Shaftless screw blade for conveying and mixing and shaftless screw conveying and mixing device equipped with same
The shaftless screw blade with mixing protrusions addresses the lack of mixing in existing technologies, achieving efficient mixing of conveyed materials during transport, with up to 90-100% mixing efficiency.
Patent Information
- Application Number
- JP2021171418
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-10-20
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2041-10-20
AI Technical Summary
Existing shaftless screw technologies are limited to either solid-liquid separation or conveyance without effective mixing of multiple components during transport.
A shaftless screw blade with mixing protrusions on both main surfaces, arranged in a spiral pattern, and a shaftless screw conveying and mixing device that incorporates this blade, allowing for the mixing of conveyed materials while transporting them.
Achieves high mixing efficiency of conveyed materials, with up to 90-100% mixing achieved by the end of the transport process, enhancing the mixing performance compared to conventional designs.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a shaftless screw conveying and mixing blade that mixes (agitates) conveyed materials while conveying them, and a shaftless screw conveying and mixing device equipped with the same. [Background technology]
[0002] The solid content separation device of Patent Document 1 uses a shaftless helical screw as a solid-liquid separation means. However, this is simply a technique in which a suspension is fed into the shaftless helical screw, and the solid and liquid components are separated while being stirred, and is not a technology in which the material to be transported (including multiple components) is mixed while being transported. The dewatered sludge transport system in Patent Document 2 describes a kneading device equipped with a shaftless screw as an example of a kneading device. However, this is merely an example and does not disclose a specific structure, and the kneading device is not a technology for mixing transported materials (including multiple components) while transporting them. Patent Document 3 discloses a shaftless screw conveying device that conveys an object (peeled vegetable skins). However, the purpose of the shaftless screw conveying device is conveyance, and the structural design is not intended to mix the object (including multiple components) while conveying it. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2013-52334 [Patent Document 2] Japanese Patent Application Laid-Open No. 2017-148767 [Patent Document 3] Japanese Patent Application Publication No. 2019-177989 Summary of the Invention [Problem to be solved by the invention]
[0004] An object of the present invention is to provide a shaftless screw blade for conveying and mixing that can mix conveyed materials (including a plurality of components) while conveying them, and a shaftless screw conveying and mixing device equipped with the same. [Means for solving the problem]
[0005] The non-axial screw blade (1) for conveying and mixing of the present invention is A blade body (10), a flange (20) fixed to one end (base) of the blade body (10) (for connection to the drive side); At least one mixing protrusion is provided per pitch (p) of the blade body (10) on the first main surface (10a) and / or the second main surface (10b) of the blade body (10); Equipped with.
[0006] The "first main surface" refers to the surface facing the main surface of the flange 20 when the device is stationary. The mixing protrusions erected on the first main surface are called first mixing protrusions (there is one or more per pitch). The "second main surface" refers to the surface opposite to the first main surface. The mixing protrusions erected on the second main surface are called second mixing protrusions (there is one or more per pitch).
[0007] When a plurality of first mixing protrusions per pitch of the blade body (10) are provided on the first main surface (10a) upright, they may be arranged at equal or substantially equal intervals in the spiral shape of the blade body (10). When a plurality of second mixing protrusions per pitch of the blade body (10) are provided on the second main surface (10b), they may be arranged at equal or substantially equal intervals in the spiral shape of the blade body (10). If there are three mixing protrusions, they may be arranged at intervals of 120° on the first main surface (second main surface) of the spiral shape with the blade rotation axis (a0) as the center. If there are four mixing protrusions, they may be arranged at intervals of 90° on the first main surface (second main surface) of the spiral shape with the blade rotation axis (a0) as the center. If there are six mixing protrusions, they may be arranged at intervals of 60° on the first main surface (second main surface) of the spiral shape with the blade rotation axis (a0) as the center.
[0008] The position of the first mixing protrusion provided on the first main surface (10a) and the position of the second mixing protrusion provided on the second main surface (10b) may be the same or substantially the same across the blade body (thickness t) (see FIG. 1D(a)). The position of the first mixing protrusion provided on the first main surface (10a) and the position of the mixing protrusion provided on the second main surface (10b) may be different with the blade body (thickness t) sandwiched therebetween. When they are different positions, the second mixing protrusion may be provided on the second main surface (10b) between adjacent first mixing protrusions provided on the first main surface (10a) (for example, at a slightly offset position (see FIG. 1D(b)), an intermediate position, etc.).
[0009] The mixing protrusion may be erected in the perpendicular direction to the first main surface (10a) or the second main surface (10b), or may be erected at a predetermined angle α (for example, ±1 degree to ±45 degrees) relative to the perpendicular direction. It may be tilted at an angle α (1 to 45 degrees) in the rotational direction from a virtual vertical line (F2) extending perpendicularly from the first main surface (10a) (see another example in FIG. 1C).
[0010] The shape of the mixing protrusion may be, for example, a triangular plate, a rectangular plate, a polygonal plate, a rod (cylinder, square pillar), or a branched shape. The plurality of first mixing protrusions provided on the first main surface (10a) and the plurality of second mixing protrusions provided on the second main surface (10b) may all be standardized to the same shape and size, or may all be different, or may be partially standardized.
[0011] When the mixing protrusion is in the shape of a plate, the plate-shaped main surface may be erected on the first main surface (10a) or the second main surface (10b) parallel to the blade radial direction (a1), or may be erected at a predetermined angle (for example, ±1 degree to ±45 degrees) relative to the blade radial direction (a1). When the screw blade is viewed parallel to the blade rotation shaft center (a0) (see FIG. 1B), for example, the inclination at a predetermined angle may be an angle β (1 to 45 degrees) in the rotation direction, starting from an imaginary line (F0) in the blade radial direction (a1) extending from the blade rotation shaft center (a0) and an inner blade point (a2) on the imaginary line (F0). The mixing protrusion may have a length equal to or shorter than the blade width (w) parallel to the blade radial direction (a1).
[0012] The "main surface when the mixing protrusion is plate-shaped" may be a flat surface or a curved surface. The main surface has a larger surface area than the side surfaces. The "mixing protrusions" come into contact with the transported material as the blades rotate. The mixing action occurs due to the difference between the action of the mixing protrusions sending the transported material toward the central space of the blades (the space without an axis) and the action of the transported material hitting the main surface of the blade without hitting the mixing protrusions and sending it in the transport direction.
[0013] The total length (L) of the shaftless screw blade is, for example, 2 m to 20 m. The outer diameter (r1) of the shaftless screw blade is, for example, 80 mm to 600 mm. The pitch (p) of the shaftless screw blade is, for example, 27 mm to 600 mm. The inner diameter (r2) of the shaftless screw blade is, for example, 30 mm to 500 mm. The thickness (t) of the shaftless screw flight is, for example, 10 mm to 35 mm. The blade width (w) of the shaftless screw blade is, for example, 30 mm to 80 mm. (See Figure 1A for each.)
[0014] The sum of the inner diameter (r2) and the blade width (w) is the outer diameter (r1). Alternatively, (r2 + w ≒ r1), where r1 is smaller when w is inclined and not extending perpendicularly from the radial direction. In another embodiment, the outer diameter (r1) is the sum of the inner diameter (r2) and twice the blade width (w). Alternatively, (r2 + w × 2 ≒ r1), where r1 is smaller when w is inclined and not extending perpendicularly from the radial direction. Two blades may be configured as one blade, with the outer width surface of the second blade having a smaller outer diameter fixed to the inner width surface of the first blade having a larger outer diameter.
[0015] The relationship between the outer diameter (r1) of the shaftless screw blade and the pitch (p) of the shaftless screw blade is 1 / 3 to 2 / 3 of the pitch relative to the outer diameter (r1), and more preferably 1 / 2 to 2 / 3 of the pitch relative to the outer diameter (r1).
[0016] The shaftless screw blade may have a rectangular cross section, for example. The larger the outer diameter (r1) of the screw blade, the larger the blade width (w) and blade thickness (t) are set. The total length (L), screw blade outer diameter (r1), pitch (p), blade inner diameter (r2), and blade width (w) are set according to the physical properties of the conveyed material and / or the conveyance amount per unit time (screw rotation speed) and the degree of mixing.
[0017] (Material for shaftless screw blades) Examples of steel materials that can be used as raw materials for shaftless screw blades include general structural rolled steel materials (SS330, SS400, SS490, SS540, etc.), cold-rolled steel plates (SPCC, SPCD, SPCE, SPCF, SPCG, etc.), carbon steel materials (S25C, S30C, S35C, S45C, S50C, S55C, etc.), hot- or cold-rolled stainless steel plates (SUS304, SUS316, SUS430, SUS410, etc.), wear-resistant steel plates (HARDOX (registered trademark) from Swedish Steel Corporation, EVERHARD (registered trademark) from JFE Steel Corporation, etc.), high-tensile steel plates (SM570, SMA570W, etc.), and TMCP-type high-tensile steel plates (SM570TMC, SMA570WTMC, etc.).
[0018] The steel material used as the raw material for the shaftless screw blade is preferably a steel material with higher strength (higher tensile strength) than general structural rolled steel (SS400). This is preferable from the standpoint of wear resistance and durability. In the case of SS400, the overall length of the screw blade will shrink by about 10% to 15% compared to its initial value after long-term use (for example, 6 months, 7 hours / day). However, stainless steel plates with higher strength (higher tensile strength) than SS400, such as wear-resistant steel plates (HARDOX (registered trademark) from Swedish Steel Corporation and EVERHARD (registered trademark) from JFE Steel Corporation), show an extremely small degree of shrinkage.
[0019] Another non-axial screw conveying mixer (100) of the present invention is The above-mentioned conveying and mixing non-axial screw blade (1), a casing (110) for accommodating the shaftless screw blade (1); a trough (120) disposed on the inner surface of the casing; a driving means (130) connected to the flange of the shaftless screw blade; Equipped with.
[0020] The casing (110) may have a circular, regular n-sided, or U-shaped cross section. The casing (110) may be made of, for example, reinforced plastic or metal, and is preferably made of, for example, stainless steel. The casing (110) may be configured to have a first part having a U-shaped cross section along the longitudinal direction and a second part that covers the upper open part of the U. When the casing (110) is cylindrical, it may be configured to have a cylindrical lower part and a cylindrical upper part.
[0021] The trough (120) may be, for example, U-shaped. The trough may be made of, for example, reinforced plastic or metal, and is preferably made of, for example, stainless steel.
[0022] The driving means (130) is composed of a motor, a speed change gear, a connecting means, a control device, a power supply, etc. The driving means preferably rotates the shaftless screw blade at a rotation speed of, for example, 3 rpm to 15 rpm.
[0023] The material to be transported has a plurality of components, and examples thereof include household waste, industrial waste, sludge, etc. The material to be transported may contain water.
[0024] The materials are mixed while being transported, and the mixing rate increases as they are sent to the tip of the blade. The mixing ratio is controlled by, for example, the total length, outer diameter, inner diameter, pitch, conveyance amount per unit time, rotation speed, and mixing projection of the shaftless screw. For example, with a total length of 7 m to 12 m, an outer diameter of 400 mm to 500 mm, an inner diameter of 150 to 420 mm, a pitch of 400 to 500 mm, a conveying amount of 2 t / hour to 3 t / hour, a rotation speed of 5 to 12 rpm, 4 to 6 rectangular plate-shaped mixing protrusions on the first main surface and 4 to 6 on the second main surface, it is possible to achieve 50 to 70% mixing when conveyed to 60% of the total length, and 90 to 100% mixing when conveyed to 80 to 90% of the total length. [Brief explanation of the drawings]
[0025] [Figure 1A] FIG. 1 is a diagram showing an outline of a shaftless screw blade. [Figure 1B] 10 is a diagram illustrating the mounting position and inclination angle β of the mixing protrusion portion. FIG. [Figure 1C] FIG. 10 is a diagram illustrating the inclination angle α of the mixing protrusion portion. [Figure 1D] 10A and 10B are diagrams showing examples of the arrangement of mixing protrusions attached to the first and second main surfaces. [Figure 1E] 10A and 10B are diagrams showing an example of a planar shape of a mixing protrusion portion. [Figure 2] FIG. 1 is a diagram showing an outline of a shaftless screw conveying mixer. DETAILED DESCRIPTION OF THE INVENTION
[0026] (Embodiment 1) 1A shows a shaftless screw blade 1 for conveying and mixing. The shaftless screw blade 1 comprises a blade body 10, a flange 20 fixed to the blade base of the blade body 10, four first mixing protrusions 41, 42 provided on the first main surface 10a of the blade body 10, and four second mixing protrusions 53, 54 provided on the second main surface 10b. One part of a reinforcing plate 30 is welded to the first main surface 10a at a position 180 degrees spirally rotated from the blade base, and the other part is welded and fixed to the flange 20.
[0027] Four first mixing protrusions 41, 42 are provided per pitch p of the impeller body 10, but only two are shown in FIG. 1A. Four second mixing protrusions 53, 54 are provided per pitch p of the impeller body 10, but only two are shown in FIG. 1A. In this embodiment, the screw blade in FIG. 1A is a double blade in which two screw blades with different outer and inner diameters are connected radially. The inner diameter of the radially outer screw blade matches (or nearly matches) the outer diameter of the radially inner screw blade, and they are joined together by welding. The first and second mixing protrusions are angle plates with L-shaped cross sections, and are fixed to the main surfaces of the blades by welding.
[0028] 1A, four first mixing protrusions per pitch of the blade body 10 are erected on the first main surface 10a, and are arranged at equal or substantially equal intervals in the spiral shape of the blade body 10. Furthermore, four second mixing protrusions per pitch of the blade body 10 are erected on the second main surface 10b, and are arranged at equal or substantially equal intervals in the spiral shape of the blade body 10. In other words, since there are four mixing protrusions, they are arranged at 90° intervals on the spiral-shaped first main surface 10a or second main surface 10b around the blade rotation axis a0.
[0029] The mounting position and inclination angle β of the mixing protrusions will be explained using FIG. 1B. When the shape of the mixing protrusions 41 is plate-shaped, the plate-shaped main surface is erected on the first main surface 10a parallel to the blade radial direction a1. In another embodiment, the mixing protrusions 41 may be erected at a predetermined angle (for example, ±1 to ±45 degrees) relative to the blade radial direction a1. In FIG. 1B, when the screw blade is viewed parallel to the blade rotation axis center a0, the predetermined angle of inclination is determined by an imaginary line F0 extending from the blade rotation axis center a0 in the blade radial direction a1, and the inclination angle β (in the range of 1 to 45 degrees) of the mixing protrusions 41 (shown in dashed lines) in the rotation direction starting from a blade inner point a2 on the imaginary line F0.
[0030] The inclination angle α of the mixing protrusion 41 will be described using Figure 1C. The first plate 411 of the mixing protrusion 41, which has an L-shaped cross section, is fixed to the first main surface 10a by welding, and the second plate 412 stands upright in the perpendicular direction to the first main surface 10a. In another embodiment, the second plate 412 may stand upright and inclined at a predetermined angle α (for example, ±1 degree to ±45 degrees) with respect to the perpendicular direction. The second plate 412 may stand upright and inclined by the angle α (1 degree to 45 degrees) in the rotational direction from a virtual vertical line F2 extending perpendicularly from the first main surface 10a.
[0031] Figure 1D shows an example of the arrangement of the mixing protrusions attached to the first and second main surfaces. In Figure 1D(a), the position of the first mixing protrusion 41 erected on the first main surface 10a and the position of the second mixing protrusion 51 erected on the second main surface 10b are the same, with the blade body (thickness t) in between. In Figure 1D(b), the position of the first mixing protrusion 41 erected on the first main surface 10a and the position of the second mixing protrusion 51 erected on the second main surface 10b are slightly offset, with the blade body (thickness t) in between.
[0032] 1E shows an example of the planar shape of the mixing protrusion. (a) is a rectangular shape, (b) is a cylindrical (rod-like) shape, (c) is a comb-like shape (branched at the tip), (d) is a trapezoidal shape, and (e) is a triangular shape, but other shapes are also possible. Mixing protrusions of one or more planar shapes may be used, or a mixing protrusion of one type may be used.
[0033] 2 shows a shaftless screw conveying mixer 100. The shaftless screw conveying mixer 100 includes a shaftless screw blade 1 for conveying and mixing, a casing 110 that houses the shaftless screw blade 1 therein, a U-shaped trough 120 that is disposed on the inner surface of the casing 110, and a drive means 130 that is connected to a flange 20 that is fixed to the base of the blade body 10 of the shaftless screw blade 1.
[0034] The driving means 130 is composed of a motor, a speed change gear, a connecting means, a control device, a power supply, etc. The driving means 130 rotates the shaftless screw blade at a rotation speed of, for example, 5 rpm to 12 rpm. The driving shaft 131 passes through the casing 110 with a seal unit (not shown) installed therebetween to improve the airtightness between the driving shaft 131 and the casing. The casing 110 includes an input portion (not shown) for the materials to be conveyed and a discharge portion for discharging the mixed materials to be conveyed.
[0035] (Example) The total length (L) was 9 m, the outer diameter (r1) was 477 mm, the inner diameter (r2) was 177 mm, the pitch (p) was 477 mm, the conveying amount was 2.5 t / hour, the rotation speed was 7 rpm, and there were four L-shaped cross-section protruding mixing sections on the first main surface and four on the second main surface. The second plate section 412 was a square measuring 70 mm in length and 70 mm in width. The inclination angle α was 0 degrees (i.e., vertically erected), and the inclination angle β was 45 degrees. Two types of sand with different average particle sizes were prepared as transported materials, and one of the sand was white in color. The transported materials were mixed. Visual inspection confirmed that the mixture was 60% to 70% when the sand was transported up to 60% of its total length, and 90% to 100% when the sand was transported up to 80% to 90% of its total length.
[0036] (Comparative Example) The same as in Example 1 was used except that the L-shaped cross section mixing protrusions were not provided on the first and second main surfaces. As a result, it was visually confirmed that the mixture was approximately 40% to 50% when the material was transported to 60% of its total length, and 50% to 60% when the material was transported to 80% to 90% of its total length. Since the materials being transported were sands that mix easily with each other, about half of the materials were mixed in the comparative example, but the mixing was poor at the front and rear ends of the transport, and there was a noticeable tendency for only one type of sand to be transported and discharged without being mixed. [Explanation of symbols]
[0037] 1. Shaftless screw blade 10 Blade body 20 flange 30 Reinforcement plate 41, 42 First mixing protrusion 51, 52 Second mixing protrusion 100 Shaftless screw conveying and mixing device 110 Casing 120 Trough 130 Drive unit
Claims
1. A non-axial screw blade for conveying and mixing, A blade body; a flange fixed to one end of the blade base body; At least one mixing protrusion is erected per pitch of the blade base body on the first main surface and / or the second main surface of the blade base body, and does not extend outside the blade outer diameter; A shaftless screw blade.
2. 2. The shaftless screw blade according to claim 1, wherein the mixing protrusion is erected in a direction perpendicular to the first main surface or the second main surface, or inclined at a predetermined angle relative to the perpendicular direction.
3. 3. The shaftless screw blade according to claim 1, wherein the mixing protrusions are erected on the first main surface or the second main surface parallel to the blade radial direction, or inclined at a predetermined angle relative to the blade radial direction.
4. The shaftless screw blade for conveying and mixing according to any one of claims 1 to 3; a casing that houses the shaftless screw blade therein; a trough disposed on the inner surface of the casing; a driving means coupled to the flange of the shaftless screw blade; A shaftless screw conveying and mixing device comprising:
Citation Information
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Large-inclination-angle long-distance highly-efficient shaftless helical conveyor
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