Roller mill
Patent Information
- Application Number
- EP2023800475
- Authority / Receiving Office
- EP · EP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2022-11-09
- Filing Date
- 2023-11-06
- Publication Date
- 2025-09-17
AI Technical Summary
Existing roller mills face challenges in user-friendly belt tension adjustment and accessibility, leading to poorly adjusted belt tensions and excessive wear due to laborious and indirect measurement methods.
A roller package with a tensioning device that allows for easy adjustment of belt tension by moving the tension wheel's bearing relative to the rollers, using a clamping mechanism with a spring element to maintain predetermined tension, and an accessible operating structure for manual operation, eliminating the need for belt tension measurement.
Enables reproducible and easily adjustable belt tension without measurement, improving accessibility and reducing wear on belts, thus enhancing the operational efficiency and longevity of roller mill components.
Smart Images

Figure 1.1
Abstract
Description
[0001] ROLLER MILL
[0002] The invention relates to a roller mill and a roller package for a roller mill.
[0003] Roller mills are used in grain mills or other food processing mills. A roller mill has at least one pair – often two or four pairs – of grinding rollers, between which a
[0004] A grinding gap is formed, and these rollers rotate—generally at different speeds—to crush the material in the grinding gap. During this process, the grinding rollers are pressed against each other by high contact forces.
[0005] In many roller mills, one roller per pair is driven, while the other roller is connected to the driven roller via an overdrive, thus enforcing a desired speed ratio. In most cases, the other roller will rotate in the opposite direction, but at a different, usually lower speed. Such an overdrive is generally formed by at least one belt. Since the rollers generally rotate in opposite directions, the belt must be arranged so that the torque assigned to one of the rollers
[0006] One pulley is located inside the belt, and the pulley associated with the other roller is located outside. The belt must also rotate around another rotating pulley, the so-called tension pulley. This also means that the belt is structured both inside and outside so that it interacts with the wheel surface to transmit power as efficiently as possible. For example, the belt can have a poly-V profile on the inside and be toothed on the outside.
[0007] The belt tension is adjusted by selecting the position of the tensioning wheel. According to the state of the art, this is achieved by mounting the tensioning wheel on a lever whose position can be adjusted using an adjusting screw or similar. In conventional roller mills, the faster roller is driven and located at the front, while the belt pulley assigned to this roller is located inside the belt. Accordingly, the tensioning wheel, which is also located inside the belt, is located behind the slower roller at the very rear of the roller package, and the adjusting screw is therefore generally located at the rear of the roller package. As a result, it is hardly accessible once the roller package is installed in the roller mill, which is why adjusting the belt tension with the roller package installed is relatively laborious. In addition, adjusting the belt tension requires measuring this belt tension.This is done indirectly by striking the belt with a tool and measuring the frequency of the resulting vibration. This process is also relatively laborious and requires performing on components that are difficult to access, leading many users to forgo measuring and adjust the belt tension only by feel. This, in turn, often results in roller mills operating with poorly adjusted belt tensions, which can lead to severe wear on the belts used.
[0008] Publication US 393,681 relates to a three-roller mill with an upper and a lower roll, each with a smaller diameter, and a middle roll with a larger diameter. The middle roll is driven, and the rotation of the middle roll is transmitted to the other two rolls via a transmission mechanism with one roll per roll and a belt running over the rolls. The rolls preferably have the same diameter, whereby, due to the different diameters of the rolls, the surface speeds of the middle roll on the one hand and the upper and lower rolls on the other hand are different. The deflection roll is tensioned by means of an idler roll arranged on a lever element, wherein the lever element is tensioned by a spring arranged between the lever element and the head of a threaded rod, the axial position of which can be adjusted by turning a handwheel nut.For example, turning the handwheel nut allows the belt tension to be adjusted. However, like the prior art described above, this solution does not allow the belt tension to be reproduced, adjusted independently of the belt condition, and without additional measurement. The position of the handwheel nut defines the position of the threaded rod and thus its head. However, in addition to the position of the threaded rod, the spring tension is also determined by the position of the lever element, which in turn depends on the length—and thus the elongation—of the belt. Therefore, the position of the handwheel nut does not uniquely determine the spring tension.
[0009] DE 12 13 709 concerns a roller mill with two rollers. This publication contains a mechanism for adjusting the distance between the rollers: When the rollers touch each other, one roller drives the other; when not, a roller drive with a chain is required. To ensure easy removal of the chain when the roller drive is not needed, a corresponding mechanism is provided for pivoting an idler wheel downward, leaving the chain loose and easy to remove. DE 12 13 709 has nothing to do with adjusting the belt tension.
[0010] CN 110421747 describes a machine for shredding plastic for recycling. The machine has a belt that is tensioned by a gravity tensioning mechanism. It is an object of the present invention to provide a roller package for a roller mill and a roller mill with such a roller package, which at least partially overcome the disadvantages of the prior art. The roller package should in particular be based on the common principle of driving - by a motor - only one of the two rollers of a roller pair, with a roller overdrive with a belt, whereby the roller overdrive defines the speed of the other, for example slower roller in relation to the driven roller. It should enable user-friendly adjustment of the belt tension and / or good accessibility when adjusting the belt tension.
[0011] This object is achieved by the invention as defined in the patent claims.
[0012] According to one aspect of the present invention, the roller assembly comprises a pair of rollers, one of which, for example, a first roller, has a drive. Each roller is assigned a belt pulley, which is non-rotatably coupled to the respective roller (theoretically, coupling via a gear would also be conceivable). Furthermore, the roller assembly comprises a tensioning wheel, the mounting of which has a displaceable position relative to the rollers (at least to one of the rollers, i.e., in particular to the roller that is fixedly mounted, usually the first roller).
[0013] A belt of the roller set is arranged so that the first pulley is located inside the belt and the second outside, and the tensioning pulley is also located inside the belt. Multiple belts can also be present, sharing the pulleys and tensioning pulley, or being assigned to separate pulleys / tensioning pulleys. Another possibility is to arrange another pulley inside the belt in addition to the first pulley and tensioning pulley, for example, to achieve the greatest possible wrap around the second pulley.
[0014] The roller package also has a clamping device that has a first clamping element and a second clamping element. The first clamping element is displaceable in the axial direction, for example relative to a stationary clamping bearing. For example, the axial position of the first clamping element can be displaced relative to the clamping bearing by an adjustment mechanism, for example by the first clamping element being designed as a spindle that can be displaced by rotating about its axis. The second clamping element transmits force and is fixedly coupled to the tensioning wheel bearing in relation to the axial direction, for example via a bearing journal. The second clamping element is also coupled to the first clamping element via a spring element. The clamping device is designed such that the user can adjust the first clamping element by displacing it in the axial direction, i.e.in particular by actuating the adjustment mechanism into a defined position relative to the second tensioning element. In particular, the roller package is designed to bring the first tensioning element into a defined position relative to the second tensioning element, i.e. to enable the first tensioning element to be brought into a defined position relative to the second tensioning element. The roller package therefore has the means to bring the first tensioning element into a defined, i.e. predetermined, position relative to the second tensioning element, regardless of whether the belt (still) has a high level of elasticity or - for example, if it has been in use for some time - a less high level of elasticity.
[0015] The distance by which the first tensioning element is displaced relative to the second (the «axial displacement») is not identical to the distance by which the first tensioning element is displaced relative to a stationary bearing, the tensioning bearing, since due to the elasticity of the belt, when a force is applied, the tensioning wheel, the tensioning wheel bearing and thus also the second tensioning element are also moved.
[0016] By adjusting the position of the first tensioning element relative to the second tensioning element, i.e., the two elements coupled via a spring element, according to the procedure described here, the relative force is also defined via the characteristics of the spring element, in particular Hooke's law. Because the spring force acts between the first tensioning element and thus the tension bearing (whose axial position can be fixed to the housing or at least in a defined position relative to the first roller) on the one hand, and the second tensioning element and thus the tensioning wheel bearing on the other, the spring force is proportional to the force with which the tensioning wheel is pressed against the belt and thus to the belt tension. The procedure according to the invention thus enables adjustment of the belt tension, which is difficult to determine and define, by setting a relative position that is easy to determine and define.
[0017] In other words, the tensioning device is particularly designed to set a predetermined belt tension without the need to measure the belt tension.
[0018] To adjust the defined position of the first tensioning element relative to the second tensioning element, the roller assembly is configured to allow this defined position—in which the belt is tensioned by the tensioning roller (with the desired, appropriate tensioning force)—to be checked. The fact that the roller assembly is configured to check the defined position means that such a check is not only theoretically possible, but that the roller assembly itself has the necessary means for it. This means, in particular, that the roller assembly contains the means for an operator to check this position, for example, without the need for tools, i.e., without the need for additional aids.Such means of the roller package can, for example, include at least one marking on the first tensioning element and / or on the second tensioning element, a locking structure or a stop, dimensioning such that structures are aligned with one another when a predetermined axial displacement is reached, or a measuring device for measuring the position, for example a length scale, an electronic measuring device - optionally including automation that sets a predetermined axial displacement and thus belt tension, etc. It is also possible for the roller package to be set up in such a way that, depending on the desired belt tension, a separate tool is required, but that this tool is a simple tool and can be easily applied, e.g. a ruler or caliper for measuring a depth or a protrusion.
[0019] In embodiments, the tensioning wheel bearing is arranged and mounted on a movable support element, in particular a pivotable lever, on which the second tensioning element acts.
[0020] The first clamping element can in particular be a spindle, i.e. an element which, together with another element, in particular one that is stationary with respect to axial directions ('stationary' here means: fixed with respect to a mechanical support structure of the roll package), converts a rotational movement into a translational movement along the axis. In this case, it is possible for a spindle bearing to be fixedly mounted as the stationary clamping bearing and for the spindle to be rotatable, or for the spindle bearing to be rotatable (but axially immovable, i.e., stationary) and for the spindle to be movable only in the axial direction. The spindle can also be provided with a lock nut, by means of which a position can be fixed once it has been set.
[0021] The spring device may comprise a coil spring, a spring assembly (assembly of disc springs or the like), or any other device with reproducible spring properties. In particular, the spring device may be designed and arranged such that it is subjected to compression when the belt tension is applied, i.e., the spring device is compressed between the first tensioning element and the second tensioning element.
[0022] In some embodiments, the second clamping element comprises a component that extends through the spring device and / or along the spring device in the axial direction to the first clamping element, and, for example, also extends through the first clamping element and / or along it. This makes it easy to define the axial displacement by means of markings, stops, locking structures, structures that can be aligned with one another, etc. Such a component can be, for example, a push rod.
[0023] As is known per se, one of the rollers is generally mounted in a stationary manner, while the other roller is disengageable, i.e. the bearing body that supports it can be moved a certain distance away from the bearing body of the stationary roller so that the rollers do not press against each other when there is no product between them. The stationary roller is usually the driven roller (e.g. the first roller), and this can be arranged in particular at the front of the roller mill, i.e. on the side from which the operator has access to the components of the roller mill. In embodiments, the tensioning device is installed in such a way that it is accessible and can be operated from the front of the roller mill. The tensioning device has in particular an operating structure via which the operator can tension the belt and adjust the belt tension. The operating structure includes, for example, a structure for a turning tool (e.g.'Screw head structure': hexagonal structure, head with hexagon socket or other structure for a turning tool) or structure for manual operation (rotary wheel, etc.).
[0024] This operating structure is arranged on the tensioning device such that it is accessible from the front, for example through a hinged cover or a door or a removable wall section of the roller mill. In particular, the tensioning device can be coupled on one, the rear side to a movable support element, in particular a pivotable lever, with the tensioning wheel bearing. The tensioning wheel can be arranged behind the second belt pulley if this is assigned to the disengageable, indirectly driven roller, i.e. the indirectly driven roller is arranged between the tensioning wheel and the first, directly driven roller with respect to horizontal directions perpendicular to the roller axis. The tensioning device then extends from the rear side past the second belt pulley, and the operating structure is arranged on the front of the tensioning device. Tensioning the tensioning device (e.g. tightening the spindle) therefore pushes the support element backwards.
[0025] A roller mill with a plurality of roller pairs can in particular have two roller packages that are arranged back to back, i.e. the second, disengageable rollers of the two roller packages are arranged next to each other, while the first rollers as well as the operating structures of the clamping devices of the two roller packages each belong to a front side of the roller mill (in general, the roller mill will be arranged so that it is accessible from both sides, so that both sides form a front side of the roller mill from the perspective of the operator).
[0026] In one group of embodiments, the tensioning device is attached at one end (in particular pivotably) to the support element, for example a lever, on which the tensioning wheel is mounted. At another point in this group of embodiments, the tensioning device is mounted such that it can pivot about at least one, and in particular about two axes that are different from the main axis (which defines the axial direction). This means that the axis along which the first tensioning element is displaceable is pivotable as a whole, specifically about a first pivot axis and, for example, also about a second pivot axis, wherein the first and second pivot axes are different from the main axis and, for example, perpendicular to it, and wherein the first and second pivot axes are different from one another and, for example, perpendicular to one another. When pivotable about a first and a second pivot axis, the tensioning device is therefore gimbal-mounted.
[0027] It has been shown that such a bearing arrangement with pivoting capability around a first axis and also around a second axis can be advantageous. In particular, it has been demonstrated that transverse forces can arise both during belt tensioning and during the disengagement and engagement of the rollers, as well as potentially during operation due to differences in thermal expansion, etc. These transverse forces can be efficiently absorbed by the gimbal bearing arrangement, which is why the belt is not indirectly subjected to such transverse forces. In other words, it has been shown that the service life of the components used can be improved in a simple and efficient way through the gimbal bearing arrangement.A further advantage is that the cardanic suspension prevents any unwanted transverse forces even when the second roller is disengaged by a comparatively large distance relative to the first, and the roller assembly is configured to maintain a minimal tension on the belt even when disengaged over this comparatively large distance, so that the belt cannot completely loosen. In this way, the suspension also interacts particularly well with the inventive design with the spring element between the first and second tensioning elements: the spring element enables the minimal tension on the belt to be maintained by compensating for a change in the axial distance between the tensioning wheel on the one hand and the stationary tensioning bearing of the first tensioning element (e.g., spindle bearing) on the other.
[0028] Pivotability about a first and a second pivot axis can be achieved, for example, by rotatably mounting a bearing element, relative to which the clamping device can pivot to a certain degree.
[0029] According to one embodiment, such a bearing element engages the outside of a clamping device housing, which, for example, surrounds the spring element. For this purpose, the clamping device housing can have bearing projections on the outside, which are fork-like gripped by a receptacle of the clamping device housing—or vice versa.
[0030] It can in particular be provided that the first and second pivot axes are not arranged at the ends of the tensioning device, but at a distance from both ends of the tensioning device, for example approximately at its center of gravity. In addition to the roller package, a roller mill is also part of the subject matter of the present invention. The roller mill has at least one roller package of the type described here. The roller package can be present as a module in the sense that the roller package as a whole can be removed from the roller mill, for example for maintenance purposes or if it needs to be replaced. However, the term "roller package" does not necessarily mean that this has to be the case: a roller package within the meaning of the present text is also present when two rollers as well as the other elements defined here (belt pulleys, tensioning wheel, tensioning device) are present and interact, even if the rollers, for example.are mounted on a roller mill support structure and must be removed individually after removing the belt.
[0031] In a conventional manner, the roller mill may also comprise, in addition to the roller stack, a feed device for feeding the grinding material into the grinding gap between the rollers. The roller mill may comprise several pairs of rollers, which may include, for example, at least two roller stacks of the type described here. These can be arranged back to back, as described above, so that both clamping devices are easily accessible from one side.
[0032] Furthermore, a method for adjusting the belt tension of a roller assembly of the type described and defined in this text belongs to the present invention. The method comprises, first, the step of specifying a position of the first tensioning element relative to the second tensioning element, which position specifies and determines the belt tension, and, second, the subsequent step of bringing the first tensioning element into the position relative to the second tensioning element specified by the first step. Exemplary embodiments of the invention are described below with reference to drawings. In the drawings, like reference numerals designate like or similar elements. The drawings are partly schematic and not to scale. They partly show corresponding elements in different sizes from figure to figure. They show:
[0033] Fig. 1 : a side view of elements of a roller package with two rollers;
[0034] Fig. 2 shows a side view of the elements according to Fig. 1, cut along the plane III in Fig. 3;
[0035] Fig. 3 is a bottom view of the elements according to Fig. 1, showing only a portion of the roller package towards the side with the roller overdrive; and
[0036] Fig. 4 is a very schematic representation of a roller mill.
[0037] Figure 1 shows a side view of elements of a roller package with two rollers, each supported by a bearing body, one of which is fixed and the other movable, so that one roller can be disengaged relative to the other. In Fig. 1, elements of a corresponding disengagement mechanism are not shown for the sake of clarity. The roller package is, for example, present as a module of a roller mill or can be installed in such a mill. The roller package contains a first, faster roller and a second, slower roller. The axes of the faster and slower rollers run perpendicular to the plane of the drawing. The faster roller is arranged at the front of the roller mill, ie on the side to which the operator has access, e.g. by opening a hinged cover or similar. The rear side, ieThe side of the slower roller (on the left in the figures), however, is not easily accessible, for example because the roller mill has another pair of rollers at the level of the roller pair shown, behind the roller pair shown. The rear, slower roller is generally the roller supported by the movable bearing body, i.e., the driven roller is fixed (with respect to the mechanical support structure 41).
[0038] At one end of the rollers, namely the end not shown in Fig. 1, the faster roller is connected to a drive, i.e., the faster roller is actively driven. At the opposite end, as shown in Fig. 1, a first pulley 1 is assigned to the faster roller, which is connected to the roller in a rotationally fixed manner. The slower roller is connected to a second pulley 2 in a rotationally fixed manner. The second pulley 2 has a larger diameter than the first pulley 1. A tensioning pulley 3 is also shown.
[0039] The first pulley 1 and the second pulley 2 are connected via a belt 4, wherein the first pulley 1 and the tension pulley 3 are arranged inside the belt 4 and the second pulley 2 is arranged outside the belt 4, so that the first pulley 1 and the second pulley 2 rotate in opposite directions due to the coupling via the belt 4, but at different speeds due to the different diameters, whereby the desired grinding effect is achieved. In the example shown, the belt 4 is provided with teeth on the outside, and the second pulley 2 has corresponding teeth. On the inside, the belt can have a different structure, for example a poly-V profile, with the first pulley 1 being structured accordingly.
[0040] A tensioning device 10 ensures that the tensioning wheel 3 is pushed outwards with a desired force (to the left in Fig. 1) in order to keep the belt 4 constantly tensioned during operation. The tensioning wheel 3 is arranged on a lever 5, which can be pivoted about an axis defined by a pivot pin 6 shown in Figure 2. Figure 2 shows a side view of the elements according to Fig. 1, sectioned along a plane that lies behind the first and second belt wheels and passes through the tensioning device 10 (plane II-II in Fig. 3). In addition to the bearings 51, 52 for the faster and slower rollers, respectively, the structure of the tensioning device 10 can be seen in particular. This has a first tensioning element with a spindle and an (optional) spindle disk 15, which is connected via a spring assembly 16 to a thrust assembly 12 as the second tensioning element. The thrust assembly 12 has a thrust piston 13 and a thrust rod 14.The thrust piston 13 is connected to the lever 5 and pivotally attached to it (bearing pin 8), so that a thrust force on the thrust piston 13 pushes the lever 5 backwards, ie to the left in the figures.
[0041] The push rod 14 is firmly connected to the push piston 13 and extends from it in the axial direction («axial» with respect to the spindle 11) forwards, through the spring assembly 16 and the spindle 11.
[0042] To tension the belt, the spindle 11 is tightened by rotating it about its axis, e.g., via a hexagon 22 or another structure that allows engagement with a tool, or via a rotary wheel or the like. For this purpose, a spindle bearing 21, which is firmly connected to the tensioning device housing 17, has an internal thread matched to the spindle 11. Tightening the spindle pushes the spindle disk 15 backward, thus tensioning the spring assembly 16, whereby the lever 5 with the tensioning wheel 3 is also pushed backward by the thrust piston 13, tensioning the belt 4. Once the belt is sufficiently tensioned, the spindle 11 can be secured with a lock nut 23.The belt tension is a function of the force with which the tensioning wheel is pushed backwards, and this in turn corresponds, up to a possible proportionality factor (position of the tensioning wheel bearing 7 of the tensioning wheel 3 relative to the position of the bearing journal 8), to the thrust force on the thrust piston 13. The thrust force on the thrust piston 13 is, via Hooke's law, directly dependent on the axial displacement of the spindle 11 relative to the thrust ensemble 12 with the thrust piston 13 and the push rod 14. This in turn depends not only on the displacement of the spindle 11 relative to the spindle bearing 21 but also on the properties of the belt 4, namely its elasticity. This means that if the spindle 11 is driven axially forwards relative to the spindle bearing 21 by a predetermined distance (corresponding to a predetermined number of revolutions orAt a given rotation angle, it is displaced relative to the thrust assembly by a different, generally shorter distance, namely the distance referred to in this text as "axial displacement." Only this axial displacement is proportional to the spring tension and thus to the belt tension.
[0043] Since the thrust assembly has the push rod 14 in addition to the push piston 13, the user can check the axial displacement, for example using a marking on the push rod 14 or the spindle, by measuring the screw-in depth of the spindle 11 relative to the push rod 14, by reaching a corresponding stop by bringing the spindle 11 into a predetermined position relative to the push rod 14 (for example, as illustrated, flush with the push rod 11), etc. In this way, the procedure according to the invention enables the operator to adjust the belt tension directly in a simple manner without having to measure it or having to know the elasticity of the belt.
[0044] The elements of the tensioning device 10, relative to which the spindle 11 is pushed backward when it is tightened, are mounted on the mechanical support structure 41 in such a way that they can absorb axial forces. However, they are mounted in such a way that no transverse forces are transmitted to the lever 5. Tilting of the tensioning device is avoided because it can align itself in the joint. Tilting could lead to friction on the spring elements and thus reduce the belt tension in a way that is difficult to control. For this purpose, the roller package has a bearing element 31, which is rotatably mounted about a horizontal axis 35 (first pivot axis) shown in Figure 3 and surrounds the tensioning device housing 17 like a fork from one side. On the top and bottom of the tensioning device housing 17, the bearing element 31 forms a receptacle 33 for a bearing projection 32 on the tensioning device housing 17.The interaction of the bearing projection 32 with the bearing element 31 represents a stop for movements in the axial direction for the tensioning device housing 17 and enables the bearing element 31 to absorb the axial forces acting on the spindle 11 during tensioning of the belt via the spindle bearing 21, the tensioning device housing 17, and the bearing projections 32. Due to the concave shape of the receptacles 33, the tensioning device housing 17 is also guided. However, pivoting movements in both directions perpendicular to the axis are permitted, namely both vertically (due to the rotatability about the horizontal axis 35 / first pivot axis) and horizontally (due to the open shape of the receptacles 33) about the second pivot axis 37, which is perpendicular to the axial direction and to the first pivot axis.
[0045] The tensioning device 10 is installed such that it is accessible from the front, i.e., from the right in the orientation shown, i.e., the operating structure (here: hexagon 22) is arranged in front of the tensioning wheel and also in front of the second belt wheel 2. This is made possible by the design and arrangement of the tensioning device 10. Firstly, it is provided that the thrust assembly 12 engages the lever 5, and is arranged on the same side as the tensioning wheel 5 with respect to its lever pivot axis. Secondly, the tensioning device has the structure described above, according to which the thrust assembly 12 is subjected to the force required to tension the belt via a spring assembly 16, which in turn is tensioned via the spindle 11. Therefore, the spindle 11 is arranged on the other side of the spring assembly, with respect to axial directions, than the thrust piston 13, on which the spring assembly 16 acts – i.e., in front of the spring assembly 16.The advantageous accessibility of the operating structure from the front is thus achieved in a simple manner.
[0046] Figure 4 shows a roller mill 100 with two pairs of rollers and a grinding material inlet 101. Roller packages of the type described in this text are present inside a roller mill housing. They are arranged below a feeding device not shown in Fig. 4. Fig. 4 shows schematic front views of the pulleys 1, 2 as well as the tensioning wheels 3 and the tensioning devices 10 of the two roller packages, represented by dashed lines. Since the roller packages are, for example, identical in construction, the arrangement of the pulleys, tensioning wheels and tensioning devices can be point-mirrored. This also means that these elements are arranged on different levels - to the left or right of the four grinding rollers when viewed from a specific side - which is indicated in Fig. 4 by different representations of the two assemblies. The operating structures 22 of the tensioning devices 10 are present on the front side of each roller package, i.e.They are accessible through a door, a hinged lid or an easily removable front wall panel 103 in order to check and / or readjust the belt tension if necessary.
Claims
PATENT CLAIMS A roll package for a roll mill, comprising a first roll and a second roll, wherein a first pulley (1) is assigned to the first roll and a second pulley (2) is assigned to the second roll, wherein the roll package comprises a belt (4) and a tensioning pulley (3), wherein the first pulley (1) and the tensioning pulley (3) are arranged inside the belt (4) and the second pulley (2) is arranged outside the belt (4), wherein the tensioning pulley (3) is mounted by a tensioning pulley bearing (7) having a movable position, and wherein the roll package comprises a tensioning device (10) with which the tensioning pulley bearing can be subjected to a force in order to tension the belt (4), characterized in that the tensioning device comprises a first tensioning element (11) and a second tensioning element (12),wherein the first clamping element (11) is displaceable relative to the second clamping element (12) in an axial direction against a spring force of a spring element (16), wherein the second clamping element (12) is coupled to the tensioning wheel bearing (7), and wherein the first clamping element can be brought into a defined position relative to the second clamping element (12) by displacement in the axial direction. A roller assembly according to claim 1, comprising a stationary clamping bearing (21) relative to which the first clamping element is axially displaceable. A roller assembly according to claim 2, wherein the first clamping element (11) is a spindle, and the clamping bearing (21) is a spindle bearing, has an internal thread, and accommodates the spindle, whereby the first clamping element is displaceable in the axial direction by a relative rotation between the spindle and the clamping bearing.
4. Roller package according to one of the preceding claims, which is arranged to have the position of the first clamping element (11) relative to the second clamping element (12) checked.
5. Roller package according to claim 4, wherein the first clamping element (11) and / or the second clamping element (12) has at least one marking for checking the position of the first clamping element (11) relative to the second clamping element (12) and / or the first and second clamping elements are dimensioned such that they are aligned with one another when a defined relative position is reached.
6. Roller package according to one of the preceding claims, wherein the second clamping element (12) extends through the spring element (16) and / or along the spring element (16) to the first clamping element (11).
7. Roller package according to claim 6, wherein the second clamping element (12) extends through the first clamping element (11) and / or along the first clamping element (11).
8. Roller package according to one of the preceding claims, wherein the first roller is mounted in a stationary manner and the second roller is disengageable relative to the first roller, wherein the first roller is arranged towards a front side and the second roller towards a rear side of the roller package, wherein the tensioning device (10) is installed such that the coupling to the tensioning wheel bearing is arranged at the rear and an operating structure is arranged at the front of the tensioning device.
9. Roller package according to one of the preceding claims, wherein one end of the tensioning device (10) is fastened to a movable support element on which the tensioning wheel bearing is mounted, and wherein the tensioning device (10) is pivotally mounted about a first pivot axis (35) and about a second pivot axis (37) at a location different from this end.
10. A roller package according to claim 9, wherein the axial direction defines a main axis, and wherein the first pivot axis (35) and the second pivot axis (37) are orthogonal to the main axis and to each other.
11. Roller package according to claim 9 or 10, comprising a bearing element (31) which is mounted rotatably about the first pivot axis (35) relative to a support structure of the roller package and which mounts the clamping device (10) such that it is pivotable about the second pivot axis (37) relative to the bearing element (31).
12. Roller package according to one of the preceding claims, wherein one end of the tensioning device (10) is fastened to a movable support element, wherein the movable support element is a pivotable lever (5), wherein the fastening of the tensioning device and the tensioning wheel bearing are arranged on a same side of the lever (5) with respect to a pivot point of the lever (5).
13. Roller mill comprising at least one first roller pack according to one of the preceding claims and a feeding device for feeding a grinding material to the rollers of the first roller pack. Roller mill according to claim 13, wherein a front side is defined from which the roller package is accessible, wherein a rear end of the tensioning device (10) is coupled to the tensioning wheel bearing, and wherein an operating structure, by means of which the axial displacement of the first tensioning element (11) relative to the second tensioning element (12) can be effected, is arranged on the front side of the A tensioning device is present. Roller mill according to claim 13 or 14, comprising at least one additional, second roller set according to one of the preceding claims, wherein the second roller of the first roller set and the second roller of the second roller set are arranged side by side.