Manufacturing mold of fiber woven mesh cement base
By designing adjustable partition beam and adjusting beam structures, the problem of lack of versatility of existing molds is solved, and the multi-purpose adaptability and cost-effectiveness of the mold is achieved.
Patent Information
- Application Number
- CN202422585703.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-25
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2034-10-25
AI Technical Summary
In the prior art, the molds for making cement bases of fiber braided mesh lack versatility, resulting in the need to re-customize the molds whenever the size of the cement base changes, which increases the test cost.
A mold structure including substrate, fixed beam, partition beam and adjustment beam is designed. Through the adjustable position of partition beam and adjustment beam, the mold size can be flexibly changed, which is suitable for the production of a variety of cement bases.
It improves the versatility of the mold, reduces the testing cost, and can meet the production needs of a variety of cement bases, enhancing assembly convenience and use reliability.
Smart Images

Figure CN223289994U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of civil engineering materials, in particular to a cement-based manufacturing mold for a fiber braided mesh. Background Art
[0002] TRC (Textile reinforced concrete) fiber mesh reinforced concrete, also known as fiber braid reinforced cement, uses continuous long fibers instead of discontinuous short fibers as reinforcement material. It has the advantages of high strength, high toughness, anti-magnetization, light weight, and no corrosion.
[0003] In the related art, there is no unified standard for the production of fiber woven mesh cement base. Generally, the casting mold is customized according to the design requirements. The mold has poor versatility. When the size of the cement base changes, the casting mold needs to be customized again, which greatly increases the test cost. Utility Model Content
[0004] The present invention aims to solve at least one of the technical problems in the prior art. To this end, one purpose of the present invention is to provide a fiber mesh cement-based production mold, which has high versatility and is conducive to reducing experimental costs.
[0005] According to the utility model, the fiber woven mesh cement-based production mold includes: a substrate; multiple frames, the frames include: two fixed beams, multiple partition beams and multiple adjustment beams, the two fixed beams extend along the first direction, and along the second direction, the two fixed beams are opposite and spaced apart, the multiple partition beams are connected between the two fixed beams and the positions along the first direction are adjustable, at least one adjustment beam is connected between any two adjacent partition beams, and the positions of the adjustment beams along the second direction are adjustable, and the first direction is perpendicular to the second direction; the multiple frames are stacked opposite each other along the thickness direction of the substrate and are arranged on the substrate.
[0006] According to the fiber woven mesh cement-based manufacturing mold of the utility model, by connecting multiple partition beams between two fixed beams and making their positions adjustable along the first direction, and making the position of the adjustment beam adjustable along the second direction, the size of the manufacturing mold can be flexibly changed, so that the manufacturing mold can be suitable for the production of cement-based materials of various sizes, thereby improving the versatility of the manufacturing mold, helping to reduce testing costs, and being able to meet the needs of producing multiple and multiple cement-based materials.
[0007] In some examples of the present invention, along the first direction, both ends of each of the fixed beams have a first matching portion, and the substrate has multiple second matching portions, and the multiple second matching portions correspond one-to-one to the multiple first matching portions and are assembled in coordination.
[0008] In some examples of the present invention, the fiber woven mesh cement-based production mold also includes: multiple first fasteners, the first matching part is configured as a first mounting hole, the second matching part is configured as a second mounting hole, and the first fastener is passed through the corresponding first mounting hole and the second mounting hole to set the fixed beam on the substrate.
[0009] In some examples of the present invention, the fiber woven mesh cement-based production mold also includes: multiple second fasteners, each of the fixed beams has a first matching hole extending along the first direction, the first matching hole passes through the fixed beam along the second direction, and along the second direction, both ends of the partition beam have third mounting holes, the third mounting holes correspond to the adjacent first matching holes, the third mounting holes are the same in number and correspond one-to-one with the second fasteners, and the second fasteners are passed through the corresponding first matching holes and the third mounting holes to assemble the fixed beam and the partition beam.
[0010] In some examples of the present invention, each of the partition beams has two second fitting holes extending along the second direction. Along the first direction, the two second fitting holes are spaced apart and open to the outside respectively. The two ends of the adjustment beam are respectively located at the second fitting holes of the two partition beams.
[0011] In some examples of the present invention, the fiber woven mesh cement-based production mold also includes: multiple third fasteners, the part of the adjustment beam located in the second matching hole has a fourth mounting hole, along the thickness direction of the substrate, the top wall and the bottom wall of the second matching hole both have a third matching hole extending along the second direction, the third matching hole is a through hole, the fourth mounting hole corresponds to the adjacent third matching hole, the third fasteners are the same in number and correspond one to one to the fourth mounting holes, the third fasteners are passed through the corresponding third matching holes and the fourth mounting holes to assemble the adjustment beam with the partition beam.
[0012] In some examples of the present invention, the adjustment beam includes two embedded blocks and a beam body, the beam body includes at least one exposed block, the two embedded blocks are respectively arranged at both ends of the beam body, and at least parts of the two embedded blocks are respectively located in the second matching holes of the two partition beams.
[0013] In some examples of the present invention, the embedded block is snap-connected or connected to the exposed block by mortise and tenon joints.
[0014] In some examples of the present invention, the beam body includes a plurality of exposed blocks, and the plurality of exposed blocks are sequentially snap-connected or sequentially connected by mortise and tenon joints.
[0015] In some examples of the present invention, the fiber woven mesh cement-based production mold further includes: a patch, and the patch is attached to the hole on the side of the frame.
[0016] Additional aspects and advantages of the present invention will be given in part in the following description and will become apparent from the following description or learned through practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] The above and / or additional aspects and advantages of the present invention will become apparent and readily understood from the description of the embodiments in conjunction with the following drawings, in which:
[0018] Figure 1 It is a schematic diagram of a mold making method according to an embodiment of the present utility model;
[0019] Figure 2 It is a top view of the production mold according to an embodiment of the present utility model;
[0020] Figure 3 This is a schematic diagram of the assembly of the fixed beam and the base plate according to an embodiment of the present utility model;
[0021] Figure 4 is a schematic diagram of a fixed beam according to an embodiment of the present utility model;
[0022] Figure 5 is a schematic diagram of a partition beam according to an embodiment of the present utility model;
[0023] Figure 6 It is a schematic diagram of the adjustment beam according to an embodiment of the present utility model.
[0024] Reference numerals:
[0025] Manufacturing mold 100; first fastener 91;
[0026] Base plate 10; frame 20;
[0027] Fixed beam 21; first matching portion 211; first mounting hole 212; first matching hole 213;
[0028] Separating beam 22; third mounting hole 221; second matching hole 222; third matching hole 2221;
[0029] Adjusting beam 23; fourth mounting hole 231; embedded block 232; beam body 233; exposed block 234. DETAILED DESCRIPTION
[0030] The following describes embodiments of the present invention in detail. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended only to explain the present invention and are not to be construed as limiting the present invention.
[0031] Reference below Figures 1-6 A fiber woven mesh cement-based production mold 100 according to an embodiment of the present invention is described.
[0032] like Figures 1-6 As shown, the manufacturing mold 100 according to the embodiment of the present invention includes: a substrate 10 and a plurality of frames 20.
[0033] The frame 20 includes two fixed beams 21, a plurality of partition beams 22 and a plurality of adjustment beams 23. The two fixed beams 21 are arranged along the first direction (ie Figure 1 The X direction shown in FIG) extends along the second direction (ie Figure 1 The two fixed beams 21 are opposite and spaced apart, and the plurality of partition beams 22 are connected between the two fixed beams 21 and along the first direction (ie Figure 1 The positions of the beams 22 are adjustable, and at least one adjusting beam 23 is connected between any two adjacent dividing beams 22, and the adjusting beam 23 is adjusted along the second direction (ie Figure 1 The position of the frames 20 is adjustable along the thickness direction of the substrate 10 (ie, the Y direction shown in FIG. 1 ), and the first direction is perpendicular to the second direction; Figure 2 The two members are stacked opposite each other (in the Z direction shown) and are arranged on the substrate 10.
[0034] There are multiple frames 20 , and the number of frames 20 can be but is not limited to two, three, etc. As some embodiments of the present application, the number of frames 20 is two.
[0035] The frame 20 includes two fixed beams 21, a plurality of partition beams 22 and a plurality of adjustment beams 23. Figure 1 The two fixed beams 21 are extended along the second direction (ie Figure 1 The two fixed beams 21 are arranged opposite to each other and spaced apart. Specifically, a plane is set, the normal of which is aligned with the second direction (ie Figure 1 The plane is parallel to the second direction (ie Figure 1 The orthographic projections of the two fixed beams 21 on the plane completely coincide with each other.
[0036] The number of the partition beams 22 is multiple, and the number of the partition beams 22 can be but is not limited to two, three, four, etc. As some embodiments of the present application, the number of the partition beams 22 is four, and the four partition beams 22 are connected between the two fixed beams 21, and along the first direction (i.e. Figure 1 The four partition beams 22 can all be moved so that the positions of the partition beams 22 can be adjusted, and the spacing distance between two adjacent partition beams 22 can be adjusted.
[0037] There are multiple adjusting beams 23, which can be, but not limited to, two, three, or four. In some embodiments of the present application, there are four adjusting beams 23. At least one adjusting beam 23 is connected between any two adjacent partition beams 22. In other words, there is one adjusting beam 23 connected between any two adjacent partition beams 22, or multiple adjusting beams 23 are connected between any two adjacent partition beams 22. The adjusting beams 23 are arranged along the second direction (i.e., Figure 1 The position of the first direction (ie the Y direction shown) can be adjusted. Figure 1 The X direction shown) and the second direction (ie Figure 1 The Y direction shown in the figure is perpendicular to each other.
[0038] The plurality of frames 20 are arranged along the thickness direction of the substrate 10 (ie Figure 1 Specifically, a plane is set, the normal of which is aligned with the thickness direction of the substrate 10 (i.e., Figure 1 The plane is parallel to the thickness direction of the substrate 10 (ie the Z direction shown in FIG. Figure 1 The Z direction shown in FIG1 is perpendicular to the plane, and the orthographic projections of the plurality of frames 20 on the plane completely coincide with each other, so that the plurality of frames 20 are aligned along the thickness direction of the substrate 10 (ie Figure 1 The frame 20 and the base plate 10 are connected by welding, bolting, etc. In some embodiments of the present application, multiple frames 20 are connected to the base plate 10 by bolting.
[0039] It should be noted that, in the process of making the mold 100, the two frames 20 can be assembled first, and then the substrate 10 can be cut along its thickness direction (ie, Figure 1 The two frames 20 are stacked (in the Z direction shown), and a fiber woven mesh is laid between the two frames 20. The two frames 20 are then fixed to the base plate 10 to complete the assembly of the mold 100. Finally, a cement base can be poured into the mold 100 and placed on a vibration table to be fully vibrated so that the cement base reaches the base plate 10 and fills the entire pouring area.
[0040] Thus, by connecting the plurality of partition beams 22 between the two fixed beams 21 and along the first direction (ie Figure 1 The position of the beam 23 is adjustable along the second direction (ie, the X direction shown in FIG. Figure 1 The position of the mold 100 (in the Y direction shown) is adjustable, and the size of the mold 100 can be flexibly changed, so that the mold 100 can be suitable for the production of cement-based materials of various sizes, thereby improving the versatility of the mold 100, helping to reduce the test cost, and being able to meet the needs of producing multiple and multiple cement-based materials.
[0041] In some embodiments of the present invention, Figure 1 、 Figure 3 and Figure 4 As shown, along the first direction (ie Figure 1 Each fixing beam 21 has a first matching portion 211 at both ends, and the substrate 10 has a plurality of second matching portions, which correspond to and are assembled with the plurality of first matching portions 211 in a one-to-one manner.
[0042] Among them, along the first direction (i.e. Figure 1 In the X direction shown in the figure, each fixed beam 21 has two opposite ends, and each fixed beam 21 has a first mating portion 211 at both ends. In some embodiments of the present application, each fixed beam 21 has one first mating portion 211 at both ends. The substrate 10 has a second mating portion, and the number of second mating portions can be multiple, including but not limited to two, three, four, etc. In some embodiments of the present application, the number of second mating portions is four, and the four second mating portions correspond one-to-one with the four first mating portions 211, and the four second mating portions and the four first mating portions 211 can be mated and assembled.
[0043] As some embodiments of the present application, the two frames 20 are arranged along the thickness direction of the substrate 10 (ie Figure 1 The Z direction shown in FIG1 is stacked and arranged on the substrate 10. It can be understood that along the thickness direction of the substrate 10 (ie Figure 1 In the Z direction shown in FIG, the fixing beams 21 of the two frames 20 are arranged opposite to each other and stacked, and the first matching portions 211 of the two fixing beams 21 arranged opposite to each other are arranged opposite to each other.
[0044] By providing a first mating portion 211 at both ends of the fixed beam 21, the substrate 10 has multiple second mating portions, and the multiple second mating portions correspond one-to-one with the multiple first mating portions 211 and can be assembled together, multiple frames 20 can be stacked and installed and easy to assemble, which is beneficial to improving the assembly convenience of the mold 100.
[0045] In some embodiments of the present invention, Figure 3As shown, the fiber woven mesh cement-based manufacturing mold 100 also includes: multiple first fasteners 91, the first matching part 211 is constructed as a first mounting hole 212, and the second matching part is constructed as a second mounting hole. The first fastener 91 is passed through the corresponding first mounting hole 212 and the second mounting hole to set the fixed beam 21 on the substrate 10.
[0046] Among them, the number of first fasteners 91 can be multiple, and the number of first fasteners 91 can be but not limited to two, three, four, etc. As some embodiments of the present application, the number of first fasteners 91 is four, and the four first fasteners 91 have the same diameter and height and are distributed in a rectangular shape.
[0047] The first matching portion 211 is configured as a first mounting hole 212, and the second matching portion is configured as a second mounting hole. The first mounting hole 212 is arranged corresponding to the second mounting hole. Specifically, the substrate 10 has four second mounting holes, each frame 20 has two fixed beams 21, and each fixed beam 21 has two first mounting holes 212. That is to say, each frame 20 has four first mounting holes 212, and the four first fasteners 91, the four first mounting holes 212 of each frame 20, and the four second mounting holes of the substrate 10 correspond one to one. The first fasteners 91 can be passed through the corresponding first mounting holes 212 and second mounting holes to set the fixed beam 21 on the substrate 10.
[0048] It should be noted that the corresponding first mounting hole 212, the second mounting hole and the axial direction of the first fastener 91 are collinear, and the corresponding first mounting hole 212, the second mounting hole and the first fastener 91 have the same diameter, so that the first fastener 91 can be inserted into the corresponding first mounting hole 212, the second mounting hole. In some embodiments of the present application, the first fastener 91 can be configured as a bolt.
[0049] By configuring the first mating portion 211 as a first mounting hole 212 and the second mating portion as a second mounting hole, and allowing the first fastener 91 to pass through the corresponding first mounting hole 212 and second mounting hole, the fixed beam 21 can be stably and firmly arranged on the substrate 10, which is beneficial to improving the reliability of the mold 100.
[0050] In some embodiments of the present invention, Figure 3-Figure 5 As shown, the fiber mesh cement-based production mold 100 also includes: a plurality of second fasteners, each fixing beam 21 has a first direction (ie Figure 1 The first matching hole 213 extends in the X direction as shown in FIG. 2 , and the first matching hole 213 extends in the second direction (ie Figure 1 The Y direction shown in FIG. 2) passes through the fixed beam 21 and along the second direction (ie Figure 1The partition beam 22 has a third mounting hole 221 at both ends thereof, and the third mounting hole 221 corresponds to the adjacent first matching hole 213. The third mounting holes 221 are the same in number as the second fasteners and correspond one to one. The second fasteners are passed through the corresponding first matching holes 213 and the third mounting holes 221 to assemble the fixed beam 21 and the partition beam 22.
[0051] Among them, the number of the second fasteners can be multiple, and the number of the second fasteners can be but is not limited to two, three, four, etc. As some embodiments of the present application, the number of the second fasteners is eight.
[0052] The fixing beam 21 has a first matching hole 213. The first matching hole 213 is along the second direction (ie Figure 1 In other words, the first matching hole 213 is a through hole and extends in the second direction (ie, Figure 1 The first matching hole 213 is along the first direction (ie Figure 1 That is, the first fitting hole 213 is formed in the fixed beam 21 and can be extended along the extending direction (first direction) of the fixed beam 21.
[0053] As some embodiments of the present application, the first matching hole 213 is along the first direction (ie Figure 1 The extension length in the X direction shown in FIG. 2 is smaller than the distance between the inner wall of the two first mounting holes 212, and the extension length in the thickness direction of the substrate 10 (ie Figure 1 In the Z direction shown in FIG, the height of the first matching hole 213 is smaller than the height of the fixing beam 21 .
[0054] Along the second direction (i.e. Figure 1 The Y direction shown in the figure), the partition beam 22 has two opposite ends, and both ends of the partition beam 22 have a third mounting hole 221, and the third mounting hole 221 corresponds to the adjacent first matching hole 213, that is, the axis of the third mounting hole 221 and the axis of the adjacent first matching hole 213 are perpendicular to each other, and the third mounting holes 221 at both ends of the partition beam 22 can correspond to the first matching holes 213 of the corresponding two fixed beams 21, and the second fastener is passed through the corresponding first matching hole 213 and the third mounting hole 221 to match and assemble the fixed beam 21 and the partition beam 22.
[0055] As some embodiments of the present application, along the thickness direction of the substrate 10 (ie Figure 1 The height of the partition beam 22 is the same as the height of the fixed beam 21, and the length of the partition beam 22 is equal to the distance between the two fixed beams 21. As some embodiments of the present application, along the thickness direction of the substrate 10 (i.e. Figure 1In the Z direction shown in FIG, the diameter of the third mounting hole 221 is equal to the height of the first matching hole 213 .
[0056] The number of the third mounting holes 221 and the second fasteners are the same and correspond one to one. As some embodiments of the present application, eight second fasteners can be passed through the corresponding first matching holes 213 and respectively assembled with the eight third mounting holes 221 of the four partition beams 22 to assemble the fixed beam 21 with the partition beam 22.
[0057] As some embodiments of the present application, the second fastener can be constructed as a first bolt, and at least a portion of the third mounting hole 221 can be constructed as a threaded hole. The partition beam 22 can be placed in a suitable position on the fixed beam 21 first, and then the second fastener can be screwed so that the second fastener is threadedly engaged with the third mounting hole 221 to fix the partition beam 22 on the fixed beam 21.
[0058] This arrangement enables the position of the partition beam 22 on the fixed beam 21 to be flexibly adjusted and is easy to install and disassemble, thereby avoiding the problem of re-customizing the mold 100 due to changes in cement-based dimensions, and is conducive to reducing test costs.
[0059] In some embodiments of the present invention, Figure 5 As shown, each partition beam 22 has two Figure 1 The second matching hole 222 extending in the Y direction (shown in FIG. 1 ) is provided along the first direction (ie Figure 1 The two second matching holes 222 are spaced apart and open toward the outside, and the two ends of the adjusting beam 23 are respectively located in the second matching holes 222 of the two partition beams 22.
[0060] Each partition beam 22 has two second matching holes 222, one in the first direction (ie Figure 1 The two second matching holes 222 are spaced apart. It can be understood that along the first direction (ie Figure 1 The partition beam 22 has two opposite surfaces, and two second matching holes 222 are formed on the two opposite surfaces. The two second matching holes 222 are not connected to each other. In other words, the two second matching holes 222 are blind holes, and the two second matching holes 222 are arranged along the second direction (i.e. Figure 1 The partition beam 22 extends in the thickness direction of the substrate 10 (ie, Figure 1 The Z direction shown) and the first direction (ie Figure 1 The cross section of the plane where the X direction is located is similar to an I-shape, so that the two second matching holes 222 are spaced apart and open toward the outside.
[0061] Specifically, along the first direction (i.e. Figure 1The adjusting beam 23 has two opposite ends, and the two ends of the adjusting beam 23 can be respectively located in the second matching holes 222 of the two adjacent partition beams 22. The adjusting beam 23 can be moved along the second direction (ie Figure 1 The second mating hole 222 moves along the Y direction shown in the figure, that is, moves along the extending direction of the second mating hole 222.
[0062] By making each partition beam 22 have two Figure 1 The second matching hole 222 extending in the Y direction as shown in the figure, and the two ends of the adjusting beam 23 are respectively located in the second matching holes 222 of the two partition beams 22, so that the adjusting beam 23 can move along the second direction (i.e. Figure 1 The movement in the Y direction as shown can facilitate the flexible adjustment of the size of the mold 100 to improve the versatility of the mold 100, and is easy to install and disassemble, which is conducive to improving the convenience of use of the mold 100.
[0063] In some embodiments of the present invention, Figure 5 and Figure 6 As shown, the fiber mesh cement-based production mold 100 also includes: a plurality of third fasteners, the portion of the adjustment beam 23 located at the second matching hole 222 has a fourth mounting hole 231, along the thickness direction of the substrate 10 (ie Figure 1 The top wall and the bottom wall of the second matching hole 222 both have a Z direction along the second direction (ie Figure 1 The third mating hole 2221 extends in the Y direction as shown in the figure, the third mating hole 2221 is a through hole, the fourth mounting hole 231 corresponds to the adjacent third mating hole 2221, the third fasteners are the same in number and correspond one to one with the fourth mounting holes 231, and the third fasteners are passed through the corresponding third mating holes 2221 and the fourth mounting holes 231 to assemble the adjusting beam 23 with the partition beam 22.
[0064] Among them, the number of the third fasteners can be multiple, and the number of the third fasteners can be but is not limited to two, three, four, etc. As some embodiments of the present application, the number of the third fasteners is eight.
[0065] The adjusting beam 23 has a fourth mounting hole 231. Specifically, along the thickness direction of the substrate 10 (ie Figure 1 The fourth mounting hole 231 is formed in the portion of the adjusting beam 23 located at the second matching hole 222 .
[0066] Along the thickness direction of the substrate 10 (ie Figure 1The top wall and bottom wall of the second matching hole 222 both have a third matching hole 2221, and the third matching hole 2221 is a through hole. That is, the depth of the third matching hole 2221 formed on the top wall of the second matching hole 222 is the same as the thickness of the top wall of the second matching hole 222, and the depth of the third matching hole 2221 formed on the bottom wall of the second matching hole 222 is the same as the thickness of the bottom wall of the second matching hole 222. In addition, the third matching hole 2221 is along the second direction (i.e. Figure 1 The Y direction shown is extended.
[0067] As some embodiments of the present application, the third matching hole 2221 is along the second direction (ie Figure 1 The length of the third matching hole 2221 extending in the first direction (ie, the Y direction shown in FIG. 2 ) is less than the length of the partition beam 22. Figure 1 The width in the X direction (shown) is less than half the width of the partition beam 22.
[0068] The two ends of the adjusting beam 23 can be respectively located at the second matching holes 222 of the two adjacent partition beams 22, along the thickness direction of the substrate 10 (ie Figure 1 In the Z direction shown in the figure), the fourth mounting hole 231 can correspond to the adjacent third matching hole 2221. In other words, the axis of the fourth mounting hole 231 is coplanar with the axis of the third matching hole 2221, and the fourth mounting hole 231 can correspond to the third matching holes 2221 of the top wall and the bottom wall.
[0069] As some embodiments of the present application, the diameter of the fourth mounting hole 231 is equal to the diameter of the third matching hole 2221 along the first direction (ie Figure 1 The width of the PCB is the same as that of the PCB (in the X direction shown).
[0070] The number of third fasteners and the fourth mounting holes 231 are the same and correspond one to one. As some embodiments of the present application, eight third fasteners are passed through the corresponding third matching holes 2221 and are respectively matched and assembled with the eight fourth mounting holes 231 of the four adjustment beams 23 to match and assemble the adjustment beam 23 with the partition beam 22.
[0071] As some embodiments of the present application, the third fastener can be constructed as a second bolt, and at least a portion of the fourth mounting hole 231 can be constructed as a threaded hole. The adjustment beam 23 can be placed in a suitable position on the partition beam 22 first, and then the third fastener can be screwed so that the third fastener is threadedly engaged with the fourth mounting hole 231 to fix the adjustment beam 23 on the partition beam 22.
[0072] This arrangement enables the adjustment beam 23 to be flexibly adjusted on the partition beam 22, and facilitates the flexible adjustment of the size of the mold 100 to improve the versatility of the mold 100, and is easy to install and disassemble, which is conducive to improving the ease of use of the mold 100.
[0073] In some embodiments of the present invention, Figure 6 As shown, the adjustment beam 23 includes two embedded blocks 232 and a beam body 233. The beam body 233 includes at least one exposed block 234. The two embedded blocks 232 are respectively arranged at both ends of the beam body 233. At least parts of the two embedded blocks 232 are respectively located in the second matching holes 222 of the two partition beams 22.
[0074] The beam body 233 includes at least one exposed block 234, that is, the beam body 233 includes one exposed block 234, or the beam body 233 includes multiple exposed blocks 234, along the first direction (ie Figure 1 The beam body 233 has two opposite ends, and the two embedded blocks 232 are respectively provided at the two ends of the beam body 233. As some embodiments of the present application, parts of the two embedded blocks 232 are respectively located in the second matching holes 222 of the two partition beams 22. As some embodiments of the present application, the entirety of the two embedded blocks 232 are respectively located in the second matching holes 222 of the two partition beams 22.
[0075] As some embodiments of the present application, along the thickness direction of the substrate 10 (ie Figure 1 In the Z direction shown in FIG, the height of the exposed block 234 is the same as the height of the partition beam 22 .
[0076] This arrangement can adjust the length of the beam body 233 according to needs, and further adjust the length of the adjustment beam 23 , which can facilitate flexible adjustment of the size of the manufacturing mold 100 to improve the versatility of the manufacturing mold 100 .
[0077] In some embodiments of the present invention, the embedded block 232 and the exposed block 234 are snap-fitted or connected by mortise and tenon. In some embodiments of the present application, the embedded block 232 and the exposed block 234 are connected by snap-fitting. In some embodiments of the present application, the embedded block 232 and the exposed block 234 are connected by mortise and tenon. Such a setting can make the embedded block 232 and the exposed block 234 firmly and stably connected, and easy to assemble, which is beneficial to improving the reliability of the mold 100.
[0078] In some embodiments of the present invention, the beam body 233 includes a plurality of exposed blocks 234 , and the plurality of exposed blocks 234 are sequentially snap-connected or sequentially connected by mortise and tenon joints.
[0079] Among them, the number of exposed blocks 234 can be but not limited to two, three, four, etc. As some embodiments of the present application, the number of exposed blocks 234 is three, and the three exposed blocks 234 are connected in sequence by snap-fitting. As some embodiments of the present application, the number of exposed blocks 234 is three, and the three exposed blocks 234 are connected in sequence by mortise and tenon connection.
[0080] By making the beam body 233 include multiple exposed blocks 234, and making the multiple exposed blocks 234 connected in sequence by snap-fitting or mortise and tenon joints, the number of exposed blocks 234 can be adjusted according to changes in the sample size, thereby adjusting the length of the adjustment beam 23. In addition, it can be easy to install and disassemble, which is beneficial to improving the reliability of the mold 100.
[0081] In some embodiments of the present invention, the fiber woven mesh cement-based manufacturing mold 100 also includes: a patch, which is attached to the hole on the side of the frame 20. This setting can form a closed cement-based pouring area, which can reduce the probability of the cement-based entering the hole on the side of the frame 20 during the pouring process, and is conducive to improving the reliability of the manufacturing mold 100.
[0082] As some embodiments of the present application, the test requires the preparation of fiber woven mesh cement-based specimens for tensile testing, pull-out testing, and bending testing. The tensile test specimen size is 200 mm × 60 mm × 10 mm, single-layer mesh; the pull-out test specimen size is 160 mm × 40 mm × 10 mm, buried depth is 20 mm, single-layer mesh; the bending test specimen size is 400 mm × 100 mm × 10 mm, single-layer mesh. According to the above dimensions, the substrate 10, fixed beam 21, partition beam 22, and adjustment beam 23 of the fiber woven mesh cement-based production mold are designed;
[0083] The length, width, and height of the substrate 10 are 500 mm, 500 mm, and 20 mm, respectively. Four identical first fasteners 91 are provided at the four corners of the substrate 10. The center distance between the first fasteners 91 on the same side is 460 mm, and the outer diameter and height are 10 mm and 20 mm, respectively.
[0084] The length, width and height of the two fixed beams 21 are 480 mm, 20 mm and 5 mm respectively; the center distance between the two first mounting holes 212 of the fixed beam 21 is 460 mm and the diameter is 10 mm; the length and depth of the first matching hole 213 of the fixed beam 21 are 420 mm and 3 mm respectively;
[0085] The cross section of the partition beam 22 is in the shape of an I. The length, width, and height of the partition beam 22 are 450 mm, 25 mm, and 5 mm, respectively. The web thickness is 5 mm, and the flange thickness is 1 mm. The diameter of the third mounting hole 221 of the partition beam 22 is 3 mm. The length and width of the third matching hole of the partition beam 2221 are 420 mm and 5 mm, respectively.
[0086] The length, width and height of the embedded block 232 of the adjustment beam 23 are 20 mm, 20 mm and 3 mm respectively; the width and height of the exposed block 234 are 20 mm and 5 mm respectively; and the diameter of the fourth mounting hole 231 is 5 mm.
[0087] As some embodiments of the present application, in the process of using the mold 100, the partition beam 22 can be firstly moved along the first direction (ie Figure 1 The adjustment beam 23 is moved to the designated position in the X direction as shown in FIG. 2 and fixed to the fixed beam 21 by the second fastener. Then, the adjustment beam 23 is moved in the second direction (ie Figure 1 The mold 100 is moved to a designated position in the Y direction as shown in the figure and fixed to the partition beam 22 by a third fastener. In this way, the mold 100 can be adjusted to the required size. Then, patches are attached to the holes on the side of the frame 20. The above process can be repeated to prepare two identical frames 20. Figure 1 The two frames 20 are stacked in the Z direction as shown, and a fiber woven mesh is laid between the two frames 20. The two frames 20 are then fixed to the base plate 10 by the first fasteners 91 to complete the assembly of the mold 100. Finally, a cement base can be poured into the mold 100 and placed on a vibration table to be fully vibrated so that the cement base reaches the base plate 10 and fills the entire pouring area.
[0088] In the description of the present invention, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise", "axial", "radial", "circumferential" and the like to indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be understood as a limitation to the present invention.
[0089] In the description of the present invention, "first feature" and "second feature" may include one or more such features.
[0090] In the description of the present invention, “plurality” means two or more.
[0091] In the description of the present invention, a first feature being “above” or “below” a second feature may include that the first and second features are in direct contact, or may include that the first and second features are not in direct contact but are in contact via another feature therebetween.
[0092] In the description of the present invention, a first feature “above”, “above” and “above” a second feature includes the first feature being directly above and obliquely above the second feature, or simply means that the first feature is horizontally higher than the second feature.
[0093] Throughout this specification, reference to terms such as "one embodiment," "some embodiments," "illustrative embodiments," "examples," "specific examples," or "some examples" means that the specific features, structures, materials, or characteristics described in conjunction with that embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the illustrative use of the above terms does not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.
[0094] Although the embodiments of the present invention have been shown and described, those skilled in the art will appreciate that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and purpose of the present invention, and that the scope of the present invention is defined by the claims and their equivalents.
Claims
1. A fiber mesh cement-based production mold, characterized in that: include: substrate; A plurality of frames, the frames comprising: two fixed beams, a plurality of partition beams, and a plurality of adjustment beams, the two fixed beams each extending along a first direction, the two fixed beams being opposite and spaced apart along a second direction, the plurality of partition beams each connected between the two fixed beams and each being adjustable in position along the first direction, at least one adjustment beam being connected between any two adjacent partition beams, and each being adjustable in position along the second direction, the first direction being perpendicular to the second direction; The plurality of frames are stacked opposite to each other along the thickness direction of the substrate and are arranged on the substrate.
2. The fiber woven mesh cement-based production mold according to claim 1, characterized in that: Along the first direction, both ends of each of the fixing beams have a first matching portion, and the base plate has a plurality of second matching portions, which correspond to and are matched with the plurality of first matching portions one by one.
3. The fiber mesh cement-based production mold according to claim 2, characterized in that: Also includes: A plurality of first fasteners, wherein the first matching portion is configured as a first mounting hole, and the second matching portion is configured as a second mounting hole, and the first fasteners are passed through the corresponding first mounting holes and the second mounting holes to set the fixing beam on the substrate.
4. The fiber woven mesh cement-based production mold according to claim 1, characterized in that: Also includes: Multiple second fasteners, each of the fixed beams has a first matching hole extending along the first direction, the first matching hole passes through the fixed beam along the second direction, and along the second direction, both ends of the partition beam have third mounting holes, the third mounting holes correspond to the adjacent first matching holes, the third mounting holes are the same in number and correspond one-to-one with the second fasteners, the second fasteners are passed through the corresponding first matching holes and the third mounting holes to assemble the fixed beam and the partition beam.
5. The fiber woven mesh cement-based production mold according to claim 1, characterized in that: Each of the partition beams has two second matching holes extending along the second direction. Along the first direction, the two second matching holes are spaced apart and open toward the outside respectively. The two ends of the adjustment beam are respectively located in the second matching holes of the two partition beams.
6. The cement-based mold for making fiber woven mesh according to claim 5, characterized in that: Also includes: Multiple third fasteners, the part of the adjustment beam located in the second matching hole has a fourth mounting hole, along the thickness direction of the substrate, the top wall and the bottom wall of the second matching hole both have a third matching hole extending along the second direction, the third matching hole is a through hole, the fourth mounting hole corresponds to the adjacent third matching hole, the third fasteners are the same in number and correspond one to one with the fourth mounting holes, the third fasteners are passed through the corresponding third matching holes and the fourth mounting holes to assemble the adjustment beam with the partition beam.
7. The cement-based mold for making fiber woven mesh according to claim 5, characterized in that: The adjusting beam includes two embedded blocks and a beam body, the beam body includes at least one exposed block, the two embedded blocks are respectively arranged at both ends of the beam body, and at least parts of the two embedded blocks are respectively located in the second matching holes of the two partition beams.
8. The cement-based mold for making fiber woven mesh according to claim 7, characterized in that: The embedded block is connected to the exposed block by snapping or mortise and tenon joints.
9. The fiber mesh cement-based production mold according to claim 7, characterized in that: The beam body includes a plurality of exposed blocks, and the plurality of exposed blocks are sequentially snap-connected or sequentially connected by mortise and tenon joints.
10. The cement-based mold for making a fiber woven mesh according to any one of claims 1 to 9, characterized in that: Also includes: A patch is attached to the hole on the side of the frame.