Tablet forming machine

The tablet press design with paired machining holes and thinner punches addresses capacity and stability issues in rotary presses, enhancing production efficiency and mechanical stability while using standard fixturing techniques.

JP7778808B2Active Publication Date: 2025-12-02GEA PROCESS ENG NV
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Patent Information

Application Number
JP2023555340
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-03-10
Publication Date
2025-12-02
Estimated Expiration
2041-03-10

AI Technical Summary

Technical Problem

Existing rotary tablet presses face challenges in increasing production capacity while maintaining mechanical stability and compatibility with standard die insert fixing solutions, as previous solutions either lead to deformation or limited applicability to small pitch circles.

Method used

A tablet press design with a rotary turret featuring die inserts having pairs of machining holes, allowing for increased number of punches while using standard fixturing techniques, and thinner punches to accommodate more punches on a pitch circle.

Benefits of technology

Enhances production capacity and mechanical stability by maintaining compatibility with standard fixturing methods, reducing inertial forces, and allowing for accurate tablet weight estimation.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The present invention relates to a tablet press (2) with a rotary turret having a rotary shaft, the tablet press (2) comprising an upper receptacle body (10) with a reciprocating upper punch (12), a lower receptacle body (20) with a reciprocating lower punch (22), a die table (30), and a die insert (40), the die table (30) having a receiving recess (32) in which the die insert (40) is disposed, the die insert (40) and the receiving recess (32) having complementary shapes, and each die insert (40) has a diameter greater than or equal to the outer diameter of the die insert (40). (N) which surfaces (44, 46) face the inner surfaces (34, 36) of the corresponding receiving recesses (32), each die insert (40) having a pair of working holes (42) and a pair of directly adjacent upper punches (12) which, in use, reciprocate respectively within the pair of working holes (42), and a corresponding pair of directly adjacent lower punches (12) which, in use, reciprocate respectively within the pair of working holes (42).
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Description

[Technical Field]

[0001] The present invention relates to a tablet press with a rotating turret. [Background technology]

[0002] The present invention relates to increasing the production capacity of tablet presses, particularly rotary tablet presses, which depends on the press speed that can be achieved and the number of punches that can be accommodated on the pitch circle.

[0003] Previously, it has been proposed to address the above-mentioned challenges by reducing the dimensions of the tooling (e.g., punches) below industry standards to accommodate more punches on the pitch circle, thereby increasing production capacity (see, for example, Patent Document 1). This tooling is also defined as non-standard tooling. A drawback associated with this approach is that the die insert becomes too small, which leads to deformation and difficulty in fixturing.

[0004] To address these problems with the deformation / fixing method, it has been proposed to introduce an exchangeable die plate. This die plate has die holes directly formed in the die plate, thereby preventing the use of small exchangeable dies (see, for example, Patent Document 2). However, this solution has the disadvantage that its applicability to rotary tablet presses with small pitch circle diameters is limited. In fact, the heavy table is not easily maneuverable. Instead, as disclosed in Patent Document 3, segmented exchangeable die plates have been developed. However, increasing the number of punches on a given pitch circle requires strict tolerances not only to ensure that the die holes match the tips of the upper and lower punches, but also to ensure accurate body diameters.

[0005] As an alternative for increasing the output capacity of rotary tablet presses, tooling with multiple tips on the same punch has been proposed in U.S. Patent No. 5,623,499, which discloses the features of the preamble of claim 1. This old (1915) document shows three tips aligned with three corresponding die holes located on a single replaceable die insert. However, the inability to estimate the weight of individual tablets during the compression process and the increased complexity may reduce the interest of increasing output capacity with this approach.

[0006] Similar to U.S. Patent No. 5,929,629 (see FIG. 2), U.S. Patent No. 5,929,629 proposes an interchangeable die insert with at least two or more holes arranged on a single die insert. The latter document differs from the former not only in that it defines a specific shape for the die insert, i.e., a circular and / or substantially kidney-shaped die insert design instead of a mandrel (i.e., circular), but also in that the objective of U.S. Patent No. 5,929,629 is different from that of U.S. Patent No. 5,929,629. In fact, the rationale for the circular insert is to reduce installation time and improve maintenance and cleaning. Thus, U.S. Patent No. 5,929,629 seeks to solve a different problem. Furthermore, the solution outlined in U.S. Patent No. 5,929,629 requires a new die insert fixation solution, which involves new developments and reduced economies of scale. This is because the die insert fixation solution cannot be shared with standard die insert fixation solutions. [Prior art documents] [Patent documents]

[0007] [Patent Document 1] US Patent Application Publication No. 2009 / 0269433 [Patent Document 2] International Publication No. 2009 / 112886 [Patent Document 3] European Patent No. 1316411 [Patent Document 4] UK Patent Application Publication No. 191507881 [Patent Document 5] US Patent Application Publication No. 2008 / 0145468 Summary of the Invention [Problem to be solved by the invention]

[0008] The object of the present invention is to address the above-mentioned drawbacks, and in particular to obtain a die table that is large in capacity and robust, and that is preferably compatible with standard die insert fixing solutions. [Means for solving the problem]

[0009] In a first aspect of the present invention, this and further objects are achieved by a tablet press comprising a rotary turret having a rotation axis, the tablet press comprising: an upper receptacle body with a reciprocating upper punch, a lower receptacle body with a reciprocating lower punch, a die table, and die inserts, the die table having receiving recesses into which the die inserts are disposed, the die inserts and the receiving recesses having complementary shapes, each die insert having at least one cylindrical outer surface having the outer diameter of the die insert, that surface facing the inner surface of the corresponding receiving recess, each die insert having a pair of working holes, and a pair of directly adjacent upper punches that, in use, reciprocate respectively within the pair of working holes, and a corresponding pair of directly adjacent lower punches that, in use, reciprocate respectively within the pair of working holes.

[0010] The provision of such a pair of machining holes in each die insert allows for an increased number of machining holes while maintaining the standard fixturing techniques traditionally used to secure the die insert in the receiving die table, thereby directly benefiting from the use of standard fixturing techniques, which is advantageous for many reasons, particularly in terms of availability, cost, and mechanical stability.

[0011] It should be noted that the term "pair of machining holes" is meant to encompass at least two machining holes present in a single die insert; however, embodiments in which only two machining holes are present in each die insert are preferred.

[0012] According to a particular embodiment of the present invention, the tablet press comprises one of the following more technical features, which may be combined with each other in any way: Each of the upper or lower punches includes a single tip adapted for reciprocating movement within a corresponding machining hole. Each of the upper or lower punches is a unitary part. A pair of machining holes are arranged in a circumferential direction around the rotation axis. The pair of machining holes are a pair of through holes opening on the upper and lower surfaces of corresponding die inserts. The die table has an upper surface and a lower surface, and the upper surface of each die insert is flush with the upper surface of the die table. The lower surface of each die insert is flush with the lower surface of the die table. The at least one cylindrical outer surface includes a first cylindrical outer surface and a second cylindrical outer surface located below the first surface, the first and second surfaces having the same outer diameter. Each die insert includes an outer annular groove located between a first outer cylindrical surface and a second outer cylindrical surface. Each die insert has an outer side surface, the dimensions of which meet the requirements of the ISO 18084:2011(E) standard. Each die insert has only two machining holes. The number of machining holes is twice the number of die inserts. The number of upper punches is twice the number of die inserts. The number of lower punches is twice the number of die inserts. Within each receiving recess, the inner surface is a first cylindrical inner surface that is positioned above a second cylindrical inner surface of the recess, the first and second surfaces having the same diameter. At least one outer surface has a diameter selected from the group consisting of 38.1 mm, 30.16 mm, 24 mm, or 21 mm. Each of the upper punch or lower punch has a body portion for moving the punch within the upper receptacle body or lower receptacle body, respectively, and the body portion has a cylindrical outer surface having a body diameter that is less than 45% of the outer diameter of the die insert. The body diameter is smaller than 14 mm, and more preferably smaller than 12.5 mm. The diameter of the tip of the lower punch or the tip of the upper punch is equal to or smaller than the body diameter. Each die insert is a unitary piece. Each die insert is adapted to be inserted in a direction parallel to the axis of rotation. At least one cylindrical outer surface surrounds a pair of drill holes. At least one cylindrical outer surface extends over an arc of at least 330 degrees, preferably 360 degrees. The inner surface is the closed surface. Each die insert is provided with a further machining hole, and the pair of machining holes and the further machining hole are arranged on the same pitch circle. The number of lower punches is a positive integer multiple of the number of die inserts. The number of upper punches is a positive integer multiple of the number of die inserts. Each of the upper or lower punches includes two tips adapted for reciprocating movement within a corresponding machining hole. The tips of the upper punches are arranged along two different pitch circles and / or the tips of the lower punches are arranged along two different pitch circles. Each die insert has a further pair of machining holes, and when in use, two tip portions belonging to the first and second upper punches reciprocate within the further pair of machining holes, respectively, and when in use, two other tip portions belonging to the first and second upper punches reciprocate within the pair of machining holes, respectively, belonging to the die insert. Each die insert has a further pair of machining holes, and when in use, two tip portions belonging to the first and second lower punches reciprocate within the further pair of machining holes, respectively, and when in use, two other tip portions belonging to the first and second lower punches reciprocate within the pair of machining holes, respectively, belonging to the die insert.

[0013] In the following description, embodiments of the present invention will be described with reference to the drawings. [Brief explanation of the drawings]

[0014] [Figure 1] FIG. 1 discloses an example of a prior art tablet press with a single-tip punch. [Figure 2] FIG. 2 shows an example of a prior art tablet press with multiple tip punches. [Figure 3] FIG. 3 discloses a comparison between an embodiment of a tablet press according to the present invention and an example of a prior art tablet press. [Figure 4] FIG. 4 discloses an example of a lower punch (standard tooling) according to the prior art. [Figure 5A] FIG. 5A discloses an example of a prior art punch (non-standard tooling). [Figure 5B] FIG. 5B discloses an example of a prior art punch (non-standard tooling). [Figure 6] FIG. 6 discloses an example of a prior art die insert (standard tooling). [Figure 7A] FIG. 7A discloses an embodiment of a die insert according to the present invention. [Figure 7B] FIG. 7B discloses an embodiment of a die insert according to the present invention. [Figure 7C] FIG. 7C discloses an embodiment of a die insert according to the present invention. [Figure 8A] FIG. 8A discloses an embodiment of a rotary turret according to the present invention without the punch and die inserts. [Figure 8B] FIG. 8B discloses the rotary turret embodiment of FIG. 8A with a die insert. [Figure 9A] FIG. 9A discloses a cross-sectional view of a die table and punch according to the present invention. [Figure 9B] FIG. 9B discloses a side view of an opposed punch according to the present invention. [Figure 10A] FIG. 10A shows a top view of an embodiment of the present invention. [Figure 10B] FIG. 10B is a cross-sectional view of FIG. 10A taken along line YY without the die insert. [Figure 10C] FIG. 10C is a cross-sectional view of FIG. 10A taken along line YY with the die insert. DETAILED DESCRIPTION OF THE INVENTION

[0015] The present invention will now be described in more detail with reference to the accompanying drawings, which show embodiments of the invention. However, the invention may be embodied in many different forms and should not be construed as limited to the embodiments set forth herein, but rather these embodiments are provided for the sake of thoroughness and completeness.

[0016] In the following description, elements of the prior art that have corresponding elements with functions corresponding to those in subsequent embodiments of the present invention are designated with the same reference numeral followed by a "P" for ease of understanding; however, this should not be construed as meaning that such elements are not differentiated from one another.

[0017] FIG. 1 shows a cross-sectional view of a prior art tablet press P2. The tablet press includes an upper receptacle body P10 with a reciprocating upper punch P12, a lower receptacle body P20 with a reciprocating lower punch P22, and a die table P30 with a plurality of replaceable die inserts P40. The die inserts P40 shown include machining holes P42. The die inserts P40 are form-fittingly positioned within the receiving recesses P32. During operation, the upper receptacle body P10, the lower receptacle body P20, and the die table P30 rotate synchronously about a vertically extending rotation axis. The upper receptacle body P10, the lower receptacle body P20, and the die table P30 form a rotating turret of the tablet press P2. Stator elements of the tablet press are not shown in FIG. 1. Typically, the stator elements include upper and lower cam profile guides or rollers that actuate the upper and lower punches P12 and P22, respectively, when the punches P12 and P22 rotate with the upper and lower receptacle bodies P10 and P20, respectively. The upper and lower punches P12 and P22 may have end surfaces P18 and P28 that slide on the guide surfaces of the corresponding cam profiles or roll on the roller surfaces of the corresponding cam profiles. The opposite ends (tips) P14 and P24 of the upper and lower punches P12 and P22 can reciprocate within the corresponding working holes P42. During operation, a powder composition is supplied, for example, by a feeder assembly (not shown). The powder composition is then confined within a variable volume defined by the ends (tips) of the corresponding upper and lower punches P12 and P22 and the inner surfaces of the corresponding working holes P42. During at least one rotation cycle, the ends (tips) of the two opposed upper and lower punches P12, P22 approach each other and compress the powder composition to form, for example, a tablet, which is then ejected from the working cavity.For example, the tip end of the corresponding upper punch is withdrawn from its working hole, leaving a free opening, while the end of the corresponding lower punch is moved upward, preferably above the upper surface of the corresponding die, to push the formed tablet out of the working hole P42. The tablet can then be moved to another location, for example, to an outlet. Once the working hole P42 is free, it can be filled again with the powder mixture.

[0018] Figure 2 discloses an alternative to the tablet press of Figure 1. In the tablet press of Figure 2, upper punch P12 and lower punch P22 are adapted to receive three tips, increasing capacity. The free ends of the three tips can reciprocate within three corresponding machining holes P42. With this design, the increased complexity makes it impossible to accurately estimate the weight of individual tablets during the compression process, thereby reducing the interest of this approach for increasing output capacity.

[0019] FIG. 3 shows a schematic diagram comparing the tablet press of the present invention with another example of a prior art tablet press (which does not have a fixing pin f as shown in FIG. 1). The prior art tablet press in FIG. 3 and the present invention share the outer side surface of the die insert. The present invention differs from the prior art in that it combines two upper punches 12 / lower punches 22 with a single tip, each aligned with two working holes 42 located in the same insert 40. This allows for an increase in the number of working holes 42 while maintaining the standard fixing method conventionally used to fix the die insert 36 in the receiving die table 30. Therefore, the present solution directly benefits from the use of the standard fixing method, particularly its mechanical stability. In other words, no additional screws or assembly webs are required to fix the die insert, as proposed in the prior art (e.g., Patent Document 5).

[0020] 3, on the right side, discloses a partial cross-sectional view of a tablet press 2 according to the present invention. The press 2 includes an upper receptacle body 10 (not shown) with a reciprocating upper punch 12, a lower receptacle body 20 (not shown) with a reciprocating lower punch 22, and a die table 30 with a plurality of replaceable die inserts 40. The die insert 40 shown includes two machining holes 42. The die insert 40 is positioned in its receiving recess 32 in a form-fitting manner. During operation, the upper receptacle body 10 (not shown), the lower receptacle body 20 (not shown), and the die table 30 rotate synchronously about a vertically extending axis of rotation. The upper receptacle body 10 (not shown), the lower receptacle body 20 (not shown), and the die table 30 form a rotating turret of the tablet press 2. Stator elements of the tablet press are not shown in FIG. 3 . Typically, the stator elements include upper and lower cam profile guides or rollers that actuate the upper and lower punches 12 and 22, respectively, as the punches 12 and 22 rotate with the upper and lower receptacle bodies 10 and 20 (not shown). The upper and lower punches 12 and 22 may have end surfaces 18 and 28 that slide on corresponding cam profile guide surfaces or roll on corresponding cam profile roller surfaces (not shown). Opposite ends (tips) 14 and 24 of the upper and lower punches 12 and 22 are reciprocable within corresponding working holes 42. During operation, the powder composition is supplied, for example, by a feeder assembly (not shown). The powder composition is then confined within a variable volume defined by the ends (tips) of the corresponding upper and lower punches 12 and 22 and the inner surfaces of the corresponding working holes 42. During at least one rotational cycle, the ends (tips) of the two opposed upper and lower punches 12 and 22 approach each other and compress the powder composition to form, for example, a tablet, which is then ejected from the working hole.For example, the tip end of the corresponding upper punch is withdrawn from its working hole, leaving a free opening, while the end of the corresponding lower punch is moved upward, preferably above the upper surface of the corresponding die, to push the formed tablet out of the working hole 42. The tablet can then be moved to another location, for example, to an outlet. Once the working hole 42 is free, it can be filled again with the powder mixture.

[0021] Furthermore, the punches of the present invention are thinner than prior art punches (e.g., punches defined in accordance with ISO 18084:2011(E)) and can accommodate a greater number of punches on a pitch. Therefore, the punches of the present invention are less bulky and can reduce inertial forces. Advantageously, the selected punches 12, 22 have a barrel diameter (referred to as D1 in Table 1) that is smaller than the smaller D1 value specified in ISO 18084:2011(E), i.e., less than 19 mm. This barrel diameter is preferably less than 14 mm, and more preferably less than 12.5 mm.

[0022] Figure 4 shows a lower punch according to the ISO 18084:2011(E) standard. Some reference diameters, such as D1, are shown in Table 1 below. It should be noted that the diameter of the tip of the lower punch is selected by the user and is therefore not defined by this standard.

[0023] Typically, the diameter of the tip of the lower punch or the upper punch is equal to or smaller than the body diameter D1. [Table 1]

[0024] It is not mandatory for the lower punch / upper punch to meet the requirements of ISO 18084:2011(E). For example, European Patent No. 2111972, the contents of which are incorporated herein by reference, shows examples of punches that do not comply with ISO 18084:2011(E). These punches are also known as non-standard tooling.

[0025] Advantageously, the geometry of the die insert (also known as a "die") according to the present invention meets the requirements of ISO 18084:2011(E). It should be noted that ISO 18084:2011(E) defines a single-hole die insert 40, whereas the present invention relates to a two-hole solution.

[0026] FIG. 6 shows a typical die insert 40 having one hole conforming to ISO 18084:2011(E), and Table 2 shows reference values ​​such as the outer diameter (N) of the die insert. [Table 2]

[0027] 7A, 7B and 7C show a die insert 40 having only two holes 42 according to the present invention.

[0028] 7A shows a plan view of the die insert 40. Two through holes 42 are located on either side of a plane of symmetry. Preferably, the two through holes 42 are symmetrically located along an arc passing through the center of the die insert 40.

[0029] 7B shows a cross-sectional view of die insert 42, and FIG. 7C shows a side view. As mentioned above, its outer shape can meet the requirements of ISO 18084:2011(E). The inner shape of both holes can also comply with the requirements of this standard for defining a die insert with a single hole.

[0030] FIG. 8A shows a partial view of the upper receptacle body 10, die table 30, and lower receptacle body 20 according to the present invention when a die insert 40 is not placed on said table 30. FIG.

[0031] Figure 8B differs from Figure 8A only in that the die insert is located in recess 32. A locking pin can be screwed into a radial hole 33 opening on the (outer) side surface of die table 30. The upper surface 35 of the die table is flush with the upper surface 45 of the die insert. The lower surface 37 of the die table can also be flush with the lower surface of the die insert.

[0032] Referring now briefly to FIG. 10A, which depicts a plan view of a possible embodiment of the die table 30, the location of the radial bore 33 is shown. FIG. 10B depicts a cross-sectional view along plane YY without the die insert, and FIG. 10C depicts a cross-sectional view including the die insert 40. A die plate 38 is mounted on the lower surface 37 of the die table, and the die plate 38 defines the vertical position of the die insert within the opening of the radial bore by aligning its lower surface 47 with the lower surface 37 of the die table. While the die plate 38 in the illustrated position is positioned so that the lower surface 47 of the die insert 40 is flush with the lower surface 37 of the die table, other configurations are contemplated so long as the die plate 38 reliably positions the die insert in a clearly defined vertical position. Additional positioning means, including additional recesses in the die plate 38, may be present, or the die plate 38 may protrude into the receiving recess 32.

[0033] The inner surfaces 34, 36 of the receiving recess 32 can also be seen in Figures 10B and 10C, with the inner surface 34 of the receiving recess 32 constituting the upper or first cylindrical inner surface and the inner surface 36 of the receiving recess 32 constituting the lower or second cylindrical inner surface.

[0034] FIG. 9A shows a cross-sectional view of a circumferential row of punches 12, 22 reciprocating within a machining bore 42.

[0035] FIG. 9B shows a side view of the upper punch 12 and the lower punch 22. The upper punch 12 / lower punch 22 includes a single tip 14, 24 adapted to reciprocate within one of the corresponding machining holes 42 (not shown in FIG. 9B). The upper punch 12 / lower punch 22 includes a body portion 16, 26 adapted to reciprocate within a complementary hole (not shown in FIG. 9B) formed in the upper receptacle body 10 or the lower receptacle body 20, respectively. The body portion 16, 26 includes a cylindrical outer surface having a body diameter "D1." The designation "D1" is used to allow comparison of the non-standard punches 12, 22 of the present invention with standard punches. The use of the designation "D1" should not be interpreted as if ISO 18084:2011(E) defines the overall shape of the punches 12, 22. It has been discovered that the body portions 16, 26 can advantageously have a body diameter D1 that is less than 45% of the diameter of the outer diameter of the die insert, i.e., diameter N. In conjunction with the designation "D1," the designation "N" is used to allow comparison of the non-standard die insert 40 (having two holes) according to the present invention with a standard insert having one hole. The use of the designation "N1" should not be interpreted as if ISO 18084:2011(E) defines the overall shape of the die insert. With an upper limit of 45%, it can be foreseen that the two through-holes 42 do not result in a significant decrease in mechanical resistance. Furthermore, sufficient material exists between the two through-holes 42. Similarly, sufficient material also exists between the through-holes and the (outer) side surfaces 44, 46 of the die insert 40.

[0036] The number of machining holes is preferably limited to two, however, die inserts with three, or even more, four machining holes can be envisaged.

[0037] The invention, which revolves around the asymmetry between the number of die inserts and the number of punches, can be generalized to multi-tip punches, where the number of working holes per die insert is multiplied by the number of tips. Even though the inability to estimate the weight of individual tablets during the compression process makes the multi-tip solution less attractive than a single-tip solution, the use of such multi-tip punches can still be seen as a non-obvious alternative solution to existing tablet presses that use multi-tip punches. Furthermore, the tablet press can use single- or multi-tip punches, offering modularity. The present disclosure also includes the following aspects. [Aspect 1] A tablet molding machine (2) having a rotary turret with a rotation axis, the tablet molding machine (2) an upper receptacle body (10) having a reciprocating upper punch (12); a lower receptacle body (20) having a reciprocating lower punch (22); A die table (30); a die insert (40); The die table (30) includes a receiving recess (32) into which the die insert (40) is disposed; the die insert (40) and the receiving recess (32) have complementary shapes; In a tablet press (2), each die insert (40) has at least one cylindrical outer surface (44, 46) having an outer diameter (N) of the die insert, said surface (44, 46) facing the inner surface (34, 36) of the corresponding receiving recess (32), A tablet molding machine (2) characterized in that each die insert (40) has a pair of processing holes (42), a pair of directly adjacent upper punches (12) respectively reciprocating within the pair of processing holes (42) when in use, and a corresponding pair of directly adjacent lower punches (12) respectively reciprocating within the pair of processing holes (42) when in use. [Aspect 2] A tablet molding machine (2) according to aspect 1, wherein each of the upper punch (12) or the lower punch (22) has a single tip (14, 24) adapted to reciprocate within the corresponding processing hole (42). Aspect 3 3. The tablet press (2) according to claim 1 or 2, wherein each of the upper punch (12) or the lower punch (22) is an integral part. Aspect 4 A tablet molding machine (2) according to any one of aspects 1 to 3, wherein the pair of processing holes (42) are arranged in a circumferential direction around the rotation axis. Aspect 5 A tablet molding machine (2) according to any one of aspects 1 to 4, wherein the pair of processing holes (42) are a pair of through holes opening on the upper surface (45) and lower surface (47) of the corresponding die insert (40). Aspect 6 A tablet press (2) according to claim 5, wherein the die table (30) has an upper surface (35) and a lower surface (37), and the upper surface (45) of each die insert is flush with the upper surface (35) of the die table. Aspect 7 A tablet molding machine (2) according to any one of aspects 1 to 6, wherein the at least one cylindrical outer surface (44, 46) comprises a first cylindrical outer surface (44) and a second cylindrical outer surface (46) located below the first surface (44), and the first surface (44) and the second surface (46) have the same outer diameter (N). Aspect 8 8. The tablet press (2) of claim 7, wherein each die insert (40) comprises an annular outer groove (48) located between the first cylindrical outer surface (44) and the second cylindrical outer surface (46). Aspect 9 9. The tablet press (2) according to any one of the preceding aspects, wherein each die insert (40) has an outer side surface, the dimensions of which meet the requirements of the ISO 18084:2011(E) standard. Aspect 10 10. The tablet press (2) according to any one of the preceding aspects, wherein each die insert (40) has only two working holes (42). Aspect 11 11. The tablet press (2) according to any one of the preceding aspects, wherein the number of the processing holes (42) is twice the number of the die inserts (40). Aspect 12 12. The tablet press (2) of any one of aspects 1 to 11, wherein within each receiving recess (32), the inner surface is a first cylindrical inner surface (34), the first cylindrical inner surface (34) being located above a second cylindrical inner surface (36) of the recess (32), and the first surface (34) and the second surface (36) having the same diameter. Aspect 13 13. The tablet press (2) according to any one of the preceding aspects, wherein the diameter of the at least one outer surface (44, 46) is selected from the group consisting of 38.1 mm, 30.16 mm, 24 mm, and 21 mm. Aspect 14 A tablet molding machine (2) according to any one of aspects 1 to 13, wherein each of the upper punch (12) or the lower punch (22) has a body portion (16, 26) for moving the punch (12, 22) within the upper receptacle body (10) or the lower receptacle body (20), respectively, and the body portion (16, 26) has a cylindrical outer surface having a body diameter (D1), which is smaller than 45% of the outer diameter (N) of the die insert. Aspect 15 15. The tablet molding machine (2) according to any one of aspects 1 to 14, wherein the body diameter (D1) is smaller than 14 mm, more preferably smaller than 12.5 mm. Aspect 16 A tablet molding machine (2) according to any one of aspects 1 to 15, wherein the diameter of the tip of the lower punch or the tip of the upper punch is equal to or smaller than the body diameter (D1). Aspect 17 17. The tablet press (2) according to any one of the preceding aspects, wherein each die insert (40) is an integral part. Aspect 18 18. The tablet press (2) according to any one of the preceding aspects, wherein each die insert (40) is adapted to be inserted in a direction parallel to the axis of rotation. Aspect 19 19. The tablet press (2) according to any one of the preceding aspects, wherein the at least one cylindrical outer surface (44, 46) surrounds the pair of working holes (42). Aspect 20 20. The tablet press (2) according to any one of the preceding aspects, wherein the inner surfaces (44, 46) are closed surfaces. Aspect 21 A tablet molding machine (2) according to any one of Aspects 1, 2, 4 to 9, and 11 to 20, wherein each die insert (40) has an additional processing hole (42), and the pair of processing holes (42) and the additional processing hole (42) are arranged on the same pitch circle. Aspect 22 22. The tablet molding machine (2) according to any one of aspects 1 to 21, wherein the number of the lower punches (22) or the upper punches (12) is a positive integer multiple of the number of the die inserts (40). [Explanation of symbols]

[0038] 2. Tablet molding machine 10 Upper receptacle body 12 Upper Punch 14 Tip of upper punch 16 Upper punch body 18 Upper punch head 20 Lower receptacle body 22 Lower Punch 24 Tip of upper punch 26 Upper punch body 28 Upper punch head 30 Die Table 32 Receiving recess 33 radial hole 34 (upper or first) cylindrical inner surface 35 Top of die table 36 (lower or second) cylindrical inner surface 37 Underside of die table 38 Die Plate 40 Die Insert 42 die insert holes 44 (first or upper) cylindrical outer surface 45 Top surface of die insert 46 (Second or Lower) Cylindrical Outer Surface 47 Underside of die insert 48 Annular outer groove

Claims

1. A tablet molding machine (2) having a rotary turret with a rotation axis, the tablet molding machine (2) an upper receptacle body (10) having a reciprocating upper punch (12); a lower receptacle body (20) having a reciprocating lower punch (22); A die table (30); a die insert (40); The die table (30) includes a receiving recess (32) within which the die insert (40) is disposed; the die insert (40) and the receiving recess (32) have complementary shapes; A tablet press (2), wherein each die insert (40) has at least one cylindrical outer surface (44, 46) having an outer diameter (N) of the die insert, said at least one cylindrical outer surface (44, 46) facing the inner surface (34, 36) of the corresponding receiving recess (32); A tablet molding machine (2) characterized in that each die insert (40) has a pair of processing holes (42), a pair of directly adjacent upper punches (12) reciprocate within the pair of processing holes (42) when in use, and a pair of corresponding directly adjacent lower punches (22) reciprocate within the pair of processing holes (42) when in use, each of the upper punches (12) or the lower punches (22) having a single tip (14, 24) adapted to reciprocate within the corresponding processing hole (42), and the pair of processing holes (42) are arranged circumferentially around the axis of rotation.

2. 2. The tablet press (2) according to claim 1, wherein each of the upper punch (12) or the lower punch (22) is an integral part.

3. 3. A tablet molding machine (2) according to any one of claims 1 to 2, wherein the pair of processing holes (42) are a pair of through holes opening on the upper surface (45) and lower surface (47) of the corresponding die insert (40).

4. 4. The tablet press (2) of claim 3, wherein the die table (30) has an upper surface (35) and a lower surface (37), and the upper surface (45) of each die insert is flush with the upper surface (35) of the die table.

5. 5. A tablet molding machine (2) as claimed in any one of claims 1 to 4, wherein the at least one cylindrical outer surface (44, 46) includes a first cylindrical outer surface (44) and a second cylindrical outer surface (46) located below the first cylindrical outer surface (44), and the first cylindrical outer surface (44) and the second cylindrical outer surface (46) have the same outer diameter (N) of the die insert.

6. 6. The tablet press (2) of claim 5, wherein each die insert (40) comprises an annular outer groove (48) located between the first cylindrical outer surface (44) and the second cylindrical outer surface (46).

7. 7. The tablet press (2) according to any one of claims 1 to 6, wherein each die insert (40) has an outer side surface, the dimensions of which meet the requirements of the ISO 18084:2011(E) standard.

8. 8. A tablet press (2) according to any one of claims 1 to 7, wherein each die insert (40) comprises only two of said machining holes (42).

9. 9. The tablet press (2) according to any one of claims 1 to 8, wherein the number of said processing holes (42) is twice the number of said die inserts (40).

10. 10. A tablet molding machine (2) as claimed in any one of claims 1 to 9, wherein in each receiving recess (32), the inner surface is a first cylindrical inner surface (34), the first cylindrical inner surface (34) is located above a second cylindrical inner surface (36) of the receiving recess (32), and the first cylindrical inner surface (34) and the second cylindrical inner surface (36) have the same diameter.

11. 11. A tablet press (2) according to any one of claims 1 to 10, wherein the diameter of the at least one cylindrical outer surface (44, 46) is selected from the group consisting of 38.1 mm, 30.16 mm, 24 mm, and 21 mm.

12. 12. The tablet molding machine (2) according to claim 1, wherein each of the upper punch (12) or the lower punch (22) has a body portion (16, 26) for moving the upper punch (12) or the lower punch (22) within the upper receptacle body (10) or the lower receptacle body (20), respectively, and the body portion (16, 26) has a cylindrical outer surface having a body diameter (D1), which is smaller than 45% of the outer diameter (N) of the die insert.

13. 13. The tablet press (2) according to claim 12, wherein the body diameter (D1) is smaller than 14 mm, more preferably smaller than 12.5 mm.

14. The tablet molding machine (2) according to claim 13, wherein the diameter of the tip of the lower punch or the tip of the upper punch is equal to or smaller than the body diameter (D1).

15. 15. A tablet press (2) according to any one of the preceding claims, wherein each die insert (40) is an integral part.

16. 16. A tablet press (2) according to any one of the preceding claims, wherein each die insert (40) is adapted to be inserted in a direction parallel to the axis of rotation.

17. 17. A tablet press (2) according to any one of claims 1 to 16, wherein said at least one cylindrical outer surface (44, 46) surrounds said pair of working holes (42).

18. 18. Tablet press (2) according to any one of the preceding claims, wherein the inner surfaces (34, 36) are closed surfaces.

19. A tablet molding machine (2) according to any one of claims 1, 3 to 7 and 9 to 18, wherein each die insert (40) is provided with a further machining hole (42), and the pair of machining holes (42) and the further machining hole (42) are arranged on the same pitch circle.

20. 20. The tablet press (2) according to any one of claims 1 to 19, wherein the number of the lower punches (22) or the upper punches (12) is a positive integer multiple of the number of the die inserts (40).

Citation Information

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