Laboratory mill

EP4590439A1Pending Publication Date: 2025-07-30RETSCH GMBH & CO KG
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Patent Information

Application Number
EP2024802166
Authority / Receiving Office
EP · EP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-03-19
Filing Date
2024-10-25
Publication Date
2025-07-30

AI Technical Summary

Technical Problem

Existing laboratory chairs, particularly cutting mills, face challenges in operational safety and protection against the ejection of grinding components during the grinding process. Additionally, they often have a high overall construction height, making them less suitable for use as table equipment, and lack easy access to the grinding funnel.

Method used

The design incorporates a cutting mill with a housing that includes a recess for the grinding shaft, allowing for safe absorption and easy handling of the grinding funnel. The grinding funnel can be inserted into the shaft recording via a front opening, and a swiveling housing door provides improved access. The operation is designed for high ease of use, with features like a separate grinding funnel assembly and an interchangeable cassette system that simplifies cleaning and maintenance.

Benefits of technology

This design enhances operational safety by preventing the ejection of grinding components and allows for easier handling and maintenance. The reduced construction height enables the laboratory chair to be used as a table device, and the improved access to the grinding funnel facilitates efficient operation and cleaning.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a laboratory mill, in particular a cutting mill (1) for a laboratory operation, in particular a table cutting mill, comprising a housing (2) and a drive motor (3) which is connected to the housing (2) and which comprises a drive shaft (4). A milling tool, in particular a cutting rotor (5) with at least one cutting blade (6), can be connected to the drive shaft (4), in particular for the cutting comminution of milling material by means of a shearing action. The laboratory mill also comprises a milling chamber (15), which is provided in the housing (2), for installing the milling tool in the milling chamber (15) and a milling material funnel (11), which has a material supply shaft (93) for supplying milling material to the milling chamber (15). According to the invention, a shaft receiving area (92) is provided for the material supply shaft (93), said shaft receiving area being formed by a cut-out or a recess and / or an indentation in the housing (2), and the material supply shaft (93) is inserted into the shaft receiving area (92) at least in some regions.
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Description

[0001] Laboratory mill

[0002] The invention relates to a laboratory mill, in particular a cutting mill for laboratory use, further in particular a table cutting mill, comprising a housing and a drive motor with a drive shaft connected to the housing, wherein a grinding tool, in particular a cutting rotor with at least one cutting blade, can be connected to the drive shaft, in particular for cutting and comminuting material to be ground by shearing action, comprising a grinding chamber provided in the housing for arranging the grinding tool in the grinding chamber and comprising a material to be ground hopper which has a material feed shaft for feeding the material to be ground to the grinding chamber.

[0003] The invention further relates to a grinding material hopper which has a material feed chute for feeding the grinding material to the grinding chamber and, preferably, a material filling chute opening into the material feed chute in the region of an inlet opening, designed for use in a laboratory mill of the type described above.

[0004] Laboratory cutting mills comminute the material to be ground using a scissor-like cutting action between a rotating cutting rotor with attached cutting blades and stationary counterblades located on the inside of the grinding chamber side wall. The cutting blades and counterblades extend in the axial direction of the drive shaft as cutting bars. Laboratory cutting mills are advantageously used for comminuting soft, medium-hard, tough, elastic, fibrous, and heterogeneous sample mixtures. Examples of laboratory cutting mills are the applicant's SM 100, SM 200, and SM 300 cutting mills.

[0005] In rotor impact mills, comminution and deagglomeration occur through impact and shearing. In the center of the grinding chamber, the feed material is crushed between the rotor, sieve, and grinding insert. As soon as the material to be ground is lighter than the aperture size of a sieve, it falls through the gravity outlet into a collecting vessel. If necessary, a cyclone separator can be used to not only effectively cool the material to be ground and the cutting tools, but also to improve sample discharge from the grinding chamber. An example of a rotor impact mill is the applicant's SR 300 rotor impact mill. Rotor impact mills are used for coarse and fine comminution of dry, soft, medium-hard, organic, and inorganic substances. Cross-beam mills are also suitable for coarse and fine comminution and are used for processing medium-hard and brittle materials. Comminution occurs through impact.The feed material enters the center of the grinding chamber, where it is captured by a cross beater and crushed between the impact plates of the cross beater and a toothed grinding insert. As soon as the material is smaller than the aperture size of an inserted bottom sieve, it passes through this and flows through the gravity outlet into a collecting container. The ambient air drawn into the grinding chamber by the cross beater accelerates the discharge of the crushed material. A cyclone separator can also be used here to ensure not only effective cooling of the grinding material and the cutting tools, but also improved discharge of the sample from the grinding chamber. An example of a cross beater mill is the applicant's SK 300 cross beater mill.

[0006] In conventional laboratory mills, the material to be ground is usually fed into the grinding chamber via a material hopper. In conventional cutting mills, for example, the material hopper is mounted in the area of ​​an upper housing opening of a cutting mill housing, and the material to be ground enters the grinding chamber via the material hopper and a material channel connected to the upper housing opening. In rotor impact mills and cross impact mills, however, the hopper can be mounted from the front or front side onto a housing door of a laboratory mill housing. In this case, the material to be ground is not fed radially to the drive shaft or grinding tool, but rather from the front via an opening in the housing door into which the outlet opening of the material hopper opens.

[0007] The present invention is based on the object of increasing the usability of the previously known laboratory mills, in particular the usability of cutting mills.

[0008] In particular, the present invention is based on the object of providing a laboratory mill of the type mentioned at the outset, which is characterized by high operational reliability and, during the grinding process, by improved protection against the splashing back of grinding material components from the area of ​​the grinding chamber into the surroundings of the laboratory mill.

[0009] In particular, the laboratory mill is intended to be characterized by the possibility of feeding the grinding material via a grinding material hopper while maintaining a low overall height. The laboratory mill is thus intended to be particularly suitable for use as a tabletop device. Furthermore, the present invention is based on the object of providing improved access to the grinding material hopper and, preferably, to the grinding chamber for cleaning purposes in a laboratory mill of the type mentioned above.

[0010] Finally, the operation of the laboratory mill should be very comfortable to use.

[0011] The aforementioned objects are each achieved by a cutting mill having the features of independent claims 1, 7, 10, 16, 26, and 27. Advantageous embodiments of the inventive solution are the subject of the subclaims.

[0012] A first aspect of the present invention relates to a cutting mill of the type mentioned above, wherein a shaft receptacle for the material feed shaft of the grinding material hopper is provided in the housing of the laboratory mill, the shaft receptacle being formed by a recess or gap and / or depression in the housing, and wherein the material feed shaft can be inserted or inserted into the shaft receptacle at least partially and, preferably, detachably. The material feed shaft of the grinding material hopper engages, at least at its lower edge region, in the shaft receptacle formed in the housing of the laboratory mill, so that a secure hold of the grinding material hopper on the housing is achieved. The shaft receptacle in the housing can be adjacent to the grinding material inlet of a cassette arranged in the housing, wherein the cassette forms a grinding chamber rear wall and a grinding chamber side wall.This ensures the transfer of the grinding material from the grinding material hopper into the grinding chamber via the shaft holder and the grinding material inlet.

[0013] Furthermore, the material feed chute of the grinding material hopper, which at least partially engages with the shaft receptacle of the housing of the laboratory mill, enables a stable installation of the grinding material hopper on the housing. The material feed chute can be inserted into the shaft receptacle from above via an upper housing opening. This ensures easy handling of the grinding material hopper and ensures that the grinding material hopper stands securely on the housing of the laboratory mill.

[0014] The grinding material hopper preferably represents a separate assembly, which is preferably detachably connected to the housing. In a preferred embodiment, the material feed chute can be inserted, in particular pushed, into the chute receptacle via a front or end face. The chute receptacle, which is formed by a recess or cutout and / or depression in the housing of the laboratory mill, is then open toward the front or end face of the housing.

[0015] In particular, the material feed chute can be inserted into the chute holder and / or removed from the chute holder without the need for tools. This simplifies the handling of the material feed chute and thus the grinding hopper during assembly of the grinding hopper and any attachment of the grinding hopper to the housing of the laboratory mill.

[0016] A pivoting housing door can be provided on the housing, whereby the material feed chute can only be inserted into the chute receptacle when the housing door is in the open position. To insert the material feed chute into the chute receptacle, the housing door is first pivoted open and moved into an open position, allowing access to the material feed chute via the front or end of the housing. The grinding hopper is then positioned with the material feed chute so that the material feed chute can be pushed or inserted into the chute receptacle in the direction of the drive shaft's axis of rotation.

[0017] The grinding material hopper is preferably a separate assembly that is designed for detachable attachment to and / or with the housing. At least one connecting means can be provided for attaching or positively and / or non-positively connecting the grinding material hopper to the housing. For example, the grinding material hopper can have a hopper housing that can be secured to the housing of the laboratory mill with a connecting means, for example via a screw connection, when the material feed chute has reached a predetermined insertion position when inserted into the chute receptacle. In addition, there is the possibility of connecting the material feed chute, i.e. at least one chute wall that delimits the material feed chute, in particular laterally or also at the rear or on the motor side, to the housing of the laboratory mill in a positively and / or non-positively manner via at least one connecting means.For example, it can be provided to screw a rear wall of the material feed chute to the housing of the laboratory mill once the grinding material hopper has reached a designated mounting position upon insertion of the material feed chute into the chute receptacle. The grinding chamber rear wall and the grinding chamber side wall of the grinding chamber can be formed on an interchangeable cassette, wherein a cassette receptacle formed by a recess or gap and / or depression in the housing is formed in the housing of the laboratory mill for receiving the cassette. In particular, the cassette can be inserted into the cassette receptacle without tools, wherein the outer geometry of a side wall and rear wall of the cassette on the one hand and the receiving geometry of the cassette receptacle, formed by the geometry of a side wall of the housing that delimits the cassette receptacle, are coordinated and complementary to one another.

[0018] The interchangeable cassette can be fully inserted or inserted into the cassette holder. The housing is at rest during grinding operation of the laboratory mill and is stationary relative to the drive shaft.

[0019] Particularly preferably, only the grinding chamber rear wall and the grinding chamber side wall are formed on the interchangeable cassette, which for this purpose can have a one-piece and / or single-piece base body that defines the grinding chamber radially and axially on the motor side. A grinding chamber cover, which can be releasably placed against the base body, can form an at least partial closure of the grinding chamber on the front or front side of the cassette facing away from the drive motor.

[0020] The grinding chamber cover can preferably be held or fastened to a housing door that is directly or indirectly connected to the housing and can be opened and closed, and can be moved together with the housing door. When the housing door is closed, the grinding chamber cover can rest against the interchangeable cassette and at least partially close off the grinding chamber on the front of the housing. By opening the housing door, the grinding chamber cover is moved into an open position together with the housing door, allowing access into the grinding chamber via the front of the housing, for example, to remove the interchangeable cassette from the cassette holder and / or to clean the grinding chamber.

[0021] However, a design in which the grinding chamber cover is detachably attached to a base body of the interchangeable cassette that borders the grinding chamber side wall and the grinding chamber rear wall is also possible. In this case, the base body can be removed from the cassette holder together with the grinding chamber cover or inserted into the cassette holder.

[0022] Preferably, the walls that define the grinding chamber radially and axially, or on the motor side, are formed on a replaceable cassette. The housing has a receptacle for the cassette, the geometry of which is adapted to the cassette geometry and size, so that the cassette can be fully inserted into the cassette receptacle. The front surfaces of the replaceable cassette and the front surfaces of the housing wall that defines the cassette receptacle can then be aligned, or the front surfaces of the replaceable cassette can be lowered relative to the front surfaces of the housing wall that defines the cassette receptacle.

[0023] During operation of the laboratory mill according to the invention, the grinding tool then sweeps over the rear wall of the cassette, which forms the grinding chamber rear wall. The grinding chamber side wall is formed by a side wall of the interchangeable cassette, which can essentially concentrically surround the rotational axis of the drive shaft, at least in some areas.

[0024] The use of an interchangeable cassette forming the grinding chamber allows for simplified cleaning. After opening the housing door and the associated grinding chamber cover, the grinding chamber can be easily cleaned via the open front panel of the interchangeable cassette. The cassette can remain in the cassette holder during cleaning.

[0025] Alternatively, the cassette can also be removed from the cassette holder for cleaning purposes.

[0026] In addition, it is possible to use cassettes made of different cassette materials, for example steel, aluminum or certain steels, particularly those low in heavy metals.

[0027] In addition, cassettes can be used that differ in the direction of the grinding material flow when removing the grinding material from the grinding chamber and / or the direction of the grinding material flow when feeding the grinding material into the grinding chamber. In principle, cassettes with different grinding chamber dimensions can also be used, which may require the use of spacers or adapters that are inserted into the cassette holder.

[0028] The invention particularly preferably provides that the removable cassette can be inserted into the cassette holder via a front side of the housing. This simplifies handling of the cassette when inserting it into the cassette holder and when removing it from the cassette holder.

[0029] The term "interchangeable cassette" within the meaning of the invention refers to cassette solutions in which a cassette, as a separate component or separate assembly, forms the grinding chamber rear wall and the grinding chamber side wall, and, if appropriate, a grinding chamber front wall, thus spatially delimiting the grinding chamber. Particularly preferably, the grinding chamber rear wall and the grinding chamber side wall are formed by a cassette base body, wherein the grinding chamber front wall can be formed by a grinding chamber cover that closes the grinding chamber toward the front of the laboratory mill and can be detachably connected to the cassette base body or pressed against the cassette base body.

[0030] Furthermore, the cassette can be replaced without tools, which simplifies handling when changing cassettes. The removable cassette can be removed from or inserted into the cassette holder entirely manually, without the use of tools such as screwdrivers or pliers.

[0031] However, "tool-free" within the meaning of the invention also includes embodiments in which locking, latching, or detent means that secure the cassette in the cassette receptacle must be manually operated in order to secure the cassette in the cassette receptacle and / or remove it from the cassette receptacle. For example, a manually operable pin can be provided to secure the cassette in the cassette receptacle after the cassette has reached a specific insertion position. This pin engages positively and / or non-positively with the cassette and / or the housing, thereby securing the cassette in a specific position in the cassette receptacle.

[0032] Preferably, however, the cassette can be inserted into and removed from the cassette receptacle without having to actuate connecting, locking, and / or arresting means. Inserting and removing the cassette into and from the cassette receptacle is then carried out without the use of tools and does not require the actuation of connecting elements designed for a positive and / or non-positive connection between the cassette and the housing.

[0033] Particularly preferably, the grinding chamber rear wall and the grinding chamber side wall are formed on a single-piece or one-piece cassette base body. In principle, however, the grinding chamber rear wall and the grinding chamber side wall can also be formed on detachably connected cassette components.

[0034] A sieve or grid insert can be inserted into the grinding chamber in a manner known per se, whereby a sieve seat for the sieve or grid insert can be formed on the inside of the side wall of the interchangeable cassette in the area of ​​a cassette opening in order to hold the insert in and on the cassette.

[0035] The housing comprises at least one recess, cutout or gap which forms a cassette holder.

[0036] The cassette receptacle can be formed by a recess in the housing that is at least partially circular. The cassette receptacle can be adjacent to or transition from an upper recess or upper cutout in the housing, which opens into an upper housing opening. The cassette receptacle can be adjacent to or transition from an upper recess or lower cutout in the housing, which opens into at least one lower housing opening.

[0037] The upper recess or upper cutout in the housing can, as described above, be provided for the partial, end-side accommodation of a material feed shaft of a grinding material hopper and form a shaft receptacle. In addition, a grinding material inlet formed on the cassette through the cassette wall, which opens into an upper cassette opening and through which the grinding material to be comminuted is fed to the area of ​​the cutting rotor or the grinding chamber, can engage at least partially in the upper recess or upper cutout in the housing or border on the upper recess or cutout. The lower recess or lower cutout in the housing can be provided for the partial accommodation of an outlet hopper connected to the interchangeable cassette, wherein the lower recess or lower cutout forms an outlet hopper receptacle.

[0038] The cassette has an upper cassette opening and at least one lower cassette opening. The ground material enters the cassette and thus the grinding chamber through the upper housing opening and the upper cassette opening. The ground material leaves the grinding chamber and the cassette through the lower cassette opening and exits the housing through the lower housing opening.

[0039] Particularly preferably, as described above, an openable and closable housing door can be provided, which can preferably be pivotally mounted on the housing forming the cassette receptacle. When the housing door is closed, the housing door can transmit a clamping force to the cassette, so that the cassette is pressed in the axial direction towards the drive motor and is clamped axially in the cassette receptacle. At least one sealing element can be provided between the housing door and the cassette, which is compressed when the housing door is closed and thus ensures that the cassette is clamped axially in the cassette receptacle without any play. The sealing element thus fulfills a sealing function and, at the same time, functions as a means for transmitting a clamping force to the cassette.

[0040] The shaft receptacle formed in the housing of the laboratory mill for accommodating the material feed shaft can open into an upper housing opening of the housing. The shaft receptacle can be aligned radially to the grinding tool and run obliquely to the direction of gravity. The upper housing opening of the housing can be offset laterally relative to the axis of rotation of the drive shaft. As a result, the material feed shaft can extend or be aligned obliquely to the direction of gravity with respect to its longitudinal extent.

[0041] In particular, the grinding material hopper has an outer housing with a material filling chute with a filling slope, wherein the material filling chute opens into the material feed chute in an opening region, wherein the material filling chute and the material feed chute overlap and merge into one another in the opening region, and wherein a grinding material slide is guided in the material feed chute in a longitudinally adjustable manner. The grinding material hopper can in particular comprise a grinding material or stuffing slide which is guided in the material feed chute of the grinding material hopper, as described, for example, in DE 29702876 U1. However, the grinding material hopper can also have a different structural design; in particular, no stuffing slide needs to be provided to move the grinding material via the material feed chute towards the cutting rotor.

[0042] The upper cassette opening of the interchangeable cassette is aligned with the housing's shaft receptacle when the interchangeable cassette is inserted into the cassette receptacle. When the material feed chute of the grinding hopper is inserted into the shaft receptacle, the material to be ground is fed into the grinding chamber via the upper cassette opening and, if necessary, a section of the interchangeable cassette that forms a material inlet.

[0043] The shaft receptacle and the cassette receptacle can preferably be formed by a common, continuous and uninterrupted recess, cutout and / or depression in the housing.

[0044] The removable cassette and the material feed chute can be inserted into the cassette receptacle or the chute receptacle of the housing independently of each other and / or removed from the housing. This requires a corresponding design of the adjacent edge geometries of the removable cassette and the material feed chute. In this context, the material feed chute and the cassette can have geometrically complementary edge geometries on opposite edge areas. Complementary edge geometries can be formed on the side wall and / or rear wall of the cassette and on the side walls and / or a rear wall of the material feed chute.

[0045] Spacing the edge geometries from each other simplifies the replacement of the interchangeable cassette independently of the material feed chute. The cassette can be inserted into and / or removed from the cassette holder independently of the material feed chute. This simplifies cassette replacement without having to disassemble the grinding hopper from the housing of the laboratory mill.

[0046] In this context, it can preferably be provided that the edge geometries of the removable cassette and the material feed chute are designed to complement each other in such a way that the removable cassette can be displaced relative to the material feed chute mounted on the housing in the drive shaft direction and can thus be inserted into and removed from the cassette receptacle, while the material feed chute remains in the chute receptacle. This simplifies insertion and removal via the front of the housing into the corresponding receiving areas for the removable cassette and the material feed chute.

[0047] Furthermore, the inner surfaces of the interchangeable cassette and the material feed chute can be substantially aligned in the inserted state and / or an expansion of the flow cross-section can be provided at the transition between the material feed chute and the interchangeable cassette in the area of ​​the upper cassette opening in order to avoid the deposition of crushed material on projections and / or edges in the transition area.

[0048] To prevent the fed-in grinding material from escaping via adjacent edge geometries of the interchangeable cassette and material feed chute of the grinding material hopper into the area of ​​the cassette holder and / or the material feed chute, the interchangeable cassette and the material feed chute can be arranged at a distance from one another at edge geometries of the interchangeable cassette and material feed chute that are adjacent to one another when inserted, in particular to form an air gap for the extraction of false air during grinding operation. Grinding operation in the grinding chamber can be carried out at a negative pressure level using a cyclone separator with extraction of a grinding material air stream and an extraction device connected to the cyclone separator. When the grinding material-air mixture is extracted from the interchangeable cassette, ambient air can then be drawn in via the air gap between the adjacent edge geometries of the interchangeable cassette and material feed chute.This prevents the feed material from escaping through the adjacent edges of the interchangeable cassette and the material feed chute, particularly into the cassette holder and thus into the interior of the cutting mill. This significantly reduces cleaning effort. It also ensures that cassettes can be easily changed without having to detach the grinding hopper from the laboratory mill and remove the material feed chute from the chute holder.

[0049] Furthermore, the mutual spacing of the interchangeable cassette and the material feed chute reliably prevents damage during grinding operation due to mechanical contact between the interchangeable cassette and the material feed chute. The air gap or mutual spacing is preferably provided across the entire surface between the adjacent edge geometries of the interchangeable cassette and the material feed chute, so that the extraction of false air can occur across the entire extent of the facing edge geometries or at any point.

[0050] When inserting the material feed chute into the chute holder, the grinding material hopper can be manually held via the hopper housing. Once the material feed chute has reached a predetermined insertion position, it is then possible to connect the material feed chute and / or the hopper housing of the grinding material hopper to the housing of the laboratory mill in a form-fitting and / or force-fitting manner, particularly by screwing them together.

[0051] In the insertion position, the material feed chute is then preferably aligned obliquely to the direction of gravity with respect to its longitudinal extent.

[0052] In order to prevent, or at least to make it more difficult for, ground material to escape via adjacent edge geometries of the material feed chute and the exchangeable cassette into the chute receptacle or the cassette receptacle, the adjacent edge geometries can form a labyrinth geometry, particularly in the circumferential direction of the drive shaft, based on the state in which the exchangeable cassette and material feed chute are inserted into the housing.

[0053] As already described above, a housing door can be provided that is movable from a closed position to an open position relative to the housing. In a preferred embodiment of the invention, a grinding chamber cover can be held on the motor side of the housing door in order to at least partially close off the grinding chamber of the interchangeable cassette from the front of the interchangeable cassette when the housing door is closed. For example, an insert made of an insert material can be let into a recess on the motor side of the housing door; this insert forms the grinding chamber cover and is moved together with the housing door when the housing door is opened and closed. When the housing door is in the closed position, the insert then comes into contact with the side wall of the interchangeable cassette, which forms the grinding chamber side wall, and closes off the grinding chamber at least partially from the front, thus forming a grinding chamber front wall.The insert material can have different material properties than the door material of the housing door. A sealing element can be provided between the housing door and the interchangeable cassette, creating a seal between the housing door and the interchangeable cassette when the housing door is closed. When the housing door is closed, a clamping force can be transferred to the interchangeable cassette via the sealing element, so that the interchangeable cassette is pressed against a housing wall axially bordering the cassette receptacle and is clamped in the cassette receptacle. The clamping force required to clamp the interchangeable cassette in the cassette receptacle is applied via the housing door.

[0054] According to a second aspect of the present invention, in a laboratory mill of the type mentioned at the outset, a housing door is provided which is movable, in particular pivotable, relative to the housing from an open position to a closed position in order to achieve the objects mentioned at the outset, wherein the grinding material hopper has an openable shaft wall which is formed by the housing door when the housing door is in the closed position. The grinding material hopper is then opened laterally with the housing door of the laboratory mill, so that easy access to the interior of the grinding material hopper for cleaning is possible. Surface areas of the housing door on the inside of the housing door form a frontal or end-side shaft wall of the grinding material hopper.

[0055] In this embodiment of the invention, which is characterized by the possibility of easy cleaning of the material feed chute, a material feed chute inserted into the chute receptacle and, preferably, a material filling chute opening into the material feed chute can be delimited, at least in regions, preferably at least substantially completely, by a front chute wall, wherein the front chute wall is formed by the housing door when the housing door is in a closed position.

[0056] The housing door can preferably essentially completely close or cover the product feed chute and, preferably, the product filling chute in the closed position. The product feed chute and, preferably, the product filling chute are then not designed to be closed all the way around, but are designed to be open at least in some areas, preferably completely, at the ends or front. The product feed chute and, if applicable, the product filling chute then do not form a circumferentially closed chute or channel, but rather have a cut-out wall section at the end in which the respective chute is open to the outside. The cut-out wall section is covered and closed by the housing door in the closed position of the housing door. When the housing door is open, this creates better access for cleaning the product feed chute and, if applicable, the product filling chute.When the housing door is in the closed position, the respective shaft is then limited by fixed side and rear or motor-side shaft walls and by the housing door at the front or on the side of the housing facing away from the drive motor.

[0057] Preferably, in the open position of the housing door, intervention or access is possible in or to all areas of the grinding material hopper which come into contact with the grinding material when the grinding material is fed via the grinding material hopper and which therefore have to be cleaned of grinding material residues after the end of a grinding process.

[0058] A frontal shaft wall of the material feed shaft and, preferably, a frontal shaft wall of a material filling shaft of the grinding material hopper opening into the material feed shaft can be formed by the housing door when the housing door is in the closed position.

[0059] In this context, the housing door may have an insert made of a low-abrasive material that is firmly connected to the housing door. When the housing door is closed, the insert then forms a front wall of the material feed chute and, preferably, the material filling chute.

[0060] However, the grinding material hopper can also have or be designed as a single material feed chute, with the material being fed manually from above into the material feed chute rather than from the side via a material feed chute with a hopper geometry that opens into the material feed chute. The material feed chute can be designed as a hopper and can be used particularly for feeding elongated materials into the grinding chamber.

[0061] A sealing element can be provided which, when the housing door is closed, rests against a shaft wall of the material feed shaft and, if applicable, against a shaft wall of the material filling shaft and seals the respective shaft against the housing door.

[0062] According to a third aspect of the invention, in a laboratory mill of the type mentioned at the outset, it is provided that a grinding material slide is guided in the material feed chute of the grinding material hopper so as to be longitudinally movable between a raised position and a lowered position and that a lock flap is provided, in particular to close the material feed chute to the grinding chamber when the grinding material slide is in the raised position.

[0063] The airlock valve closes the material feed chute to the grinding chamber, preventing unintentional access by the laboratory mill operator via the material hopper to the grinding tool area. Furthermore, when the material slide is raised, the airlock valve provides a backsplash guard, effectively preventing the unintentional discharge of material. The airlock valve thus fulfills a safety function in two respects.

[0064] The grinding material pusher can be used to push the material to be ground into the grinding chamber in a conventional manner. When the grinding material pusher is lowered, the grinding chamber is correspondingly reduced in size and closed. According to the invention, the lock flap then effectively prevents the material to be ground from escaping from the grinding chamber via the grinding material hopper into the environment when the grinding material pusher is raised. At the same time, the laboratory mill according to the invention can be designed as a tabletop unit with a low overall height, ensuring a high level of user comfort when feeding the material into the hopper.

[0065] The grinding material hopper can have a material filling chute opening into the material feed chute, the lower chute wall of which forms a filling slope for the material to be ground. The lock flap can then be arranged so as to be pivoted about a flap joint towards the opening of the material filling chute into the material feed chute. The flap joint is preferably arranged in the region of the opening. In a closed position, with the grinding material slide preferably raised to its maximum, the lock flap can then close the opening. The grinding material can then be fed in via the material filling chute, with the lock flap preventing the grinding material from entering the grinding chamber. If the grinding material slide is then lowered, a pivoting movement of the lock flap opens the material feed chute for the grinding material to be fed into the grinding chamber.

[0066] To ensure a high level of safety and backsplash protection, the material feed chute can be closed when the grinding material slide is raised by a (first) flap section of the lock flap adjacent to the material feed chute and, preferably, extending from the flap joint into the material feed chute. When the grinding material slide is raised, this ensures that no ground material escapes from the grinding chamber into the environment via the material feed chute and, in particular, a material filling chute leading into the material feed chute.

[0067] When the grinding material slide is lowered, the opening where the material feed chute opens into the material feed chute can be closed by a (second) flap section of the lock flap adjacent to the material feed chute and, preferably, extending upwards from the flap joint when the grinding material slide is lowered. This prevents external interference with the area of ​​the material feed chute or unintentional access from the outside via the material feed chute to the grinding material slide guided in the material feed chute. This leads to even greater operating safety.

[0068] In the fully lowered position of the grinding material slide, the (first) flap section adjacent to the material feed chute and / or the (second) flap section of the lock flap adjacent to the material filling chute can be aligned at least partially, preferably completely, parallel to the longitudinal axis of the grinding material slide and / or abut laterally against the grinding material slide with respect to the longitudinal extent of the lock flap. In the lowered position, the (first) flap section adjacent to the material feed chute can then extend downwards parallel to the grinding material slide and be arranged between the grinding material slide and a side wall of the material feed chute.

[0069] In a further preferred embodiment, a longitudinal movement of the grinding material slide during the movement between the raised position and the lowered position in the material feed chute and a pivoting movement of the lock flap are kinematically coupled, in particular via a coupling rod. A longitudinal movement of the grinding material slide then automatically leads to an adjustment movement of the flap into a closed position or from the closed position to an open position. A kinematic coupling of the grinding material slide and lock flap is particularly preferably provided such that a longitudinal movement of the grinding material slide towards the grinding chamber leads to a pivoting movement of the lock flap even before the grinding material slide and lock flap come into direct contact. The flap thus, to a certain extent, precedes the movement of the grinding material slide. The laboratory mill according to the invention thus meets high demands for splashback protection and safety.Furthermore, when the laboratory mill is designed as a table-top device, a small distance from the floor of the inlet opening from the material filling chute to the material feed chute can be achieved, which further simplifies the handling of the laboratory mill according to the invention.

[0070] Residues of grinding material in the area of ​​the flap joint and / or on the underside of the lock flap are disadvantageous, as they can disrupt the closing movement of the flap, even leading to a loss of the locking function of the lock flap. To prevent the agglomeration of grinding material components below the flap joint and / or on the underside of the lock flap during operation of the laboratory mill according to the invention, a purge air channel and / or a purge air gap can be formed below the flap joint and / or on the underside of the lock flap.

[0071] In extraction mode, a suction device can extract a mixture of ground material and air from the grinding chamber through a lower housing opening in the housing of the laboratory mill, creating a negative pressure level in the grinding chamber, for example, when using a cyclone separator to separate the ground material air flow. By spacing the flap joint and, preferably, the entire airlock flap from the impact wall of the material feed chute, purge air can flow past the flap joint along the underside of the airlock flap, thus counteracting the buildup of ground material residue.

[0072] For simplified cleaning of the lock flap, the grinding material hopper can have an openable shaft wall, in particular on the front side of the housing, wherein the lock flap can preferably be removed from the grinding material hopper without tools when the openable shaft wall is in an open position.

[0073] In particular, as described above, a housing door can be provided that is movable, in particular pivotable, relative to the housing from an open position to a closed position. The openable shaft wall is then formed by the housing door when the housing door is in the closed position. The housing door then forms a frontal shaft wall of the material feed shaft and, preferably, the material filling shaft. Particularly when the grinding material slide is raised, the lock flap can be removed from the front or front of the grinding material hopper and inserted into it for replacement or cleaning when the housing door is in the open position.To prevent the agglomeration of ground material components, the ground material slide and the sluice gate can have complementary engagement geometries with teeth, prongs, or prongs. These complementary engagement geometries engage when the ground material slide is lowered into the material feed chute and has reached a certain lowering position in the material feed chute. When the ground material slide and the sluice gate come into contact, ground material agglomerations are then scraped off or combed out on the top and / or bottom of the sluice gate.

[0074] Particularly preferably, complementary engagement geometries are provided at the lower end of the grinding material slide facing the grinding chamber and / or at a flap section of the lock flap that closes the material feed chute when the grinding material slide is in a raised position. In particular, the lock flap can have a combing on the flap section extending into the material feed chute, wherein a combing with a counter-geometry at the lower end of the slide can engage with the combing of the lock flap to strip off grinding material residues.

[0075] Furthermore, it is possible to provide a scraper element in the material feed chute, which is particularly connected to a side wall of the material feed chute or formed on the side wall. In particular, the scraper element is arranged below the airlock flap and, when the material slide is lowered and / or when the airlock flap pivots, engages with the airlock flap or, if appropriate, also with the material slide in order to scrape off any remaining material.

[0076] A detection unit can be provided to detect the insertion position of the lock flap in the grinding material hopper. A safety switch can be provided to automatically query the correct insertion position of the lock flap. A contactless switch can be provided to check the insertion position of the lock flap. The flap can also contact a mechanical switch that closes an electrical safety circuit when the lock flap is correctly inserted into the grinding material hopper. The closing of the safety circuit can then be linked to the display or output of a confirmation signal confirming the correct insertion of the lock flap in the grinding material hopper.A further aspect of the present invention provides for a laboratory mill of the type mentioned above that a grinding material slide is guided in the material feed chute so as to be longitudinally movable between a raised position and a lowered position, wherein the grinding material slide is subjected to an actuating force for the automatic adjustment movement of the grinding material slide from the lowered position to the raised position, in particular to a maximally raised position. The grinding material slide can then be pressed down by hand to compact the grinding chamber. If the grinding material slide is relieved of pressure, the grinding material slide is then automatically moved back up into a raised position due to the (re)actuating force and remains there due to the actuating force.The standard position of the grinding material slide can then be a raised position, so that grinding material can be fed into the material feed chute via the material filling chute until the grinding material slide is moved back down by hand into a lowered position and the lock flap pivots.

[0077] A spring means, in particular a gas spring, can be provided to generate the actuating force. Due to the action of the gas spring, the slide is then automatically held in the raised position.

[0078] To further simplify operation of the laboratory mill, a locking mechanism can be provided to lock the grinding material slide, preferably automatically, against the actuating force. In particular, automatic locking occurs when the slide reaches its maximum lowered position.

[0079] The features of the above-described aspects of the present invention can be combined with one another as needed, even if this is not explicitly described. The present invention is not limited to laboratory mills that are designed and constructed for use with tool-free interchangeable cassettes.

[0080] Particularly preferred and advantageous aspects and features of the present invention are mentioned below with reference to the reference numerals used in the figures described below, without limiting the mentioned aspects and features to the embodiments shown in the figures.

[0081] Particularly preferred and advantageous aspects and features of the present invention relate to a laboratory mill, in particular a cutting mill (1) for laboratory operation, further in particular a table cutting mill, comprising a housing (2) and a drive motor (3) connected to the housing (2) with a drive shaft (4), wherein a grinding tool, in particular a cutting rotor (5) with at least one cutting blade (6), can be connected to the drive shaft (4), in particular for cutting and comminuting material to be ground by shearing action, comprising a grinding chamber (15) provided in the housing (2) for arranging the grinding tool in the grinding chamber (15) and comprising a material to be ground hopper (11) which has a material feed shaft (93) for feeding the material to be ground to the grinding chamber (15),

[0082] - wherein a shaft receptacle (92) formed by a recess or cutout and / or depression in the housing (2) is provided for the material feed shaft (93) and that the material feed shaft (93) is inserted at least partially into the shaft receptacle (92), in particular wherein

[0083] - a front or end face of the housing (2) can be inserted into the shaft receptacle (92) and / or wherein

[0084] - the material feed shaft (93) can be inserted into the shaft receptacle (92) and / or removed from the shaft receptacle (92) without tools and / or wherein

[0085] - a housing door (7) is provided which is pivotably mounted on the housing (2) and that the material feed shaft (93) can only be inserted into the shaft receptacle (92) in an open position of the housing door (7) and / or wherein

[0086] - the grinding material hopper (11) is designed as a separate assembly for detachable attachment to and / or with the housing (2) and / or wherein

[0087] - at least one connecting means is provided for the positive and / or non-positive connection of the grinding material hopper (11) to the housing (2) and / or wherein

[0088] - a grinding chamber rear wall and a grinding chamber side wall are formed on a replaceable cassette (14) and in the housing (2) a cassette receptacle (26) formed by a recess or cutout and / or depression in the housing (2) is provided for receiving the cassette (14), wherein the cassette (14) is inserted into the cassette receptacle (26) in a manner that is particularly replaceable without tools, and / or wherein the material feed shaft (93) and the cassette (14) have geometrically complementary edge geometries at opposite edge regions and / or wherein

[0089] - the cassette (14) can be inserted into the cassette holder (6) and / or removed from the cassette holder (26) independently of the material feed shaft (93) and / or wherein

[0090] - the cassette (14) can be inserted into the cassette receptacle (92) in the drive shaft direction relative to the material feed shaft (93) inserted into the shaft receptacle (92) and / or wherein the material feed shaft (93) and the cassette (14) are spaced apart from one another at opposite edge regions.

[0091] Further particularly preferred and advantageous aspects and features of the present invention, in particular in conjunction with features of the previously described preferred and advantageous aspects and features, relate to a laboratory mill, in particular a cutting mill (1) for laboratory operation, further in particular a table cutting mill, comprising a housing (2) and a drive motor (3) connected to the housing (2) with a drive shaft (4), wherein a grinding tool, in particular a cutting rotor (5) with at least one cutting blade (6), can be connected to the drive shaft (4), in particular for cutting and comminuting material to be ground by shearing action, comprising a grinding chamber (15) provided in the housing (2) for arranging the grinding tool in the grinding chamber (15) and comprising a material to be ground hopper (11) which has a material feed shaft (93) for feeding the material to be ground to the grinding chamber (15),

[0092] - wherein a housing door (7) is provided which is movable, in particular pivotable, from an open position into a closed position relative to the housing (2), and in that the grinding material hopper (11) has an openable shaft wall, wherein the shaft wall is formed by the housing door (7) when the housing door (7) is in the closed position, in particular wherein

[0093] - a frontal shaft wall of the material feed shaft (93) and, preferably, a frontal shaft wall of a material filling shaft (98) of the grinding material hopper (11) opening into the material feed shaft (93), is formed by the housing door (7) when the housing door (7) is in the closed position, and / or wherein

[0094] - the housing door (7) preferably substantially completely closes the material feed chute (93) and, preferably, the material filling chute (98) in the closed position, and / or wherein

[0095] - the housing door (7) in the closed position rests against the material feed chute (93) and, preferably, against the material filling chute (98) via at least one sealing element (38).

[0096] Further particularly preferred and advantageous aspects and features of the present invention, in particular in conjunction with features of the previously described preferred and advantageous aspects and features, relate to a laboratory mill, in particular a cutting mill (1) for laboratory operation, further in particular a table cutting mill, comprising a housing (2) and a drive motor (3) connected to the housing (2) with a drive shaft (4), wherein a grinding tool, in particular a cutting rotor (5) with at least one cutting blade (6), can be connected to the drive shaft (4), in particular for cutting and comminuting material to be ground by shearing action, comprising a grinding chamber (15) provided in the housing (2) for arranging the grinding tool in the grinding chamber (15) and comprising a material feed hopper (11) having a material feed shaft (93) for feeding the material to be ground to the grinding chamber (15),

[0097] - wherein in the material feed chute (93) a grinding material slide (100) is guided so as to be longitudinally movable between a raised position and a lowered position and a lock flap (104) is provided, in particular to close the material feed chute (93) to the grinding chamber (15) when the grinding material slide (100) is in the raised position, in particular wherein

[0098] - the grinding material hopper (100) has a material filling chute (98) opening into the material feed chute (93) and the lock flap (104) is arranged so as to be pivotable about a flap joint (107) to the inlet opening (103) of the material filling chute (98) into the material feed chute (93) and / or wherein the flap joint (104) is arranged in the region of the inlet opening (103) and / or wherein

[0099] - the material feed chute (93) is closed in a raised position of the grinding material slide (100) by a flap section (112) of the lock flap (104) adjacent to the material feed chute (93) and, preferably, extending from the flap joint (104) into the material feed chute (93) and / or wherein

[0100] - the inlet opening (103) is closed in a lowered position of the grinding material slide (100) by a flap section (113) adjacent to the material filling shaft (98) and, preferably, extending upwards from the flap joint (104) in the lowered position of the grinding material slide (100) and / or wherein

[0101] - the flap section (112) adjacent to the material feed chute (93) and / or the flap section (113) of the lock flap (104) adjacent to the material filling chute (98) are aligned at least partially, preferably completely, parallel to the longitudinal axis of the material slide (93) in the lowered position of the material slide (93) and / or rest laterally against the material slide (93) and / or wherein

[0102] - the longitudinal movement of the grinding material slide (93) and the pivoting movement of the lock flap (104) are kinematically coupled, in particular via a coupling rod, and / or wherein

[0103] - a kinematic coupling of the grinding material slide (93) and the lock flap (104) is provided in such a way that a longitudinal movement of the grinding material slide (93) in the direction of the grinding chamber (15) leads to a pivoting movement of the lock flap (104) even before the grinding material slide (93) and the lock flap (104) come into direct contact, and / or wherein

[0104] - that a purge air channel and / or purge air gap is formed below the flap joint (107) and / or on the underside of the lock flap (104) and / or wherein

[0105] - the grinding material hopper (11) has an openable shaft wall and that the lock flap (104) can preferably be removed from the grinding material hopper (11) without tools when the openable shaft wall is in an open position, and / or wherein

[0106] - complementary engagement geometries with teeth, prongs or tines are provided on the grinding material slide (100), the lock flap (104) and / or a scraper (131) arranged in the material feed shaft, wherein the engagement geometries come into mutual engagement when the grinding material slide is lowered in the material feed shaft, and / or wherein

[0107] - a detection unit is provided to detect a predetermined insertion position of the lock flap (104) in the grinding material hopper (11).

[0108] Further particularly preferred and advantageous aspects and features of the present invention, in particular in conjunction with features of the previously described preferred and advantageous aspects and features, relate to a laboratory mill, in particular a cutting mill (1) for laboratory operation, further in particular a table cutting mill, comprising a housing (2) and a drive motor (3) connected to the housing (2) with a drive shaft (4), wherein a grinding tool, in particular a cutting rotor (5) with at least one cutting blade (6), can be connected to the drive shaft (4), in particular for cutting and comminuting material to be ground by shearing action, comprising a grinding chamber (15) provided in the housing (2) for arranging the grinding tool in the grinding chamber (15) and comprising a material feed hopper (11) having a material feed shaft (93) for feeding the material to be ground to the grinding chamber (15),

[0109] - wherein in the material feed shaft (93) a grinding material slide (100) is guided so as to be longitudinally movable between a raised position and a lowered position, wherein the grinding material slide (100) is subjected to an actuating force for the automatic adjustment movement of the grinding material slide (100) from the lowered position into the raised position, in particular into a maximally raised position, in particular wherein

[0110] - a spring means, in particular a gas pressure spring (126), is provided to generate the actuating force, and / or wherein

[0111] - a locking means (101) is provided for preferably automatically locking the grinding material slide (100) in the lowered position against the actuating force. The invention is described below by way of example with reference to the drawings. The features shown and described using the example of a cutting mill can, if necessary, also be implemented in differently designed laboratory mills, in particular in rotor mills, such as impact rotor mills, or in impact cross mills.

[0112] The drawing shows:

[0113] Fig. 1 is a perspective view of a cutting mill according to the invention, obliquely from above;

[0114] Fig. 2 is a front view of the cutting mill from Fig. 1;

[0115] Fig. 3 shows a component group of the cutting mill from Fig. 1 in a perspective view after dismantling a front housing door of the cutting mill;

[0116] Fig. 4 shows the component group from Fig. 3 in a front view;

[0117] Fig. 5 shows a component group of the cutting mill from Fig. 1 in a perspective partial view after dismantling the housing door of the cutting mill;

[0118] Fig. 6A shows the detail VI-A from Fig. 3;

[0119] Fig. 6B shows the detail VI-B from Fig. 8;

[0120] Fig. 7A shows the detail VII-A from Fig. 5;

[0121] Fig. 7B shows the detail VII-B from Fig. 8;

[0122] Fig. 8 is a cross-sectional view of the cutting mill of Fig. 1 taken along the section line VIII-VIII of Fig. 18;

[0123] Fig. 9 shows the cutting mill from Fig. 1 in a perspective view after the housing door of the cutting mill has been opened;

[0124] Fig. 10 shows a perspective view of an interchangeable cassette of a first embodiment for the cutting mill from Fig. 1; Fig. 11 shows the interchangeable cassette from Fig. 10 in a front view;

[0125] Fig. 12 the interchangeable cassette from Fig. 10 in a rear view;

[0126] Fig. 13 a housing of the cutting mill from Fig. 1 in a perspective

[0127] Opinion;

[0128] Fig. 14 the housing from Fig. 13 in a front view;

[0129] Fig. 15 shows the housing from Fig. 13 in a rear view;

[0130] Fig. 16 shows a component group of the cutting mill from Fig. 1 in a perspective view with the interchangeable cassette and cutting rotor inserted into the housing from Fig. 13;

[0131] Fig. 17 a front view of the component group from Fig. 16

[0132] Fig. 18 is a plan view of the cutting mill according to the invention from Fig. 1;

[0133] Fig. 19 is a cross-sectional view of the cutting mill according to the invention from Fig. 18 along the section line XIX-XIX from Fig. 18 with an optionally provided stop as an anti-twist means on the inside of the housing of the cutting mill;

[0134] Fig. 20 shows detail XX from Fig. 19;

[0135] Fig. 21 is a longitudinal sectional view of the cutting mill of Fig. 18 along the section line XXI - XXI of Fig. 18;

[0136] Fig. 22 shows detail XXII from Fig. 21;

[0137] Fig. 23 is a perspective view of the housing of Fig. 13 with an interchangeable cassette according to another embodiment of the invention;

[0138] Fig. 24 shows the housing with the removable cassette shown in Fig. 23 in a front view; Fig. 25 shows a perspective view of the removable cassette from Fig. 23;

[0139] Fig. 26 is a front view of the interchangeable cassette from Fig. 25;

[0140] Fig. 27 a rear view of the interchangeable cassette from Fig. 25;

[0141] Fig. 28 is a perspective view of an outlet funnel for the interchangeable cassette shown in Fig. 23;

[0142] Fig. 29 is a front view of the outlet funnel of Fig. 28;

[0143] Fig. 30 shows a component group of the cutting mill from Fig. 1 in a front or end view after disassembly of the housing door of the cutting mill, wherein a grinding material slide is in a maximum raised position or in a grinding material filling position;

[0144] Fig. 31 the front or end view of the component group from Fig. 30 when lowering the grinding material slide;

[0145] Fig. 32 is a front view of the component group shown in Fig. 30, with the grinding material slide being shown in a maximum lowered position or grinding material compression position;

[0146] Fig. 33 is a perspective view of the grinding material hopper shown in Fig. 30;

[0147] Fig. 34 a rear view of the grinding material hopper from Fig. 33;

[0148] Fig. 35 the grinding material hopper shown in Fig. 33 after dismantling a rear wall of a hopper housing;

[0149] Fig. 36 the grinding material hopper shown in Fig. 34 after further disassembly of a back plate of the grinding material hopper;

[0150] Fig. 37 shows an embodiment of a grinding material slide for the grinding material hopper from Fig. 33 in a perspective view obliquely from the front; Fig. 38 shows a perspective view of a grinding material hopper of a preferred embodiment of the invention in a perspective view, wherein the hopper shows a grinding material slide in a sample filling position and an open outer flap of the grinding material hopper, which exposes a material filling shaft of the grinding material hopper;

[0151] Fig. 39 the grinding material hopper from Fig. 38 in a cross-sectional view;

[0152] Fig. 40 the grinding material hopper from Fig. 38 in a perspective view, with the grinding material slide raised from a maximum lowering position and the outer flap still partially open;

[0153] Fig. 41 the grinding material slide from Fig. 40 in a cross-sectional view;

[0154] Fig. 42 the grinding material slider from Fig. 38 in a perspective view, wherein the grinding material slider is in a removal position for the removal of an interchangeable cassette of the laboratory mill and / or for simplified cleaning of the interior of the laboratory mill and the outer flap is closed;

[0155] Fig. 43 is a cross-sectional view of the grinding material slide from Fig. 42;

[0156] Fig. 44 the grinding material slide from Fig. 38, wherein the grinding material slide is in a lowered position closing a material feed chute and the outer flap has been closed manually;

[0157] Fig. 45 is a cross-sectional view of the grinding material slide from Fig. 44;

[0158] Fig. 46 the grinding material slide from Fig. 38, wherein the grinding material slide is shown in a lowered position closing the material feed chute and a pivoting slide rests against the grinding material slide and

[0159] Fig. 47 is a cross-sectional view of the grinding material slide from Fig. 46.

[0160] With reference to Figures 1 to 32, features and aspects of a cutting mill 1 for laboratory use, in particular designed as a tabletop device, as well as features and aspects of two embodiments of an interchangeable cassette 14 designed for use with the cutting mill 1 shown are explained below. The cutting mill 1 shown has a housing 2 and a drive motor 3 connected to the housing 2 with a drive shaft 4. A cutting rotor 5 with cutting blades 6 can be connected to the drive shaft 4 in a manner known per se for cutting and comminuting the material to be ground by shearing.

[0161] The cutting mill 1 further comprises a housing door 7 which is pivotally connected to the housing 2 and which can be opened and closed from a closed position shown in Figs. 1 and 2 into an open position shown in Fig. 9. In the embodiment shown, the housing door 7 consists of a lower door section 8 and an upper door section 9, wherein the two door sections 8, 9 can be rigidly connected to one another or wherein the housing door 7 can also be formed integrally with the door sections 8, 9. However, an embodiment in which the door sections 8, 9 are formed as separate door parts and are held on the housing 2 so as to be pivotable relative to one another and independently of one another is not excluded.

[0162] Not shown is the possibility of providing a safety switch with a door signaling contact to detect the proper closing of the housing door 7. In particular, mill operation may only be possible once the housing door 7 has reached a predetermined closing position.

[0163] At the front, a door cover 10 is firmly connected to the lower door section 8. The housing door 7 can be opened or closed by pulling or pushing the door cover 10. For simplified handling, a handle element can be formed on the door cover 10, for example in the form of a bent edge of the door cover 10 or a recessed grip, by which the door cover 10 can be grasped and pulled forward to open the housing door 7 or pushed toward the drive motor 3 to close the housing door 7.

[0164] The cutting mill 1 further comprises a grinding material hopper 11 or a grinding material hopper and a cyclone separator 12, which may have a quick-release fastener 13 for a sample vessel at the outlet from the housing 2.

[0165] Fig. 3 and 4 show views of an assembly of the cutting mill from Fig. 1 after the housing door 7 has been dismantled. As can be seen from Fig. 3 and 4, a removable cassette is inserted into the housing 2

[0166] 14. The interchangeable cassette 14 forms a grinding chamber 15 and is designed for arranging the cutting rotor 5 with the cutting blades 6 in the grinding chamber 15. The interchangeable cassette 14 has a side wall 16 which defines the grinding chamber

[0167] 15 radially delimits it and forms a grinding chamber side wall (Fig. 10). The side wall 16 extends axially toward a rear wall 17 of the interchangeable cassette, which delimits the grinding chamber 15 in the axial direction on the motor side and forms a grinding chamber rear wall.

[0168] Stationary counterblades 18 are mounted on the inside of the side wall 16, which engage with the cutting blades 6 during the cutting and comminution of the material to be ground. The number of cutting blades 6 and counterblades 18 is not limited to the number shown in the exemplary embodiment.

[0169] Figures 10 to 12 show the interchangeable cassette 14 from Figures 3 and 4. The side wall 16 of the interchangeable cassette 14 is interrupted in the region of an upper cassette opening 19 and in the region of a lower cassette opening 20, so that two side wall sections 21, 22 are formed.

[0170] Furthermore, a shaft passage opening 23 is provided in the rear wall 17 of the exchangeable cassette 14 forming the grinding chamber rear wall, through which the cutting rotor 5 can be driven by the drive shaft 4.

[0171] At the door-side outer edges, the side wall sections 21, 22 merge into two radially extending collar sections 24, 25.

[0172] Figures 13 to 15 show the housing 2 of the cutting mill 1. The housing 2 has a central recess or depression that forms a cassette receptacle 26 for the interchangeable cassette 14. This allows the interchangeable cassette 14 to be inserted manually and without tools into the cassette receptacle 26 via an end or front side 27 of the housing 2 after the housing door 7 has been manually pivoted open from the housing 2 via the handle section of the door cover 10 and thus moved into an open position. The open position of the housing door 7 is shown in Fig. 9. Fig. 9 also shows two hinge parts 28, 29 with which the housing door 7 is pivotally held on the housing 2.

[0173] The interchangeable cassette 14 can be inserted into and removed from the cassette holder 26 without the use of tools. When inserted, the end faces 30, 31 of the collar sections 24, 25 of the interchangeable cassette 14 are slightly lowered relative to adjacent end faces 32 of the housing 2, but can also be aligned.

[0174] In the inserted state, the side wall 16 of the interchangeable cassette 14 extends in the axial direction of the drive shaft 4 and delimits the grinding chamber 16 in the radial direction, while the rear wall 17 of the interchangeable cassette 14 delimits the grinding chamber 15 on the motor side.

[0175] As can be seen from Fig. 10 and Fig. 12, the side wall 16 of the interchangeable cassette 14 forms radial bulges 33, so that pockets 34 are formed on the inside, which are provided for receiving and holding the counter knives 18. The counter knives 18 can be exchangeably or detachably attached to the interchangeable cassette 14 using appropriate locking and holding means. Furthermore, it is possible to provide setting and adjustment means in order to be able to set or finely adjust the counter knives to a desired cutting gap with the cutting knives 6.

[0176] It is also possible for the side wall 16 of the interchangeable cassette 14 to form a radial connection geometry, in the embodiment shown in the form of the radial bulges 33, which can bear against a holding geometry on a housing wall 35 of the housing 2 radially delimiting the interchangeable cassette receptacle 26 in order to form a positive connection in the circumferential direction. As can be seen from Figures 18 to 20, for example, an internal stop 36 connected to the housing wall 35 can be fastened to the housing wall 35, in particular detachably by screwing, wherein a spring means 37, for example a leaf spring, can be held on the stop 36, so that the interchangeable cassette 14, in the inserted state, bears against the housing wall 35 of the housing 2 without play in the circumferential direction due to the spring force of the spring means.When inserting the interchangeable cassette 14 into the cassette holder 26, the spring force then causes the interchangeable cassette 14 to be rotated into a circumferential position in which the interchangeable cassette 14 rests against the housing 2 without play.

[0177] Preferably, however, it is provided that, when the housing door 7 is closed, the interchangeable cassette 14 is pressed against an axial housing wall 39 of the housing 2 by force transmission from the housing door 7 via a sealing element 38 (see Figure 9) arranged between the housing door 7 and the interchangeable cassette 14, so that a positive connection in the circumferential direction is achieved solely by the compressive force transmitted to the interchangeable cassette 14 by the housing door 7. An additional anti-twist device in the form of a stop 36 on the inside of the housing wall 35 delimiting the cassette receptacle 26 is then unnecessary.

[0178] A central opening 39a is provided in the axial housing wall 39 of the interchangeable cassette (Figs. 13 - 15).

[0179] On the housing wall 35 of the housing 2, which radially delimits the cassette holder 26, a step 40 is provided in some areas on the inner edges (Fig. 14), whereby the interchangeable cassette 14 can be inserted into the cassette holder 26 and the end faces 30, 31 of the collar sections 24, 25 of the interchangeable cassette 14 do not protrude forwards relative to the end face 32 of the housing 2.

[0180] As can be seen from Figs. 21 and 22, an axial connection geometry with an axial contact surface 41 for contacting a contact surface 42 on the housing wall 39 of the housing 2 axially delimiting the cassette receptacle 26 is formed on the rear wall 17 of the interchangeable cassette 14. Preferably, the interchangeable cassette 2 only abuts the housing 2 in the axial direction via the axial connection geometry, and not via the collar sections 24, 25 of the interchangeable cassette 14 and the steps 40 on the housing 2.

[0181] The connection geometry allows the interchangeable cassette 14 to be held at a distance from the housing 2 in the axial direction.

[0182] Preferably, the axial connection geometry on the rear wall 17 of the exchangeable cassette 14 is formed by an annular projection 43. It is understood that a corresponding connection geometry can also be provided on the axial housing wall 39 of the housing 2.

[0183] As can be seen from Fig. 9, a grinding chamber cover 44 is inserted into the lower door section 8 on the inside or motor side, which adjoins a shaft cover 45 inserted into the lower door section 8 and the upper door section 9 on the motor side.

[0184] Fig. 9 shows the sealing element 38, which encloses the shaft cover 45 and the grinding chamber cover 44 in the region of the lower door section 8. The radial distance of the sealing means 38 from the axis of rotation of the drive shaft 4 is selected such that the sealing means 38 comes into contact with the collar sections 24, 25 of the interchangeable cassette 14 when the housing door 7 is closed and a sufficient clamping force can be transmitted to the interchangeable cassette 14 via the housing door 7 in the closed state in order to press the interchangeable cassette 14 with the contact surface 41 on the rear wall 17 of the interchangeable cassette 14 against the contact surface 42 on the axial housing wall 39 of the housing 2 and thereby achieve a positive connection of the interchangeable cassette 14 in the circumferential direction of the cassette holder 26. The housing door 7 interacts with the sealing element 38 as a clamping means for applying a compressive and clamping force to the interchangeable cassette 14 in the axial direction to the drive motor 3.

[0185] As shown schematically in Fig. 19, a sieve insert 46 can be removably secured to the inside of the side wall 16 of the interchangeable cassette 14. For this purpose, the side wall 16 can form a sieve seat to which the sieve insert 46 is held in a form-fitting and / or force-fitting manner. The sieve insert prevents coarser ground material components from escaping uncomminuted from the area of ​​the grinding chamber 15 through the lower cassette opening 20 and from being further crushed.

[0186] With reference to Figs. 21 and 22, which show a cross-sectional view of the cutting mill 1, a cassette centering device for the interchangeable cassette 14 is described below by way of example. The cassette centering device is formed on the rear wall 17 of the interchangeable cassette 14 in the form of a radial contact surface 47 of the interchangeable cassette 14, which is centered on a radial centering surface 48 of an intermediate flange 49, which is connected to the housing 2 in a rotationally fixed manner and is coaxial with the drive shaft 4 of the drive motor 3. The centering surface 48 could in principle also be formed on the housing 2. The intermediate flange 49 provides a larger centering surface in the axial direction for the radial contact surface 47 of the interchangeable cassette 14, so that highly precise centering is possible.

[0187] The intermediate flange 49 serves to connect a motor housing 51 of the drive motor 3 to the housing 2. A motor flange 50 of the motor housing 51 is connected to the housing 2 in a rotationally fixed manner via the intermediate flange 49 and the drive motor 3 is held on the housing 2.

[0188] A shaft sleeve 52 is mounted on the drive shaft 4 as a receiving element for the cutting rotor 5. The torque is transmitted from the drive shaft 4 to the cutting rotor 5 via the shaft sleeve 52. The interchangeable cassette 14 can be pushed onto the shaft sleeve 52 coaxially to the drive shaft 3. When the interchangeable cassette 14 is centered, the fit clearance between the interchangeable cassette 14 and the shaft sleeve 52 is greater than the fit clearance between the radial contact surface 47 of the interchangeable cassette 14 and the radial centering surface 48 of the intermediate flange 49. The interchangeable cassette 14 can be easily pulled out by hand from the centering seat formed on the intermediate flange 49. The minimum and maximum clearance between the interchangeable cassette 14 and the shaft sleeve 52 can be greater than the minimum and maximum clearance between the interchangeable cassette 14 and the intermediate flange 49.

[0189] In the embodiment shown, the cassette centering is formed by an annular centering extension 53, which is formed on the rear side of the rear wall 17 of the interchangeable cassette 14. The centering extension 53 has the radial contact surface 47 on its outer side. A centering opening, which is delimited by the centering surface 48, is provided in the center of the intermediate flange 49. The centering extension 53 can be pushed or inserted into the centering opening with a precise fit, at least in sections, over a predetermined insertion length. When inserted, the drive shaft 4 passes through the centering opening in the intermediate flange 49 and the shaft passage opening 23 of the interchangeable cassette 14. In the centered state, the centering extension 53 is then radially connected between the intermediate flange 49 and the drive shaft 4 orthe shaft sleeve 52 connected to the drive shaft 4 and centered via the interacting contact surfaces on the radial outer side of the centering extension 53 and the radial inner side of the intermediate flange 49. This allows for very precise centering of the interchangeable cassette 4, either directly or indirectly, on the housing 2.

[0190] To seal the shaft passage opening 23, in particular to prevent comminuted ground material from reaching the bearings of the drive motor 3 via the area formed between the centering extension 53 and the adjacent shaft sleeve 52, the shaft passage opening 23 in the embodiment shown is sealed by a contact seal, in particular a radial shaft seal or an annular seal, further in particular by a felt seal 54. The felt seal 54 can be formed by an adapter with an inserted felt strip and effectively protects against the passage of finely comminuted ground material.

[0191] As can be seen from Figs. 10 to 12, in a preferred embodiment, the interchangeable cassette 14 can have a lower cassette opening 20 which is not arranged centrally below the shaft passage opening 23 and opens vertically downwards, but is arranged laterally offset from the shaft passage opening 23 and opens essentially horizontally to the side. This enables lateral removal of the comminuted ground material from the grinding chamber 15, wherein the ground material is deflected on an inner surface 55 of the side wall section 21 of the interchangeable cassette 14 in the region below the shaft passage opening 23 from a radially outward flow direction into a horizontal flow direction and exits the interchangeable cassette 14 in a horizontal flow direction. This is shown schematically in Fig. 10 by the arrows 56.

[0192] The side wall 16 of the exchangeable cassette 14 shown in Figs. 10 to 12 is closed in the vertical direction so that the ground material cannot be discharged in the direction of gravity.

[0193] When the interchangeable cassette 14 is inserted into the housing 2, the lower cassette opening 20 is located within the housing 2, as shown, for example, in Figs. 3, 4 and 9.

[0194] As can be further seen from Figs. 13 and 14, the housing 2 has a cyclone receptacle 57 formed by a further recess or depression in the housing 2 for receiving the cyclone separator 12. The interchangeable cassette 14 and the cyclone separator 12 are separate components and can be inserted into or removed from the respective receptacles 26, 57 independently of one another. Due to the structural separation of the interchangeable cassette 14 and the cyclone separator 12, it is possible to insert the interchangeable cassette 14 into the cassette receptacle 26 independently of the cyclone separator 12 or to remove it from the cassette receptacle 26 to replace the interchangeable cassette 14. The cyclone separator 12 can remain in the cyclone receptacle 57. Particularly for cleaning purposes, it is advantageous to be able to remove and reinsert the interchangeable cassette 14 from the housing 2 independently of the cyclone separator 12.

[0195] The cyclone separator 12 shown in Figs. 3 and 4 can be inserted into the cyclone receptacle 57 and removed from the cyclone receptacle 57 from the front via a front side of the housing 2 after opening the housing door 7, preferably without tools and / or independently of the interchangeable cassette 14.

[0196] The geometry of the cassette holder 26 is adapted to the outer geometry of the interchangeable cassette 14 to enable the interchangeable cassette 14 to be inserted into the cassette holder 26. Likewise, the housing 2's mounting geometry in the area of ​​the cyclone holder 57 is adapted to the outer dimensions and the outer geometry of the cyclone separator 12 to enable the cyclone separator 12 to be inserted into the cyclone holder 57.

[0197] Preferably, the cyclone separator 12 can be fully inserted into the cyclone receptacle 57 in the axial direction and is then fully integrated into the housing 2 in a closed position of the housing door 7 in the axial direction.

[0198] The cyclone receptacle 57 and the cassette receptacle 26 are formed by a common recess or merge into one another. When the interchangeable cassette 14 is inserted, the lower cassette opening 20 of the embodiment of the interchangeable cassette 14 shown in Figs. 10 to 12 is aligned laterally with the cyclone receptacle 57, i.e., with the first receiving area 58.

[0199] The cyclone receptacle 57 is formed by a recess or depression in the housing 2, which has a first, essentially horizontally extending first receiving area 58 and a second, preferably essentially vertically extending second receiving area 59 to the first receiving area 58. This is also shown in Figs. 13 and 14. The first receiving area 58 merges into the second receiving area 59, and the second receiving area 59 opens into a lower housing opening 60 of the housing 2. The housing opening 60 is provided laterally offset from the central housing opening 39a or laterally offset from the axis of rotation of the drive shaft 4 on the underside of the housing 2.

[0200] The first receiving area 58 of the cyclone receptacle 57 serves to accommodate an inlet channel 62 with an inlet opening 63 (see Fig. 8) leading to a vortex chamber 61 of the cyclone separator 12. The inlet opening 63 adjoins the lower cassette opening 20 of the interchangeable cassette 14 in the flow direction of a grinding material air stream, which is sucked out of the grinding chamber 15 by the cyclone separator 12 via the lower cassette opening 20.

[0201] In the embodiment shown, the vortex chamber 61 is formed by a rotationally symmetrical upper part 65, which merges into a conical lower part 66 of the cyclone separator 12, which forms a separation chamber 67 and extends downwards in the second vertical receiving area 59 of the cyclone receptacle 57 beyond the housing opening 60 of the housing 2. The quick-release fastener 13 for a sample container is arranged at the end of the conical lower part 66 that protrudes from the housing 2 beyond the housing opening 60.

[0202] Furthermore, the second receiving area 59 of the cyclone receptacle 57 serves to receive an immersion tube 64 of the cyclone separator 12 extending vertically through the vortex chamber 61.

[0203] The inlet channel 62 is delimited by an upper channel wall 68, a lower channel wall 69, a rear channel wall 70 and a front channel wall 71. The channel walls 68 to 71 can be detachably connected to one another.

[0204] The immersion tube 64 ends at the bottom at the transition between the vortex chamber 61 and the separation chamber 66. At the top, the immersion tube 64 opens into a suction channel 73 of the housing 2 via a sealing element 72 at the outlet from the upper channel wall 68. The suction channel 73 opens into a connection opening 74 of the housing 2 for connection to a suction pipe of a suction device.

[0205] The rotationally symmetrical vortex chamber 61 creates a rotary flow when a ground material air stream is extracted by a suction device via the connection opening 74, with the ground material air stream being fed tangentially to the vortex chamber 61 via the inlet channel 62. In the vortex chamber 61, the ground material and air stream are then separated in the separation chamber 67, with the ground material being conveyed via the lower part 66 under the influence of gravity into a sample container held by the quick-release fastener 13.

[0206] It is understood that the cyclone or centrifugal separator 12 may also have a structural design that differs from the one shown.

[0207] When inserting the interchangeable cassette 14 and cyclone separator 12 independently of one another, it is advantageous if the edge geometries of the interchangeable cassette 14 and the cyclone separator 12, which are adjacent to one another, are designed to be complementary to one another in such a way that the interchangeable cassette 14 and the cyclone separator 12 can be displaced relative to one another in the direction of the drive shaft 4 when inserted into the cassette receptacle (26) or into the cyclone receptacle (57). This enables simple axial insertion and axial removal into or from the respective receptacle 26, 57 of the housing 2. As can be seen in particular from Fig. 7, the interchangeable cassette 14 and the cyclone separator 12 are spaced from one another at adjacent edge geometries.The spacing ensures that forces that occur during the cutting operation of the cutting mill 1 and that can lead to the interchangeable cassette 14 being moved relative to the cyclone separator 12 cannot lead to an unwanted contact between the edge geometries of the interchangeable cassette 14 and the cyclone separator 12.

[0208] By extracting a mixture of grinding material and air via the cyclone separator 12, grinding in the grinding chamber 15 can be carried out at a negative pressure level. A design with a circumferential gap 75 between the edge geometries of the interchangeable cassette 14 and the cyclone separator 12 (see Figs. 7A and 7B) and between the interchangeable cassette 14 and the housing 2 adjacent in the area of ​​the cassette opening 20 is suitable for sucking in infiltration air through the resulting gap 75. Infiltration air from the environment is then sucked into the inlet channel 62 of the cyclone separator 12 between the adjacent edge geometries of the interchangeable cassette 14 and the cyclone separator 12 and fed to the vortex chamber 61. This prevents the escape of grinding material beyond the boundary area of ​​the adjacent edge geometries into the cassette receptacle 26 and the cyclone receptacle 57.

[0209] In Figs. 7A and 7B, a gap 75 is shown schematically between the adjacent edge regions of the side wall sections 21, 22 and the rear wall 17 of the exchangeable cassette 14 on the one hand and the adjacent edge regions of the channel walls 68 to 71, which form the inlet channel 62 of the cyclone separator 12, on the other hand.

[0210] The spacing or the gap 75 formed between the interchangeable cassette 14 and the cyclone separator 2 extends - in particular with reference to the cross-sectional view shown in Fig. 7B - preferably along the entire extension length of the adjacent edge geometries of the interchangeable cassette 14 and the cyclone separator 12 and in particular over the entire surface of the adjacent edge geometries.

[0211] The sealing between the housing door 7 and the interchangeable cassette 14 and the cyclone separator 12 is achieved in the closed position of the housing door 7 via the sealing element 38 (Fig. 9), which extends over the adjacent edge geometries of the interchangeable cassette 14 and the cyclone separator 12. Furthermore, adjacent inner surfaces of the interchangeable cassette 14 and the cyclone separator 12 can be aligned when inserted into the housing 2 in order to prevent the agglomeration of comminuted ground material on projections, edges, or the like extending into the flow path of the extracted ground material air stream.

[0212] Figs. 23 to 27 show another embodiment of an interchangeable cassette 14. Corresponding features of the interchangeable cassette 14 shown in the preceding figures and described above and the interchangeable cassette 14 described below with reference to Figs. 23 to 27 are identified by the same reference numerals.

[0213] The interchangeable cassette 14 shown in Figs. 23 to 27 has a lower cassette opening 20 for vertical downward discharge of the ground material. The ground material is discharged in the direction of gravity. The side wall 16 is radially closed, with the exception of the upwardly directed cassette opening 19 and the lower cassette opening 20.

[0214] As can be seen from a comparison of Figs. 10 to 12 on the one hand and 25 to 27 on the other, both embodiments of the interchangeable cassette 14 have a matching external geometry, so that both interchangeable cassettes 14 can be inserted into the cassette receptacle 26 as needed. In both embodiments of the interchangeable cassette 14, the grinding material is fed via the upper cassette opening 19 at an angle a to the perpendicular passing through the center of the shaft passage opening 23. This is shown schematically for both embodiments in Figs. 11 and 26.

[0215] In the second embodiment of the interchangeable cassette 14 shown in Figs. 23 to 25, the cassette has on the inner side a circular segment-shaped upper side wall profile and an adjoining trapezoidal lower side wall profile which merges into the lower cassette opening 20.

[0216] In the first embodiment of the interchangeable cassette 14 shown in Figs. 10 to 12, the upper circular segment-shaped side wall profile transitions into a lower horizontal side wall profile and into the laterally oriented cassette opening 20. Figs. 13 to 15 show that the housing 2 has an outlet funnel receptacle 77 formed by a further recess or depression in the housing 2 below the housing opening 39a. The outlet funnel receptacle 77 is provided for inserting an outlet funnel 78, which is shown in Figs. 28 and 29.

[0217] The cassette receptacle 26 and the outlet funnel receptacle 77 are formed by a common recess or depression in the housing 2 and merge into one another. When inserted, the lower grinding material outlet opening 20 of the interchangeable cassette 14 shown in Figs. 24 to 27 is aligned with the outlet funnel receptacle 77. The outlet funnel receptacle 77 opens into a further lower housing opening 79 of the housing 2, which is provided centrally to the axis of rotation of the drive shaft 4 below the housing opening 39a. This creates the possibility of inserting an interchangeable cassette 14 with a laterally arranged grinding material outlet opening 20 or with a grinding material outlet opening 20 arranged below for vertical removal of the grinding material in the direction of gravity into the housing 2, if required.

[0218] Not shown and not excluded is an embodiment of an interchangeable cassette 14 which has a lower grinding material outlet opening for a vertical removal of the grinding material in the direction of gravity and a lateral grinding material outlet opening for a lateral removal of the grinding material in cyclone operation, wherein a closure means can then be provided in order to close one of the two openings in each case depending on the removal of the grinding material in the direction of gravity or on the removal of the grinding material during suction by means of a cyclone.

[0219] On the inside, both side wall sections 21, 22 of the side wall 16 of the interchangeable cassette 14 can form a seat 80 for the inner edge of the outlet funnel 78. In the embodiment shown, the seat 80 is formed by a cutout of the collar sections 24, 25 of the side wall sections 21, 22 adjacent to the cassette opening 20.

[0220] The outlet funnel 77 is formed according to Figs. 28 and 29 by a truncated pyramid-shaped or truncated cone-shaped funnel inlet 81, which is connected to a funnel neck 82 via an anti-interference device 83. The upper side edges 84 of longitudinal side walls 85 of the funnel inlet 81 rest against the side wall sections 21, 22 of the interchangeable cassette 14 from below when inserted.

[0221] Preferably, the funnel inlet 81 lies unsealed against the side wall sections 21, 22 and the rear wall 17 of the interchangeable cassette 14 in the region of the side edges 84 of the longitudinal sides 85 and in the region of the longitudinal edge 89 of a rear wall 90 of the funnel inlet 81.

[0222] The connection geometries of the interchangeable cassette 14 and the outlet funnel 78 are selected such that the crushed material can exit unhindered from the lower cassette opening 20 into the funnel inlet 81. For this purpose, the adjacent inner surfaces of the interchangeable cassette 14 and the outlet funnel 78 can be aligned and / or an expansion of the clear flow cross-section is provided at the transition from the interchangeable cassette 14 to the outlet funnel 78.

[0223] The anti-tamper device 83 can be detachably attached to the housing 2, for example, by screwing it from below. When attached, the anti-tamper device 83, which can be formed by two retaining and fastening tabs 87 extending transversely to the direction of gravity, closes the further housing opening 79 of the housing 2 adjacent to the funnel neck 2. The anti-tamper device 83 prevents any access to the rotor area via the lower housing opening 79, with the outlet funnel 78 fulfilling a safety function.

[0224] According to Figs. 23 and 24, the size and geometry of the outlet funnel receptacle 77 in the housing 2 are selected such that the funnel inlet 81, when the outlet funnel 78 is inserted or mounted, is arranged within the housing 2 and abuts radially against the interchangeable cassette 14. The funnel neck 82 is preferably arranged outside the housing 2 and has an internal inlet opening 88 for the ground material, through which the ground material then enters the funnel neck 82 and exits the housing 2. The funnel neck 82 can have a holding device for holding a sample vessel at its free end.

[0225] The outlet funnel 78 is preferably open on its front side. A front end wall of the funnel inlet 81 is formed by the inside of the housing door 7 when the housing door 7 is in the closed position. Furthermore, the complementary edge geometries of the interchangeable cassette 14 and the outlet funnel 78 and the receiving geometries of the cassette receptacle 26 and the outlet funnel receptacle 77 enable the interchangeable cassette 14 and the outlet funnel 78 to be inserted into the housing 2 or removed from the housing 2 independently of one another. Both the outlet funnel 78 and the interchangeable cassette 14 can be inserted into or removed from the respective receptacles 26, 77 via a front side of the housing 2 when the housing door 7 is open.In order to simplify handling, the interchangeable cassette 14 and the outlet funnel 78 are preferably displaceable relative to one another in the direction of the drive shaft 4 and can thus be inserted one after the other into the respective receptacle 26, 77 or removed from the respective receptacle 26, 77.

[0226] Figs. 10 and 25 show that the side wall sections 21, 22 of the interchangeable cassette 14 can be linear in the inlet area of ​​the upper cassette opening 19 and run parallel to one another, thus creating a grinding material inlet 91 for the grinding material fed into the grinding chamber 15 and to be comminuted. The grinding material inlet 91 is preferably oriented obliquely to the vertical, which is schematically shown in Figs. 11 and 26 by the angle α. The grinding material is thus fed to the cutting rotor 5 obliquely from above and laterally offset from the rotational axis of the cutting rotor 5.

[0227] Preferably, in both embodiments shown, the interchangeable cassette 14 is held in the cassette holder 26 in a form-fitting manner solely due to the contact pressure transmitted from the housing door 7.

[0228] Furthermore, preferably no connecting, locking, and / or arresting means are provided that must be (manually) actuated to insert the cassette into the cassette holder and / or to remove the cassette from the cassette holder. This ensures easy handling of the interchangeable cassette 14 when inserting and removing it from the housing 2.

[0229] On the housing 2, above the cassette receptacle 26, a shaft receptacle 92 can be provided for at least partially inserting a material feed shaft 93 of the grinding material hopper 11 into the housing 2 and for feeding grinding material into the grinding chamber 15. Reference is made in particular to Figures 3, 4 and 13, 14.

[0230] The shaft receptacle 92 is in turn formed by a recess or depression in the housing 2, which forms a receiving area for the material feed shaft 93, inclined to the direction of gravity, and opens into an upper housing opening 94 of the housing 2. The upper housing opening 94 is preferably arranged laterally offset from the axis of rotation of the drive shaft 4.

[0231] The cassette holder 26 and the grinding material holder 92 are formed by a common, continuous and uninterrupted recess in the housing 2.

[0232] When the interchangeable cassette 14 is inserted, the upper cassette opening 19 of the interchangeable cassette 14 is aligned with the shaft receptacle 92 to enable the grinding material to be fed to the cutting rotor 5. Thus, in the embodiment shown, no frontal or end-side feeding of the grinding material to the rotor 5 is provided.

[0233] In the embodiment shown, the material feed chute 93 is formed by a baffle wall 95, an opposite side wall 96 and a rear wall 97. The side wall 96 forms a filling slope 99 at the junction area of ​​a material filling chute 98 into the material feed chute 93.

[0234] The part of the side wall 96 forming the filling slope 99 delimits the material filling chute 98 in the vertical downward direction. The material filling chute 98 and the material feed chute 93 overlap in the inlet area and merge into one another, with a grinding material slide 100 guided in the material feed chute 93 for longitudinal adjustment.

[0235] A locking device 101 is provided for automatically locking the grinding material slide 100 in a lowered position (Fig. 8). Above the opening area of ​​the material filling chute 98 into the material feed chute 93, an upper side wall 102 is provided, which laterally delimits the material feed chute 93 above the opening area.

[0236] The front sides of the material feed chute 93 and the material filling chute 98 are open. Front chute walls of the material feed chute 93 and the material filling chute 98 can be formed at least partially, preferably at least substantially completely, on the housing door 7. In the closed position, with the material feed chute 93 inserted into the chute receptacle 92, the housing door 7 then forms at least partially the front chute walls and closes the material feed chute 93 and the material filling chute 98 at least partially, preferably completely. By opening the housing door 7, the material feed chute 93 and the material filling chute 98 are released for external access when the housing door 7 is in the open position, for example for cleaning purposes. In the closed position of the housing door 7, the housing door 7 forms the front or end shaft walls of the material feed shaft 93 and the material filling shaft 96.The housing door 7 preferably closes or covers the material feed chute 93 and the material filling chute 98 essentially completely in the closed position of the housing door 7.

[0237] As a result, the material feed chute 93 and the material filling chute 98 are not designed to be closed all the way around, but are designed to be open at least partially, preferably completely, at the front. The cut-out wall section at the front is formed by the housing door 7 in the closed position of the housing door 7. In the open position of the housing door 7, access to the interior of the chutes 93, 98 is thus possible, in particular access to the lock flap 104. This will be described in detail below.

[0238] In the embodiment of the cutting mill 1 shown, the front shaft wall of the material feed shaft 93 is formed in the closed state of the housing door 7 by the door insert 45 shown in Fig. 9, which can be made of an abrasion-resistant material.

[0239] To seal the material feed chute 93 and the material filling chute 98 against the housing door 7, the sealing element 38 shown in Fig. 9 is provided. On the side of the baffle 95, it extends essentially over the entire height of the baffle 95 and, on the opposite side, follows the course of the side wall 96. When the housing door 7 is closed, the sealing element 38 comes into contact with the baffle 95 and the side wall 96.

[0240] For grinding, the material to be ground is added via the material feed chute 98, and the material feed slide 100 is raised, exposing a filling opening 103 where the material feed chute 98 opens into the material feed chute 93 (Fig. 8). The material to be ground then enters the grinding chamber 15 and is propelled outward again by the rotating cutting blades 6. The material feed slide 100 is then moved downward and secured there, preferably with the locking means 101. This reduces the grinding chamber and moves the material to the rotating cutting blades 6 of the cutting rotor 5 until it is carried along and cut by the counter blades 18.

[0241] Furthermore, a lock flap 104 can be provided which closes the material feed chute 93 in the raised state of the grinding material slide 100, as shown for example in Fig. 8, and thus ensures that manual intervention in the material feed chute 93 is not possible when the grinding material slide 100 is raised.

[0242] When the material feed chute 93 is inserted into the chute receptacle 92, the material feed chute 93 is oriented obliquely to the direction of gravity with respect to its central longitudinal axis. This results in an advantageous supply of ground material to the cutting rotor 5 during grinding operation.

[0243] As can be seen in particular from Figs. 6A and 6B, the exchange cassette 14 and the material feed shaft 93 of the grinding material hopper 11 are completely spaced apart from each other at all adjacent edge geometries.

[0244] The material feed chute 93 and the interchangeable cassette 14 are spaced apart from each other at opposite edge regions. Preferably, the material feed chute 93 and the interchangeable cassette 14 are spaced apart from each other across all adjacent edge geometries.

[0245] 6A and 6B schematically show a gap 105 between the adjacent edge regions of the side wall sections 21, 22 and the rear wall 17 of the interchangeable cassette 14, on the one hand, and the adjacent edge regions of the impact wall 95, the side wall 96, and the rear wall 97 of the material feed chute 93. If, during grinding operation with the cyclone separator 12, a negative pressure level is generated in the region of the grinding chamber 15, this leads to infiltration of air from the environment via the chute receptacle 92 through the gap 105 formed between the adjacent edge geometries of the material feed chute 93 and the interchangeable cassette 14, thus preventing the escape of material to be ground via the adjacent edge geometries. The spacing or the gap 105 formed between the interchangeable cassette 14 and the material feed chute 93 extends - particularly with reference to the area shown in Fig.6B - preferably along the entire extension length of the adjacent edge geometries of the exchange cassette 14 and the material feed shaft 93 and in particular over the entire surface of the adjacent edge geometries.

[0246] In particular, adjacent edge geometries of the interchangeable cassette 14 and the material feed chute 93 can form a labyrinth geometry. These edge geometries can form a non-contact gap seal. The sealing effect is then based on an extension of the flow path, which significantly increases the flow resistance. The path extension is achieved by an interlocking or "intermeshing" of complementary connecting geometries in the edge areas of the interchangeable cassette 14 and the material feed chute 93. The formation of a labyrinth geometry between adjacent edge geometries further impedes the escape of ground material via the adjacent edge geometries.

[0247] The connection of the grinding material hopper 11, which is designed as a separate assembly from the cutting mill 1, with the cutting mill 1 is preferably carried out by inserting the material feed shaft 93 into the shaft receptacle at the front or axially

[0248] 92. Fixing means 124, such as screws, may be provided to connect a hopper housing 106 of the grinding material hopper 11 to the housing 2 in a form-fitting and / or force-fitting manner. The connection of the grinding material hopper 11 to the cutting mill

[0249] 1 is carried out in particular in such a way that the grinding material hopper is connected to the material feed shaft

[0250] 93, when the housing door 7 of the housing 2 is open, is inserted into the shaft receptacle 92 at the front or axially. During insertion, the material feed shaft 93 is pushed in the axial direction or toward the drive motor 3 into the complementary connection geometry of the housing 2 until the rear of the material feed shaft 93 comes to rest against a rear wall of the housing 2.

[0251] When the material feed shaft 93 is inserted into the shaft receptacle 92, the hopper housing 106 of the grinding material hopper 11 can then stand on the housing 2.

[0252] Particularly preferably, the exchangeable cassette 14 and the material feed shaft 93 can be inserted into the housing 2 and / or removed from the housing independently of one another.

[0253] 2. In particular, the interchangeable cassette 14 can be inserted into the cassette receptacle 26 independently of the material feed chute 93 and / or removed from the cassette receptacle 26. The cassette 14 can be inserted into the cassette receptacle 26 in the drive shaft direction relative to the material feed chute 93 inserted into the chute receptacle 92. A corresponding design of the connection geometries of the interchangeable cassette 14 and the material feed chute 93 of the grinding material hopper is provided for this purpose. The ability to remove the interchangeable cassette 14 from the housing 2 and insert it into the housing 2 independently of the grinding material hopper 11 simplifies cassette changing.

[0254] Particularly preferably, the material feed shaft 93 can be inserted into the shaft receptacle 92 and / or removed from the shaft receptacle 92 without tools.

[0255] When the interchangeable cassette 14 and the material feed chute 93 are inserted, the adjacent inner surfaces of both components can be aligned and / or an expansion of the flow cross-section can be provided at the transition between the inner surfaces of the material feed chute 93 and the interchangeable cassette 14. This prevents particle agglomerations in the transition area of ​​the inner surfaces due to edges or projections or the like protruding into the flow cross-section.

[0256] It is understood that the above-mentioned embodiments can also be provided in a cutting mill 1 with an interchangeable cassette 14, which is fixed in the cassette holder 26 in a tool-related manner, for example by means of a screw connection.

[0257] The structure and function of the lock flap 104 are explained in more detail with reference to Figs. 30 to 32.

[0258] The lock flap 104 is arranged pivotably about a flap joint 107 relative to the filling opening 3 or the inlet opening of the material filling chute 98 into the material feed chute 93. As can be seen from Figs. 30 to 32, the hopper housing 106 has two housing panels 108, 109 on the front or end side, which panel the material feed chute 93 and the material filling chute 98 laterally and toward the end or front side of the housing 2.

[0259] Fig. 30 shows the position of the lock flap 104 in a maximally raised position of the grinding material slide 100 or in a grinding material filling position in which the material feed chute 93 in the transition area to the exchangeable cassette 14 is closed by the lock flap 104. Fig. 31 schematically shows the direction of movement of the lock flap 104 when the grinding material slide 100 is lowered by the arrows 110, 111.

[0260] In Fig. 32, the grinding material slide 100 is shown in the maximum lowered position in which the grinding material slide 100 has reached a grinding material compaction position.

[0261] The flap joint 107 is provided in the area of ​​the inlet or filling opening 103. In the grinding material filling position of the grinding material slide 100, the material feed chute 93 is closed by an internal (first) flap section 112 of the lock flap 104. This is shown in Fig. 30.

[0262] According to Fig. 32, the inlet opening from the material filling chute 98 into the material feed chute 93 is closed in the lowered position of the grinding material slide 100 by an outer (second) flap section 113 adjacent to the material filling chute 98 and extending upward from the flap joint 107 in the lowered position of the grinding material slide 100. The flap sections 112, 113 then extend, with respect to the longitudinal axis, essentially parallel to the longitudinal axis of the grinding material slide 100 and bear laterally against the grinding material slide 100.

[0263] In the maximally lowered position of the grinding material slide 100, the lock flap 104 thus prevents access via the material filling chute 98 and the filling opening 103 into the material feed chute 93, namely by the outer (second) flap section 113. In the raised position of the grinding material slide, on the other hand, the inner (first) flap section 112 ensures effective splash-back protection for grinding material from the grinding chamber 15.

[0264] Fig. 33 shows the grinding material hopper 11 in a perspective view obliquely from the front, and Fig. 34 shows the grinding material hopper 11 in a perspective view obliquely from the rear. Figs. 35 and 36 show the hopper housing 106 after disassembly of a rear wall 136 (Fig. 34).

[0265] In the embodiment shown, the longitudinal movement of the grinding material slide 100 and the pivoting movement of the lock flap 104 are preferably kinematically coupled, in particular via a coupling rod shown in Figs. 35 and 36 with coupling plates 114 to 118. The first coupling plate 114 is connected or coupled to the flap joint 107. A guide rod 119 is passed through the last coupling plate 118, which is connected at the lower end to a connecting part 120 of the material feed chute 93 and at the upper end to the grinding material slide 100. When the grinding material slide 100 is lowered, a stop 121 is moved together with the grinding material slide 100 (Fig. 36), which interacts with the last coupling plate 118 when the grinding material slide 100 is lowered sufficiently. An adjustment movement of the grinding material slide 100 then automatically leads to an adjustment movement of the lock flap 104 into the closed position.

[0266] In particular, a kinematic coupling of the grinding material slide 100 and the lock flap 104 is provided in such a way that a longitudinal movement of the grinding material slide 100 in the direction of the grinding chamber 15 leads to a pivoting movement of the lock flap 104 even before the grinding material slide 100 and the lock flap 104 come into direct contact.

[0267] When the housing door 7 of the housing 2 is open, the lock flap can be removed from the front of the grinding material hopper 11, preferably without tools. This simplifies cleaning of the grinding material hopper 11 in the area of ​​the material feed chute 93 and the material filling chute 98 when the lock flap 104 is removed from the grinding material hopper 11. Furthermore, the lock flap 104 can also be easily cleaned in this way.

[0268] To ensure that the lock flap 104 has reached a predetermined insertion position when it is reinserted by sliding it onto the flap joint 107, a safety switch 123 can be provided as part of a detection unit to detect a predetermined insertion position of the lock flap in the grinding material hopper 11. As can be seen from Fig. 35, a back plate 122 is provided on the rear side of the grinding material hopper 11, to which the safety switch 123 is held. The lock flap 104 presses axially against a safety element of the safety switch 123, which closes a safety circuit. This enables a display or output such that the reaching of a predetermined insertion position of the lock flap 104 has been detected.

[0269] Figs. 34 to 36 also show locking means 124 in the form of screws, with which the hopper housing 6 can be connected at the top to the housing 2 of the cutting mill 1. Holes 125 in the lower connecting part 120 of the material feed shaft 93 are provided for fastening the hopper housing 106 to the housing 2 in the area of ​​the shaft receptacle 92 by means of fastening screws (not shown). As can be further seen from Figs. 35 and 36, a gas pressure spring 126 can be provided to apply an actuating force to the grinding material slide 100, which causes the grinding material slide 100 to be automatically moved from a lowered position to the maximum raised position. The gas pressure spring is held on the coupling plate 117 and on the back plate 122.

[0270] The slide is pushed down by hand against the actuating force, compacting the grinding chamber, and automatically returns to its maximum raised position when the force transmission is stopped manually. In this standard position, the material feed chute 93 is then closed by the lock flap 104, as shown in Fig. 30, to prevent the material to be ground from splashing back from the grinding chamber 15.

[0271] Fig. 37 shows an embodiment of a grinding material slide 100 having an engagement geometry 127 at its lower end in the form of tooth-, serrated-, or prong-shaped projections 128 which, when the grinding material slide 100 is lowered into the material feed chute 93, engage with an engagement geometry 129 having complementary tooth-, serrated-, or prong-shaped projections 130 on the end of the lock flap 104 facing the material feed chute 93 (see Fig. 33) in order to strip or comb out grinding material agglomerations on the top and / or bottom of the lock flap 4. A handle 135 can be attached to the grinding material slide 100, as shown in Fig. 33.

[0272] As can be seen from Fig. 33, a scraper 131 can be held and / or formed on the side wall 96 of the grinding material hopper 11 delimiting the material feed shaft 93, which scraper has an engagement geometry 132 complementary to the engagement geometry 129 of the lock flap 104 in the form of complementarily formed teeth, prongs or prong-like projections 133.

[0273] As can be seen in particular from Fig. 32, the lower outer edge of the grinding material slide 100 is arcuate, so that a circular segment-shaped inner contour of the grinding chamber 15 is formed when the grinding material slide 100 has been brought into its maximum lowered position.

[0274] Finally, as schematically shown in Fig. 33, a purge air channel and / or purge air gap can be formed in the area below the flap joint 107 and / or from the underside of the lock flap 104. The purge air channel and / or purge air gap is provided for sucking in purge air via the area between the flap joint 107 or the lock flap 104 and a section of the side wall 96 that delimits the material feed chute 98 at the bottom, so that the deposition or agglomeration of ground material in the area of ​​the flap joint 107, in particular by splashing back ground material residues from the grinding chamber 15 into the area of ​​the flap joint 107, can be prevented. This is shown in Fig. 33 by the arrows 134.

[0275] In Figs. 38 to 47, a preferred embodiment of a grinding material hopper 137 with a grinding material slide 139 for a laboratory mill, in particular cutting mill 1 for laboratory operation, is shown.

[0276] The cutting mill 1 can comprise a housing 2 and a drive motor 3 connected to the housing 2 with a drive shaft 4. A grinding tool, in particular a cutting rotor 5 with at least one cutting blade 6, can be connected to the drive shaft 4, in particular for cutting and comminuting material by shearing. The laboratory mill 1 further comprises a grinding chamber 15 provided in the housing 2 for arranging the grinding tool in the grinding chamber 15.

[0277] The grinding material hopper 137 has a material feed shaft 138 for feeding the grinding material to the grinding chamber 15.

[0278] The grinding material hopper 137 also has the grinding material slide 139, which is guided for longitudinal movement between a raised position and a lowered position in the material feed chute 138. An external flap 140 pivotably mounted on the grinding material hopper 137 is provided to close a material filling chute 141 connected to the material feed chute 138 from the outside. This provides protection against user intervention in the interior of the material feed chute 138 and prevents any possible injury to a user caused by sample material escaping from the grinding chamber 15 during operation of the laboratory mill 1.

[0279] The grinding material slide 139 locks the outer flap 140 for safety reasons while the sample is fed to the grinding process via the material feed chute 141 and the material feed chute 138. A mechanical coupling of the grinding material slide 139 and the outer flap 140 is provided such that the grinding material slide 139 locks the outer flap 140 during manual

[0280] Raising the grinding material slide 139 from a lowered position to a raised position automatically moves it into a closed position closing the material filling chute 141 from the outside.

[0281] Preferably, the outer flap 140 is locked in the closed position against an opening movement into an opening position that exposes the material filling chute 141 from the outside. This is particularly evident from a comparison of Figs. 38 and 39, as well as 42 and 43.

[0282] Preferably, it is provided that the grinding material slide 139 automatically locks the outer flap 140 and that the lock is only released when the grinding material slide 139 reaches a raised position in which the grinding material slide 139 releases the material feed chute 138 to the outside.

[0283] Alternatively and additionally, it is preferably provided that the grinding material slide 139 permanently blocks the outer flap 140 against movement from the closed position into the release position before the grinding material slide 139 has reached a lowered position in which the grinding material slide 139 closes the material feed chute 138 to the outside.

[0284] In order to automatically hold the outer flap 140 in the open position when the open position shown in Fig. 38 is reached, a locking and / or holding device can be provided, in particular wherein the locking and / or holding device is formed by complementary holding contours 143, 144 and / or engagement contours on the grinding material slide 139 and the outer flap 140, in particular wherein the outer flap 140 is held in the open position by engagement with a holding pin 145 in a recess 146 in the grinding material slide 139.

[0285] The holding contours 143, 144 are shown in Fig. 40.

[0286] In particular, at least one spring means (not shown) can be provided to hold the outer flap 140 in the open position against the spring force of the spring means. This is schematically shown in Fig. 40 by the movement arrow 147. The outer flap 140 can be held in the open position via an axially displaceable shaft and undercut geometries on the outer flap 140 and the grinding material slide 139. Holding it in the open position facilitates access to the interior of the grinding material hopper 137.

[0287] In particular, the outer flap 140 can only be moved into the open position when the grinding material slide 139 has reached a position that corresponds to the maximum lowering position in the material feed chute 138 or is adjacent to the maximum lowering position.

[0288] In particular, the outer flap 140 can be automatically held in the open position when the grinding material slide 139 is reached in a maximum lifting position.

[0289] Preferably, a movement of the grinding material slide 139 into a raised position automatically leads to a movement of the outer flap 140 into the closed position. This prevents, for safety reasons, any unintentional access to the interior of the grinding material hopper 137 when the grinding material slide is in a raised position.

[0290] A structurally simple embodiment provides that the outer flap 140 is moved from the open position to the closed position when the grinding material slide 139 is lowered only under the effect of gravity or due to the weight of a flap arrangement having the outer flap 140.

[0291] The weight force, in particular of the outer flap 140 and possibly of further components connected to the outer flap 140, can then automatically lead to a pivoting movement of the outer flap 140 into the closed position when the grinding material slide 139 is raised from a preferably maximum lowering position.

[0292] It is expedient if the outer flap 140 can be manually moved from the open position to the closed position independently of any movement of the grinding material slide 139, in particular wherein the outer flap 140 can be manually moved from the open position to the closed position when the grinding material slide 139 is in a lowered, preferably maximally lowered, position closing the material feed chute 138 to the outside. For this purpose, appropriately designed locking and / or holding devices can be provided, in particular a correspondingly designed holding contour as described above on the grinding material slide 139 with a corresponding holding contour on the outer flap 140, wherein the holding contours allow the outer flap 140 to be closed by manual intervention as needed and independently of the slide position.

[0293] In addition, at least one locking and / or holding means can be provided to hold the grinding material slide 139 in a raised position, preferably automatically and / or preferably in a maximally raised position of the grinding material slide 139. A locking pin 148 can be provided as the locking and / or holding means, which is guided along a slotted guide 149 when the grinding material slide 139 is raised from the position shown in Fig. 39. A bore 150 can be provided in the grinding material slide 139, into which the locking pin 148 engages when the grinding material slide 139 is maximally raised. This is shown in Fig. 39.

[0294] The grinding material hopper 137 has a housing 151 that forms the material filling chute 141 and the material feed chute 138. The grinding material hopper 137 can be connected to a housing 2 of the cutting mill 1 using, for example, just two fastening screws 152. Consequently, only a few screws 152 need to be removed for maintenance and cleaning purposes. This also improves the modular design of the cutting mill 1.

[0295] The grinding material hopper 137 can be opened to the front for cleaning as soon as a housing door of the cutting mill 1 is opened.

[0296] As can be seen in particular from Figs. 46 and 47, a pivoting slide 142, which is held in particular on the outer flap 140, can be provided for stripping sample material from the grinding material slide 139 and / or pushing it in the direction of the grinding chamber 15.

[0297] In particular, the pivoting slide 142 can be pivotable relative to the outer flap 140 and / or independently of the position of the outer flap 140.

[0298] In particular, the pivoting slide 142 can be manually operated from outside the grinding material hopper 137, in this case by an actuating lever 153 with which the pivoting lever 142 can be moved downwards to rest against the grinding material slide 139. In Figs. 46 and 47, the pivoting slide 142 is shown in the resting position against the grinding material slide 139. This inner flap, formed by the pivoting slide 142, makes it possible to push sample material that has become caught or jammed in the grinding material hopper 137 into the area of ​​the grinding chamber 15 without having to reopen the outer flap 140.

[0299] The pivoting slide 142 can be spring-loaded. The use of the pivoting slide 142 is particularly advantageous when fluffy or fluffy samples are to be ground.

[0300] List of reference symbols:

[0301] 1 cutting mill 36 stop

[0302] 2 Housing 37 Spring means

[0303] 3 Drive motor 40 38 Sealing element

[0304] 4 Drive shaft 39 Housing wall

[0305] 5 Cutting rotor 39a opening

[0306] 6 cutting blades 40 gradations

[0307] 7 Housing door 41 Contact surface

[0308] 8 lower door section 45 42 contact surface

[0309] 9 upper door section 43 projection

[0310] 10 Door cover 44 Grinding chamber cover

[0311] 11 Grinding hopper 45 Shaft cover

[0312] 12 cyclone separators 46 sieve inserts

[0313] 13 Quick release 50 47 Contact surface

[0314] 14 Interchangeable cassette 48 Centering surface

[0315] 15 Grinding chamber 49 Intermediate flange

[0316] 16 Side wall 50 Motor flange

[0317] 17 Rear panel 51 Motor housing

[0318] 18 Counter blade 55 52 Shaft sleeve

[0319] 19 Cassette opening 53 Centering extension

[0320] 20 cassette opening 54 felt seal

[0321] 21 Side wall section 55 Inner surface

[0322] 22 Side wall section 56 Arrow

[0323] 23 Shaft passage opening 60 57 Cyclone holder

[0324] 24 collar section 58 receiving area

[0325] 25 Collar section 59 Receiving area

[0326] 26 cassette holder 60 housing opening

[0327] 27 Front 61 Vortex chamber

[0328] 28 Joint part 65 62 Inlet channel

[0329] 29 Joint part 63 Inlet opening

[0330] 30 Front face 64 Immersion tube

[0331] 31 front face 65 upper part

[0332] 32 front face 66 lower part

[0333] 33 Bulge 70 67 Separation chamber

[0334] 34 Pocket 68 Canal wall

[0335] 35 Housing wall 69 Duct wall 70 Duct wall 108 Housing panel

[0336] 71 Duct wall 40 109 Housing cladding

[0337] 72 Sealing element 110 Arrow

[0338] 73 Suction channel 111 Arrow

[0339] 74 Connection opening 112 Flap section

[0340] 75 gap 113 flap section

[0341] 76 sealing element 45 114 coupling plate

[0342] 77 Outlet funnel holder 115 Coupling plate

[0343] 78 Outlet funnel 116 Coupling plate

[0344] 79 Housing opening 117 Coupling plate

[0345] 80 Seat 118 Coupling plate

[0346] 81 Funnel inlet 50 119 Guide rod

[0347] 82 funnel neck 120 connecting part

[0348] 83 Intrusion protection 121 Stop

[0349] 84 side margin 122 back panel

[0350] 85 Long side 123 Safety switch

[0351] 86 Longitudinal edge 55 124 Locking device

[0352] 87 Tab 125 Hole

[0353] 88 Inlet opening 126 Gas spring

[0354] 89 Longitudinal edge 127 Engagement geometry

[0355] 90 back wall 128 projection

[0356] 91 Grinding material inlet 60 129 Engagement geometry

[0357] 92 shaft mount 130 projection

[0358] 93 Material feed chute 131 Scraper

[0359] 94 Housing opening 132 Engagement geometry

[0360] 95 baffle 133 projection

[0361] 96 side wall 65 134 arrow

[0362] 97 Back panel 135 Handle

[0363] 98 Goods filling chute 136 Rear wall

[0364] 99 Filling slope 137 Grinding hopper

[0365] 100 Grinding material slide 138 Material feed chute

[0366] 101 Locking device 70 139 Grinding material slide

[0367] 102 Side wall 140 Outer flap

[0368] 103 Filling opening 141 Goods filling shaft

[0369] 104 Lock flap 142 Swing gate

[0370] 105 gap 143 holding contour

[0371] 106 Funnel housing 75 144 Holding contour

[0372] 107 Flap joint 145 Retaining pin recess 5 150 Hole arrow 151 Housing locking pin 152 Screw guide 153 Operating lever

Claims

Patent claims:

1. Laboratory mill, in particular a cutting mill (1) for laboratory use, further in particular a table cutting mill, with a housing (2) and a drive motor (3) connected to the housing (2) and having a drive shaft (4), wherein a grinding tool, in particular a cutting rotor (5) with at least one cutting blade (6), can be connected to the drive shaft (4), in particular for cutting and comminuting material to be ground by shearing, with a grinding chamber (15) provided in the housing (2) for arranging the grinding tool in the grinding chamber (15) and with a grinding material hopper (11) which has a material feed chute (93) for feeding the material to be ground to the grinding chamber (15), characterized in that a chute receptacle (92) formed by a recess or gap and / or depression in the housing (2) is provided for the material feed chute (93), and that the material feed chute (93) is inserted at least partially into the chute receptacle (92).

2. Laboratory mill according to claim 1, characterized in that the material feed shaft (93) can be inserted into the shaft receptacle (92) via a front or end face of the housing (2) and / or that the material feed shaft (93) can be inserted into the shaft receptacle (92) and / or removed from the shaft receptacle (92) without tools.

3. Laboratory mill according to one of the preceding claims, characterized in that the grinding material hopper (11) is designed as a separate assembly for releasable attachment to and / or with the housing (2).

4. Laboratory mill according to one of the preceding claims, characterized in that a grinding chamber rear wall and a grinding chamber side wall are formed on an exchangeable cassette (14) and that in the housing (2) a cassette holder (26) formed by a recess or gap and / or depression in the housing (2) is provided for receiving the cassette (14), wherein the cassette (14) is inserted into the cassette holder (26) in a manner that is particularly exchangeable without tools.

5. Laboratory mill according to one of the preceding claims, characterized in that the material feed shaft (93) and the cassette (14) have geometrically complementary edge geometries at opposite edge regions, wherein, preferably, the cassette (14) is inserted into the cassette holder (6) and / or can be removed from the cassette holder (26).

6. Laboratory mill according to one of the preceding claims, characterized in that the material feed shaft (93) and the cassette (14) are spaced apart from one another at opposite edge regions.

7. Laboratory mill, in particular according to one of the preceding claims, in particular a cutting mill (1) for laboratory use, further in particular a table cutting mill, with a housing (2) and a drive motor (3) connected to the housing (2) with a drive shaft (4), wherein a grinding tool, in particular a cutting rotor (5) with at least one cutting blade (6), can be connected to the drive shaft (4), in particular for cutting and comminuting material to be ground by shearing, with a grinding chamber (15) provided in the housing (2) for arranging the grinding tool in the grinding chamber (15) and with a grinding material hopper (11) having a material feed shaft (93) for feeding the grinding material to the grinding chamber (15), characterized in that a housing door (7) is provided which is movable, in particular pivotable, from an open position to a closed position relative to the housing (2), and in that the grinding material hopper (11) has an openable shaft wall,wherein the shaft wall is formed by the housing door (7) when the housing door (7) is in the closed position., 8. Laboratory mill according to claim 7, characterized in that a frontal shaft wall of the material feed shaft (93) and, preferably, a frontal shaft wall of a material filling shaft (98) of the grinding material hopper (11) opening into the material feed shaft (93) is formed by the housing door (7) when the housing door (7) is in the closed position.

9. Laboratory mill according to claim 7 or 8, characterized in that the housing door (7) in the closed position rests against the material feed chute (93) and, preferably, the material filling chute (98) via at least one sealing element (38).

10. Laboratory mill, in particular according to one of the preceding claims, in particular cutting mill (1) for laboratory use, further in particular table cutting mill, with a housing (2) and a drive motor (3) connected to the housing (2) with a drive shaft (4), wherein a grinding tool, in particular a cutting rotor (5) with at least one cutting blade (6), can be connected to the drive shaft (4), in particular for cutting and comminuting material to be ground by Shearing action, with a grinding chamber (15) provided in the housing (2) for arranging the grinding tool in the grinding chamber (15) and with a grinding material hopper (137) which has a material feed chute and / or filling chute (138) for feeding the grinding material to the grinding chamber (15), characterized in that the grinding material hopper (137) has a grinding material slide (139) which is guided so as to be longitudinally movable between a raised position and a lowered position in the material feed chute (138), and in that an outer flap (140) pivotably arranged on the grinding material hopper (137) is provided in order to close a material filling chute (141) connected to the material feed chute (138) from the outside, wherein a mechanical coupling of the grinding material slide (139) and the outer flap (140) is provided in such a way thatthat the grinding material slide (139) automatically moves the outer flap (140) when the grinding material slide (139) is raised from a lowered position to a raised position into a closed position closing the material filling chute (141) from the outside and, preferably, locks the outer flap (140) in the closed position against an opening movement into an opening position releasing the material filling chute (141) from the outside, in particular wherein the grinding material slide (139) automatically locks the outer flap (140) before the grinding material slide (139) reaches a raised position in which the grinding material slide (139) releases the material feed chute (138) to the outside and / or in particular wherein the grinding material slide (139) permanently blocks the outer flap (140) against a movement from the closed position to the release position before the grinding material slide (139) reaches a lowered position, in which the grinding material slide (139) closes the material feed chute (138) to the outside.

11. Laboratory mill, in particular according to one of the preceding claims, characterized in that a locking and / or holding device is provided in order to automatically hold the outer flap (140) in the open position when the open position is reached, in particular wherein the locking and / or holding device is formed by complementary holding contours and / or engagement contours on the grinding material slide (139) and the outer flap (140), in particular wherein the outer flap (140) is held in the open position by engaging in a holding contour in the grinding material slide (139), and / or in particular wherein at least one spring means is provided to hold the outer flap (140) in the open position against the spring force, and / or in particular wherein the outer flap (140) is held in the open position in a maximum lifting position of the grinding material slide (139) and / or in particular wherein a movement of the grinding material slide (139) into the raised position automatically leads to a movement of the outer flap (140) into the closed position.

12. Laboratory mill, in particular according to one of the preceding claims, characterized in that the outer flap (140) is moved from the open position to the closed position only under the effect of gravity when the grinding material slide (139) is lowered.

13. Laboratory mill, in particular according to one of the preceding claims, characterized in that the outer flap (140) is manually movable from the open position into the closed position independently of a movement of the grinding material slide (139), in particular wherein the outer flap (140) is manually movable from the open position into the closed position when the grinding material slide (139) is in a lowered, preferably maximally lowered, the material feed shaft (138) is in the outward closing position.

14. Laboratory mill, in particular according to one of the preceding claims, characterized in that at least one locking and / or holding means is provided to hold the grinding material slide (139) in a raised position, preferably automatically and / or preferably in a maximum raised position of the grinding material slide (139).

15. Laboratory mill, in particular according to one of the preceding claims, characterized in that a pivoting slide (142) held in particular on the outer flap (140) for stripping sample material from the grinding material slide (139) and / or pushing in the direction of the grinding chamber (15), in particular wherein the pivoting slide (142) is pivotable relative to the outer flap (140) and / or independently of the position of the outer flap (140) and / or in particular wherein the pivoting slide (142) can be manually operated from outside the grinding material hopper (137).

16. Laboratory mill, in particular according to one of the preceding claims, in particular a cutting mill (1) for laboratory use, further in particular a table cutting mill, with a housing (2) and a drive motor (3) connected to the housing (2) with a drive shaft (4), wherein a grinding tool, in particular a cutting rotor (5) with at least one cutting blade (6), can be connected to the drive shaft (4), in particular for cutting and comminuting material to be ground by shearing, with a grinding chamber (15) provided in the housing (2) for arranging the grinding tool in the grinding chamber (15) and with a grinding material hopper (11) which has a material feed chute (93) for feeding the grinding material to the grinding chamber (15), characterized in that in the material feed chute (93) a grinding material slide (100) is guided so as to be longitudinally movable between a raised position and a lowered position and that a lock flap (104) is provided, in particular,to close the material feed chute (93) to the grinding chamber (15) when the grinding material slide (100) is in the raised position.

17. Laboratory mill according to claim 16, characterized in that the grinding material hopper (11) has a material filling chute (98) opening into the material feed chute (93) and that the lock flap (104) is arranged so as to be pivotable about a flap joint (107) to the opening (103) of the material filling chute (98) in the material feed chute (93).

18. Laboratory mill according to one of the preceding claims 16 or 17, characterized in that the material feed chute (93) is closed in a raised position of the grinding material slide (100) by a flap section (112) of the lock flap (104) adjacent to the material feed chute (93) and, preferably, extending from the flap joint (104) into the material feed chute (93).

19. Laboratory mill according to one of the preceding claims 16 to 18, characterized in that the inlet opening (103) is closed in a lowered position of the grinding material slide (100) by a flap section (113) adjacent to the material filling chute (98) and, preferably, in the lowered position of the grinding material slide (100) extending upwards from the flap joint (104).

20. Laboratory mill according to one of the preceding claims 16 to 19, characterized in that the flap section (112) adjacent to the material feed chute (93) and / or the flap section (113) of the lock flap (104) adjacent to the material filling chute (98) are aligned at least partially, preferably completely, parallel to the longitudinal axis of the material slide (93) in the lowered position of the material slide (93) and / or lie laterally against the material slide (93).

21. Laboratory mill according to one of the preceding claims 16 to 20, characterized in that the longitudinal movement of the grinding material slide (93) and the pivoting movement of the lock flap (104) are kinematically coupled, in particular via a coupling rod, wherein, preferably, a kinematic coupling of the grinding material slide (93) and lock flap (104) is provided such that a longitudinal movement of the grinding material slide (93) in the direction of the grinding chamber (15) leads to a pivoting movement of the lock flap (104) even before the grinding material slide (93) and lock flap (104) come into direct contact.

22. Laboratory mill according to one of the preceding claims 16 to 21, characterized in that a purge air channel and / or purge air gap is formed below the flap joint (107) and / or on the underside of the lock flap (104).

23. Laboratory mill according to one of the preceding claims 16 to 22, characterized in that the grinding material hopper (11) has an openable shaft wall and that the lock flap (104) can be removed from the grinding material hopper (11) preferably without tools when the openable shaft wall is in an open position.

24. Laboratory mill according to one of the preceding claims 16 to 23, characterized in that complementary engagement geometries with teeth, prongs or tines are provided on the grinding material slide (100), the lock flap (104) and / or a scraper (131) arranged in the material feed chute, wherein the engagement geometries come into mutual engagement when the grinding material slide is lowered in the material feed chute.

25. Laboratory mill according to one of the preceding claims 16 to 24, characterized in that a detection unit is provided to detect a predetermined To detect the insertion position of the lock flap (104) in the grinding material hopper (11).

26. Laboratory mill, in particular according to one of the preceding claims, in particular a cutting mill (1) for laboratory use, further in particular a table cutting mill, with a housing (2) and a drive motor (3) connected to the housing (2) with a drive shaft (4), wherein a grinding tool, in particular a cutting rotor (5) with at least one cutting blade (6), can be connected to the drive shaft (4), in particular for cutting and comminuting material to be ground by shearing, with a grinding chamber (15) provided in the housing (2) for arranging the grinding tool in the grinding chamber (15) and with a grinding material hopper (11) which has a material feed chute (93) for feeding the grinding material to the grinding chamber (15), characterized in that a grinding material slide (100) is guided in the material feed chute (93) so as to be longitudinally movable between a raised position and a lowered position,wherein the grinding material slide (100) is subjected to an actuating force for the automatic adjustment movement of the grinding material slide (100) from the lowered position to the raised position, in particular to a maximum raised position.

27. Grinding material hopper (11) with a material feed shaft (93) for feeding the grinding material to the grinding chamber (15) of a laboratory mill according to one of the preceding claims and / or having features of a grinding material hopper (11) according to one of the preceding claims.