the cone apex, the depth of the first section preferably corresponds to between 50% to 95% of the distance between an intersection point of the base surface with the cone axis and the cone apex, the depth of the first section particularly preferably corresponds to at least 80% of the distance between an intersection point of the base surface with the cone axis and the cone apex.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0042] In the following section, exemplary embodiments of the invention and their advantages will be explained in greater detail with reference to the accompanying figures. The proportional sizes of the individual elements relative to each other in the figures do not always reflect actual proportions, since some forms presented are simplified and others are presented larger than other elements for better illustration.
[0043]
[0044]
[0045]
[0046]
[0047]
[0048]
[0049]
DETAILED DESCRIPTION
[0050] The same reference signs are used for elements of the invention which are identical or have identical function. Also for the sake of clarity, only those reference signs which are essential for the description of an individual figure are shown in the respective figures. The embodiments shown are intended only to exemplify the way the device according to the invention and the method according may be designed, they do not constitute any defining limitation thereof.
[0051]
[0052] The first and the second grinding means 3, 5 are arranged in such manner that a grinding gap 7 is formed between them. In the present embodiment, the first axially rotatable grinding means 3 is connected to a driveshaft 9 via an attachment means 8 and is driven rotationally about an axis of rotation D by means of driveshaft 9. The second, stationary grinding means 5 is fixed immovably on and/or inside the housing 11 that surrounds crushing unit 2 via attachment means 10.
[0053] According to an alternative embodimentnot shownit is also possible to construct the first grinding means in static fashion and arrange the second grinding means so that it can rotate.
[0054] Crushing device 1 further comprises a raw material inlet 12, through which coarse-grained raw materials R such as cocoa beans, coffee beans, whole nuts, coarsely chopped nuts or the like are introduced into crushing device 1, and a product outlet 13, through which crushed and finely ground product P is discharged. The flow of the raw material and product inside the crushing device is represented in
[0055] The first grinding means 3 in particular has the form of a cone or a truncated cone with external teeth 32 formed on the lateral surface 30 thereof. The basic shape of the cone is in particular a straight circular cone 4 having a cone axis 31. Cone axis 31 is preferably aligned coaxially with the axis of rotation D of driveshaft 9.
[0056] The second grinding means 5 in particular has the form of a funnel 6 with internal teeth 52 formed on the inner lateral surface 50 thereof. It may further be provided that an additional crushing ring 18 with internal teeth 19 is arranged on funnel 6 in the area of funnel head 16 thereof, i.e. in the area of a large funnel opening 54. A grinding gap 7 is formed preferably between the first and the second grinding means 3, 5 in the region of the transition between funnel 6 and crushing ring 18.
[0057] Angle (see
[0058] The first grinding means 3 and the second grinding means 5 are disposed in such manner that the cone axis 31 and the funnel axis 51 are aligned coaxially. In particular, circular cone 4 is arranged inside funnel 6, wherein the apex of circular cone 4 points towards a small funnel opening 55. As a consequence of the different pitches of circular cone 4 and funnel 6, a gap is formed between the lateral surface 30 of circular cone 4 and the inner lateral surface 50 of funnel 6, which gap is smallest in the region of grinding gap 7 and increases towards the apex of circular cone 4 and towards the small funnel opening 55 due to the different values of angles and (see also
[0059] The crushing unit 2 comprising first grinding means 3, second grinding means 5 and optionally crushing ring 18 is arranged inside crushing device 1 in such manner that the longitudinal axes of the grinding means 3, 5, in particular cone axis 31 and funnel axis 51 are aligned flush with the raw material inlet 12. The raw material R introduced from above through raw material inlet 12 first encounters small funnel opening 55 and the area of a cone apex 35 of circular cone 4. In particular, the raw material moves downwards towards the grinding gap 7 by the force of gravity. However, gravity alone is often not enough to transport the raw material R or the feedstock to the grinding gap 7. The improved transport of the raw material R to the crushing areas is therefore assured according to the invention by a transport channel of first grinding means 3, wherein the transport is assisted by the centrifugal force F acting on the raw material R or the feedstock. The transport channel comprises a first section 60 which extends in the axial direction, and at least one second section 62 which adjoins the first section 60 at an angle and penetrates an outer lateral surface 30 of the first axially rotatable grinding means 3. The rotation of the first grinding means 3 relative to the second grinding means 5 initiates a crushing action, in particular a grinding action of the coarse raw materials R. The size of grinding gap 7 in particular determines the degree of grinding of the ground product P, which is then discharged through product outlet 13.
[0060] The rotation of the first grinding means 3 also causes a radial acceleration of the raw material R along the transport channel. This in turn results in higher throughput of crushed raw material R per defined unit of time compared with the related art. The ground product P can also be ground to a greater degree of fineness, because the cutting frequency is significantly greater.
[0061] In addition, cooling chambers 27 may be disposed around second grinding means 5, in particular around funnel 6. They may be filled with a suitable cooling fluid K so that temperature control of second grinding means 5 and also of the added raw material R is possible. If the second grinding means 5 is cooled, the first grinding means 3 may be operated at a faster speed without overheating the raw material R as it is processed. In particular, cooling also makes it possible to grind temperature-sensitive materials gently with crushing device 1 (compare in particular
[0062]
[0063] The external teeth 32 on the lateral surface 30 of grinding means 3, in particular of circular cone 4, are designed in the embodiment shown particularly as progressive toothing. The tooth density preferably decreases towards the cone apex 35, that is to say the tooth density is highest in the area of a cone base 34 of circular cone 4, where the grinding gap 7 is between the first and the second grinding means 3, 5 (see also
[0064] In the present embodiment, grinding means 3 has the basic shape of a circular cone. In order to create the transport channels, the first grinding means 3 has a first section 60 or a central depression 61 starting from cone apex 35 which extends at least in part axially along the cone axis 31 towards cone base 34. The circular cone 4 also has at least one second section 62, which extends at least in part along generatrix 33 of circular cone 4 from the cone apex 35 towards the base surface or cone base 34. In the embodiment shown, the circular cone 4 has four second sections 62-1 to 62-4, each of which extends along a generatrix 33-1 to 33-4 of circular cone 4. The first grinding means 3 further includes third sections 63-1 to 63-4, each of which extends radial between the first axial section 60 and the second sections 62-1 to 62-4 along generatrixes 33-1 to 33-4 and connect first section 60 with each of the second sections 62-1 to 62-4.
[0065] Taken together, sections 60, 62, 63 lend the circular cone 4 a slotted appearance when viewed from the cone apex 35. Reference sign 40 is used in particular for the slotted circular cone. In particular, lateral surface 30 is divided into multiple partial surfaces 36-12, 36-23, 36-34 and 36-14 which are separated from each other laterally by second sections 62-1 to 62-4 and surround a hollow space 64 formed in the interior of circular cone 4 (compare in particular
[0066]
[0067] As shown in
[0068] According to
[0069] The third sections 63 are constructed similarly, so that taken together section 60, 62, 63 form a hollow space 64 with an at least mostly flat surface 65 in a plane parallel to the plane of cone base 34 inside circular cone 4.
[0070] Hollow space 64 inside circular cone 4 is in particular partially surrounded by the partial areas 36-12, 36-23, 36-34 and 36-14 identified in
[0071] As is shown in
[0072] If the raw material R of feedstock is nuts, for example, it typically already exists in such coarse form that it must always undergo crushing in area GZ first, before the ground material is fine enough to undergo fine grinding in area FZ.
[0073] Radial sections 63 cause the start of grinding to shift into the middle of the first grinding means 3, thus enlarging the area in which the feedstock or the added raw material R gets between grinding means 3, 5, instead of only being supplied from above over a relatively small circumference or sector at the apex of the truncated cone as is known from the related art. The raw material inlet 12 is particularly embodied as pipe 12* with a circular diameter (see also
[0074] In particular, it is important that sections 60, 62, 63 form a smooth surface 65 which the raw material R encounters first upon entry. Since the entering raw material R does not come into contact with the outer lateral surface 30 of the first grinding means 3 with the outer teeth 32 as happens in the related art, but instead meets a smooth surface 65 in the interior of circular cone 4 and is accelerated radially there immediately, the raw material R can be effectively prevented from collecting on the first grinding means 3 in the area of the material feed or of the raw material inlet 12 and/or sticking to the raw material inlet 12. In particular, the introduced raw material R is removed from the region of the material inlet more quickly.
[0075]
[0076] Second grinding means 5a in particular is in the shape of a funnel 6. Funnel 6 comprises a large circular funnel opening 54 and a small circular funnel opening 55, the centres of which each lie on a funnel axis 51. The inner lateral surface 50 of funnel 6 is in the form of a hollow cone and is equipped with a multiplicity of internal teeth 52. The design of the internal teeth 52 is illustrated particularly clearly in
[0077]
[0078] Similarly to the progressive toothing of the first grinding means 3 represented in
[0079] The lower tooth density in the region of the raw material inlet also prevents the danger of the teeth 52 becoming clogged and caked with lumps of coarse raw material components and supports a first coarse crushing step of the raw material R in an area GZ (see also
[0080]
[0081] Crushing device 1 comprises a crushing unit 2 such as was described in detail previously, particularly in connection with
[0082] In addition, a discharge rotor 14 is also mounted on the driveshaft 9 in the area of product outlet 13 between drive unit 22 and crushing unit 2, and supports the discharge of the crushed product P via product outlet 13.
[0083]
[0084] The invention has been described with reference to a preferred embodiment. However, it is conceivable for a person skilled in the art to introduce variants or modifications to the invention without thereby departing from the scope of protection of the following claims.