Blown film molding device, sizing ring of blown film molding device, and movable member of sizing ring of blown film molding device
The sizing ring with a hole diameter changing mechanism and separation limiting portions addresses the challenge of adjusting bubble diameter without replacing the sizing ring, ensuring uniform refrigerant film formation and preventing molding defects.
Patent Information
- Application Number
- JP2022057508
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-03-30
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2042-03-30
AI Technical Summary
Changing the outer diameter of a bubble in existing inflation molding devices requires replacing the sizing ring, which is cumbersome and leads to resin loss and production halt, and gaps between movable members can cause refrigerant leakage, resulting in molding defects.
A sizing ring with a hole diameter changing mechanism featuring movable members and separation limiting portions to prevent gaps between sliding surfaces, allowing for adjustable hole diameters without replacing the sizing ring.
Prevents gaps and refrigerant leakage, ensuring uniform refrigerant film formation and reducing molding defects by limiting separation between movable members.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to an inflation molding apparatus, a sizing ring of the inflation molding apparatus, and a movable member of the sizing ring of the inflation molding apparatus. [Background technology]
[0002] An inflation molding device extrudes molten resin from a die into a tube shape and blows air into the inside of the tube to inflate it and form a thin film (see, for example, Patent Document 1). There are two types of inflation molding devices: an upward type that extrudes molten resin upward, and a downward type that extrudes molten resin downward.
[0003] The inflation molding device is equipped with a sizing ring. The sizing ring determines the outer diameter of the bubble, which is a tubular resin film. The sizing ring forms an insertion hole through which the bubble passes. A film of refrigerant, such as cooling water, is formed between the wall of the insertion hole and the bubble. The outer diameter of the bubble is smaller than the diameter of the insertion hole by the thickness of the refrigerant film. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2005-231266 Summary of the Invention [Problem to be solved by the invention]
[0005] Previously, when changing the outer diameter of a bubble, it was necessary to change the diameter of the insertion hole and replace the sizing ring. Replacing the sizing ring was a cumbersome task and a heavy workload. Replacement took time, during which resin film production was halted. Furthermore, replacing the sizing ring required stopping molding, which resulted in resin loss when molding was restarted.
[0006] Therefore, a sizing ring equipped with a hole diameter changing mechanism for changing the hole diameter of the insertion hole is conceivable. The hole diameter changing mechanism has a plurality of movable members that define the insertion hole and are arranged continuously in the circumferential direction of the insertion hole. The movable members are movable in both directions, to decrease the hole diameter and to increase the hole diameter.
[0007] However, when moving multiple movable members in the direction that changes the hole diameter, gaps may occur between the sliding surfaces of adjacent movable members. If a refrigerant such as cooling water leaks through the gaps, the refrigerant film will not be uniformly formed between the wall surface of the insertion hole and the bubble, resulting in molding defects.
[0008] One aspect of the present invention provides a technique for suppressing molding defects. [Means for solving the problem]
[0009] A blown film molding apparatus according to one aspect of the present invention includes a sizing ring that forms a through-hole through which a bubble passes. The sizing ring includes a hole diameter changing mechanism that changes the hole diameter of the through-hole. The hole diameter changing mechanism includes a plurality of movable members that define the through-hole and are arranged continuously in the circumferential direction of the through-hole. The movable members include separation limiting portions that limit the separation between adjacent movable members. The separation limiting portion limits the separation between the sliding surfaces of the adjacent movable members. [Effects of the Invention]
[0010] According to one aspect of the present invention, by limiting the separation between the sliding surfaces of adjacent movable members using the separation limiting portion, it is possible to prevent gaps from being formed between the sliding surfaces and suppress molding defects. [Brief explanation of the drawings]
[0011] [Figure 1] FIG. 1 is a diagram showing an inflation molding apparatus according to one embodiment. [Figure 2] FIG. 2 is a cross-sectional view showing an example of the second cooling device of FIG. [Figure 3] 3A and 3B are perspective views showing a sizing ring according to one embodiment, in which FIG. 3A is a perspective view showing a state in which the hole diameter is maximum, and FIG. 3B is a perspective view showing a state in which the hole diameter is minimum. [Figure 4] 4A and 4B are cross-sectional views showing a sizing ring according to one embodiment, in which FIG. 4A is a cross-sectional view showing a state in which the hole diameter is maximum, and FIG. 4B is a perspective view showing a state in which the hole diameter is minimum. [Figure 5] 5A and 5B are diagrams showing an example of a movable member, in which FIG. 5A is a perspective view and FIG. 5B is a cross-sectional view. [Figure 6] 6A and 6B are diagrams showing another example of a movable member, in which FIG. 6A is a perspective view, FIG. 6B is a perspective view seen from a different direction from FIG. 6A, and FIG. 6C is a view seen from the radially outward direction of the sizing ring. DETAILED DESCRIPTION OF THE INVENTION
[0012] Hereinafter, embodiments of the present invention will be described with reference to the drawings. In each drawing, the same or corresponding components are denoted by the same reference numerals, and their description may be omitted. In this specification, the X-axis, Y-axis, and Z-axis directions are perpendicular to each other. The X-axis and Y-axis directions represent the horizontal direction, and the Z-axis direction represents the vertical direction.
[0013] An inflation molding apparatus 1 according to one embodiment will be described with reference to Figure 1. The inflation molding apparatus 1 includes a die 10, a first cooling device 20, a second cooling device 30, a pair of stabilizer plates 40, and a pinch roll 50. The inflation molding apparatus 1 is a downward-type apparatus in which resin is extruded downward from the die 10. However, the present invention is also applicable to an upward-type inflation molding apparatus in which resin is extruded upward from the die 10.
[0014] Molten resin is supplied to the die 10 from an extruder (not shown). The supplied molten resin is extruded from a ring-shaped resin discharge port 11 formed in the die 10. Air is appropriately ejected into the extruded molten resin from air ejection ports 12 formed inside the resin discharge port 11. This forms a bubble B, which is a tubular resin film.
[0015] The first cooling device 20 is disposed below the die 10. The first cooling device 20 sprays cooling gas onto the bubbles B to cool them. The second cooling device 30 is disposed below the first cooling device 20. The second cooling device 30 cools the bubbles B by bringing cooling water into contact with the bubbles B. Details of the second cooling device 30 will be described later. The bubbles B are cooled by the first cooling device 20 and the second cooling device 30 and solidify.
[0016] A pair of stabilizer plates 40 are disposed below the second cooling device 30 and guide the bubble B between a pair of pinch rolls 50. The pair of pinch rolls 50 are disposed below the stabilizer plates 40. The pair of pinch rolls 50 pull down the guided bubble B and fold it flat. A winder 60 winds up the folded resin film to form a film roll R.
[0017] An example of the second cooling device 30 will be described with reference to FIG. 2. The second cooling device 30 includes a water tank 31, a sizing ring 32, a first cylindrical member 33, a second cylindrical member 34, and a rotation mechanism 35. The water tank 31 stores cooling water to be supplied to the sizing ring 32. The sizing ring 32 determines the outer diameter of the bubbles B. The sizing ring 32 has an insertion hole 32a through which the bubbles B pass. The first cylindrical member 33 is placed on the bottom 31a of the water tank 31 and supports the sizing ring 32 at a predetermined height from the bottom 31a of the water tank 31. The second cylindrical member 34 extends downward from the bottom 31a of the water tank 31 and surrounds the bubbles B to prevent the cooling water from scattering. The rotation mechanism 35 rotates the sizing ring 32.
[0018] The water tank 31 has a circular shape in a plan view, but is not particularly limited to this, and is open at the top. An insertion hole 31b through which the bubbles B pass is formed in the bottom 31a of the water tank 31. A cooling water supply port 31c is also formed in the bottom 31a of the water tank 31. An overflow pipe 36 is attached to the bottom 31a of the water tank 31. The overflow pipe 36 extends above the sizing ring 32 and has an outlet 36a at its upper end. Cooling water is supplied through the supply port 31c and discharged through the outlet 36a. The cooling water level WH is determined by the position of the outlet 36a and is maintained at a predetermined level above the sizing ring 32. A cooling water film is formed between the wall surface of the insertion hole 32a of the sizing ring 32 and the bubbles B. The cooling water cools the bubbles B as it flows down between the wall surface of the insertion hole 32a and the outer periphery of the bubbles B.
[0019] A plurality of (for example, four) plates 37 are fixed to the outer peripheral surface 31d of the water tank 31. A first bolt 71 is screwed vertically downward into each of the plurality of plates 37. The first bolts 71 are provided, for example, at equal intervals in the circumferential direction. The first bolts 71 pass through the plates 37, and the tips of the first bolts 71 each abut against the upper surface 70a of the mounting base 70. The water tank 31 is supported on the mounting base 70 via the plurality of first bolts 71. The first bolts 71 and the plates 37 form a ball screw mechanism, and turning the first bolts 71 moves the plates 37, and therefore the water tank 31, in the vertical direction. In other words, the height of the water tank 31 is adjusted.
[0020] A plurality of (for example, four) support members 73 are fixed to the upper surface 70a of the mounting table 70. A second bolt 72 is threaded horizontally into each of the plurality of support members 73 toward the central axis of the water tank 31. The second bolts 72 are provided, for example, at equal intervals in the circumferential direction. The second bolts 72 penetrate the support members 73, and the tips of the second bolts 72 each abut against the outer peripheral surface 31d of the water tank 31. The plurality of second bolts 72 position the water tank 31 horizontally. For example, the water tank 31 is positioned horizontally so that the central axis of the sizing ring 32 coincides with the central axis of the resin discharge port 11 of the die 10.
[0021] The sizing ring 32 is a component that determines the outer diameter of the bubble B by the diameter of the insertion hole 32a. A film of cooling water is formed between the wall surface of the insertion hole 32a and the bubble B. Therefore, the outer diameter of the bubble B is smaller than the diameter of the insertion hole 32a by the thickness of the cooling water film. As will be described in detail later, the sizing ring 32 is equipped with a hole diameter varying mechanism 100 (see FIG. 3) that varies the hole diameter of the insertion hole 32a. This eliminates the need to replace the sizing ring 32 when changing the outer diameter of the bubble B. Note that a coolant other than cooling water may be used. Furthermore, a cooling gas may be used as a refrigerant instead of a coolant.
[0022] The first cylindrical member 33 is provided so that its central axis extends vertically. The lower end of the first cylindrical member 33 is spigot-fitted to the bottom 31a of the water tank 31. The sizing ring 32 is placed on the upper end of the first cylindrical member 33. In other words, the sizing ring 32 is supported by the first cylindrical member 33. The upper end of the first cylindrical member 33 is spigot-fitted to the sizing ring 32, specifically to the second holding member 132 described below.
[0023] The second cylindrical member 34 extends downward from the bottom 31a of the water tank 31. The second cylindrical member 34 has the same inner diameter as the insertion hole 31b of the water tank 31, and surrounds the bubble B to prevent the cooling water from scattering.
[0024] The rotation mechanism 35 rotates the sizing ring 32. The rotation mechanism 35 rotates the sizing ring 32, for example, once every 20 to 30 minutes. The sizing ring 32 is rotated when the insertion hole 32a of the sizing ring 32 is not a perfect circle. When the insertion hole 32a is not a perfect circle, the distance between the wall surface of the insertion hole 32a and the bubbles B varies in the circumferential direction of the insertion hole 32a. In areas with a wider distance, a larger amount of cooling water flows than in areas with a narrower distance, and the time required for the bubbles B to solidify is shorter. In areas where the bubbles B take less time to solidify, they are less likely to be stretched by the pair of pinch rolls 50 and are more likely to become thicker than in areas with a longer distance. As a result, the thickness of the bubbles B becomes uneven in the circumferential direction of the bubbles B.
[0025] Rotation mechanism 35 rotates sizing ring 32, thereby rotating the thick and thin portions of bubble B in the circumferential direction of bubble B. This prevents the thick portions of bubble B from piling up on top of each other when winder 60 forms film roll R. This prevents unevenness from forming on the outer periphery of film roll R, and prevents distortion of the resin film.
[0026] The rotation mechanism 35 may rotate the sizing ring 32 by rotating the water tank 31. By rotating the sizing ring 32 together with the water tank 31, it is not necessary to place the components of the rotation mechanism 35 inside the water tank 31, and it is possible to suppress the swaying of the cooling water inside the water tank 31. As a result, it is possible to prevent uneven thickness of the bubble B due to the swaying of the cooling water inside the water tank 31.
[0027] Rotation mechanism 35 includes, for example, a drive unit 80 and a transmission mechanism 81. Drive unit 80 is, for example, a motor or a gear motor, and outputs rotational force. Transmission mechanism 81 is a mechanism that transmits the rotational force generated by drive unit 80 to water tub 31, and includes an external gear 82 and a bearing 83. External gear 82 is fitted onto output shaft 80a of drive unit 80.
[0028] The bearing 83 is disposed so as to surround the bubble B. The central axis of the bearing 83, the central axis of the sizing ring 32, and the central axis of the water tank 31 are substantially aligned.
[0029] Bearing 83 includes an inner ring 83a and an outer ring 83b. Inner ring 83a is fixed to a frame (not shown). Outer ring 83b is fixed to water tank 31. Outer ring 83b is indirectly fixed to water tank 31 by being fixed to mounting table 70, but may also be fixed directly to water tank 31. External teeth 83c that mesh with external gear 82 are formed on the outer periphery of outer ring 83b.
[0030] When the external gear 82 rotates in accordance with the rotation of the output shaft 80a, the outer ring 83b rotates. As described above, the outer ring 83b is fixed to the water tub 31. In addition, the sizing ring 32 is fixed to the water tub 31. Therefore, when the outer ring 83b rotates, the sizing ring 32 rotates.
[0031] Preferably, the rotation mechanism 35 may rotate (i.e., rotate back and forth) the water tank 31 within a predetermined angular range (e.g., a predetermined angular range of 360° or less), thereby preventing twisting of a hose (not shown) connected to the supply port 31c.
[0032] An example of a hole diameter varying mechanism 100 for the sizing ring 32 will be described with reference to Figures 3 to 5. As shown in Figures 3 and 4, the hole diameter varying mechanism 100 varies the hole diameter of the insertion hole 32a. The hole diameter varying mechanism 100 has a plurality of movable members 110 (e.g., 32 members) that define the insertion hole 32a and are arranged continuously in the circumferential direction of the insertion hole 32a. The movable members 110 are movable in both directions, that is, in a direction to decrease the hole diameter and a direction to increase the hole diameter.
[0033] The insertion hole 32a of the sizing ring 32 is defined by the multiple movable members 110, and the wall surface of the insertion hole 32a is formed by the side surfaces of the multiple movable members 110. The height of the wall surface of the insertion hole 32a is determined by the height of the movable members 110. The height of the wall surface is set to a height sufficient to define the outer diameter of the bubble B.
[0034] 5, the movable member 110 has a blade 111 having, for example, a triangular prism shape. The blade 111 has an upper surface 111a, a lower surface 111b, a first side surface 111c, a second side surface 111d, and a third side surface 111e. The upper surface 111a and the lower surface 111b are triangular and tapered toward the inside in the radial direction of the sizing ring 32. The first side surface 111c, the second side surface 111d, and the third side surface 111e are rectangular.
[0035] A first protrusion 121 is provided on an upper surface 111a of the blade 111. The first protrusion 121 is inserted into a first slit 131a (see FIG. 3) of a first holding member 131. Meanwhile, a second protrusion 122 is provided on a lower surface 111b of the blade 111. The second protrusion 122 is inserted into a second slit 132a (see FIG. 4) of a second holding member 132. The first protrusion 121 and the second protrusion 122 are arranged on the same vertical line.
[0036] The hole diameter varying mechanism 100 has a first holding member 131. The first holding member 131 holds the blade 111 so that it can move freely in a direction that changes the hole diameter of the insertion hole 32a. The first holding member 131 is a thin, annular member. The first holding member 131 has first slits 131a, the same number as the number of blades 111, formed at equal intervals in the circumferential direction. When viewed from above, the first slits 131a extend linearly and are inclined counterclockwise as they move radially inward of the sizing ring 32.
[0037] The hole diameter varying mechanism 100 also includes a second holding member 132. The second holding member 132 holds the blade 111 so as to be movable in a direction that changes the hole diameter of the insertion hole 32a. The second holding member 132 is a member having the same shape and size as the first holding member 131. That is, the second holding member 132 is a thin-walled, annular member. The second holding member 132 has second slits 132a, the same number as the number of blades 111, formed at equal intervals in the circumferential direction. When viewed from above, the second slits 132a extend linearly and are inclined clockwise as they extend radially inward of the sizing ring 32. That is, when viewed from above, the second slits 132a are inclined in the opposite direction to the first slits 131a.
[0038] As shown in Fig. 4, the first side surface 111c of one blade 111 contacts the second side surface 111d of the adjacent blade 111. The first side surface 111c and the second side surface 111d are sliding surfaces that are vertical planes. When viewed from above, the first side surface 111c and the second side surface 111d are inclined clockwise as they move radially inward of the sizing ring 32. Multiple blades 111 overlap in the radial direction of the sizing ring 32.
[0039] When the first holding member 131 is rotated clockwise relative to the second holding member 132 as viewed from above, the first protrusions 121 move radially inward along the first slits 131a, and the second protrusions 122 move radially inward along the second slits 132a. As a result, the blades 111 move radially inward, and the diameter of the insertion holes 32a of the sizing ring 32 becomes smaller.
[0040] On the other hand, when the first holding member 131 is rotated counterclockwise relative to the second holding member 132 as viewed from above, the first protrusions 121 move radially outward along the first slits 131a, and the second protrusions 122 move radially outward along the second slits 132a. As a result, the blades 111 move radially outward, and the diameter of the insertion holes 32a of the sizing ring 32 increases.
[0041] Here, the case where the first holding member 131 is rotated relative to the second holding member 132 has been described, but the second holding member 132 may be rotated relative to the first holding member 131.
[0042] Although the case has been described here in which the first side surface 111c and the second side surface 111d are inclined clockwise as they move radially inward of the sizing ring 32 when viewed from above, the first side surface 111c and the second side surface 111d may also be inclined counterclockwise as they move radially inward of the sizing ring 32 when viewed from above. In the latter case, the first slit 131a is inclined clockwise as it moves radially inward of the sizing ring 32. In the latter case, the second slit 132a is inclined counterclockwise as it moves radially inward of the sizing ring 32.
[0043] Incidentally, when the blades 111 are moved in a direction that changes the diameter of the insertion hole 32a, gaps may occur between the sliding surfaces of adjacent blades 111. One possible cause of the gaps is that the blades 111 may rotate around the first protrusion 121 and the second protrusion 122 when viewed from above. If cooling water leaks out from the resulting gaps, a cooling water film will not be formed uniformly between the wall surface of the insertion hole 32a and the bubble B, resulting in molding defects.
[0044] 4 and 5, the blade 111 includes a separation limiting portion 112 that limits the separation between adjacent blades 111. By limiting the separation between the sliding surfaces of adjacent blades 111 with the separation limiting portion 112, it is possible to prevent gaps from forming between the sliding surfaces. This makes it possible to prevent cooling water from leaking from the gap, and to form a uniform film of cooling water between the wall surface of the insertion hole 32a and the bubble B, thereby suppressing molding defects.
[0045] For example, the separation limiting portion 112 includes an adsorption portion 113 that adsorbs adjacent blades 111. The adsorption portion 113 generates an adsorption force in a direction intersecting the boundary between the first side surface 111c and the second side surface 111d, thereby restricting the formation of a gap between the first side surface 111c and the second side surface 111d. Note that the multiple blades 111 are movable against the adsorption force in a direction that changes the diameter of the insertion hole 32a.
[0046] The suction portion 113 may suction multiple blades 111 together. For example, the suction portion 113 may suction a blade 111 that is far away, thereby suctioning an adjacent blade 111. Therefore, not all blades 111 may include the suction portion 113. For example, blades 111 that include the suction portion 113 and blades 111 that do not include the suction portion 113 may be arranged alternately in the circumferential direction of the sizing ring 32.
[0047] The attraction unit 113 includes, for example, a magnet 113A. An attraction force can be generated by the magnetic force of the magnet 113A. The magnet 113A may be a permanent magnet or an electromagnet. In the case of a permanent magnet, electrical wiring is not required. On the other hand, in the case of an electromagnet, the generation and disappearance of the attraction force can be controlled by controlling the current supplied to the electromagnet. For example, the attraction force can be disappeared when the diameter of the insertion hole 32a is changed, and the attraction force can be generated when the diameter of the insertion hole 32a is fixed.
[0048] As shown in Fig. 5, the blade 111 may include a first cover member 114 and a second cover member 115 in addition to the magnet 113A. The first cover member 114 and the second cover member 115 are fastened together with fasteners such as bolts (not shown) to form a triangular prism-shaped member. The first cover member 114 and the second cover member 115 house the magnet 113A inside. The magnet 113A is plate-shaped.
[0049] The first cover member 114 is a triangular prism-shaped member. The second cover member 115 is a member that integrates a triangular prism-shaped member of approximately the same size as the first cover member 114 and a quadrangular prism-shaped member whose upper and lower surfaces are trapezoidal.
[0050] Whether the diameter of insertion hole 32a is maximum as shown in Figure 4(A) or minimum as shown in Figure 4(B), the size and position of magnet 113A are determined so that when one magnet 113A is projected in its magnetization direction as viewed from above, it overlaps at least a portion of the adjacent magnet 113A. In Figure 4, the magnetization direction of each magnet 113A is perpendicular to the longitudinal direction of each magnet 113A.
[0051] Although only a portion of the blade 111 is a magnet 113A, the entire blade 111 may be a magnet. Also, not all of the blades 111 need include the magnet 113A; blades 111 that include the magnet 113A and blades 111 that do not include the magnet 113A may be arranged alternately in the circumferential direction of the sizing ring 32. Blades 111 that do not include the magnet 113A preferably include a soft magnetic material such as iron instead of the magnet 113A (hard magnetic material). The soft magnetic material is attracted by the magnet 113A.
[0052] In this embodiment, magnetic force is used as the attraction force of the attraction portion 113, but vacuum attraction force can also be used.
[0053] A modified example of the separation limiting portion 112 will be described with reference to FIG. 6. As shown in FIG. 6, the separation limiting portion 112 may include a fitting portion 116 that fits with an adjacent blade 111. A fitting protrusion 116A and a fitting groove 116B are used as the fitting portion 116. The fitting protrusion 116A is provided linearly on the second side surface 111d, and the fitting groove 116B is provided linearly on the first side surface 111c. The fitting protrusion 116A and the fitting groove 116B each have a T-shaped cross section, but may also have an L-shaped cross section. The cross-sectional shapes are not particularly limited.
[0054] The fitting protrusion 116A provided on the second side surface 111d of one blade 111 and the fitting groove 116B provided on the first side surface 111c of the adjacent blade 111 fit together to limit the separation between the adjacent blades 111. The fitting protrusion 116A and the fitting groove 116B are capable of relative movement in the longitudinal direction while fitted together. This allows the adjacent blades 111 to move in a direction that changes the diameter of the insertion hole 32a.
[0055] The positions of the fitting protrusion 116A and the fitting groove 116B may be reversed, with the fitting protrusion 116A provided on the first side surface 111c and the fitting groove 116B provided on the second side surface 111d. In any case, if all the blades 111 have the same shape, the manufacturing costs and management costs of the blades 111 can be reduced.
[0056] It is not necessary for all the blades 111 to have the same shape. Blades 111 having fitting protrusions 116A on both the first side surface 111c and the second side surface 111d and blades 111 having fitting grooves 116B on both the first side surface 111c and the second side surface 111d may be arranged alternately in the circumferential direction of the sizing ring 32.
[0057] Although not shown, the fitting protrusion 116A and the fitting groove 116B may be provided on the upper surface 111a or the lower surface 111b. For example, the fitting groove 116B may be provided on the upper surface 111a of one blade 111, and the fitting protrusion 116A that is inserted into the fitting groove 116B from above may be provided on the upper surface 111a of the adjacent blade 111.
[0058] However, it is preferable that the fitting protrusion 116A and the fitting groove 116B are provided on the first side surface 111c or the second side surface 111d. The fitting protrusion 116A and the fitting groove 116B can be hidden inside the sizing ring 32, which can prevent the flow of cooling water from being disturbed.
[0059] The separation restricting portion 112 may include only one of the adsorbing portion 113 and the fitting portion 116, or may include both.
[0060] The above describes the embodiments of the inflation molding apparatus, the sizing ring of the inflation molding apparatus, and the movable member of the sizing ring of the inflation molding apparatus according to the present invention, but the present invention is not limited to the above embodiments. Various changes, modifications, substitutions, additions, deletions, and combinations are possible within the scope of the claims. These changes also naturally fall within the technical scope of the present invention. [Explanation of symbols]
[0061] 1. Blown film molding equipment 32 Sizing Ring 32a Insertion hole 100 Variable hole diameter mechanism 110 Movable parts 112 Separation limiting section B Bubble
Claims
1. An inflation molding apparatus including a sizing ring that forms a through hole through which a bubble passes, the sizing ring includes a hole diameter varying mechanism that varies the hole diameter of the insertion hole, the hole diameter varying mechanism has a plurality of movable members that define the insertion hole and are arranged continuously in a circumferential direction of the insertion hole, the movable member includes a separation limiting portion that limits a separation between the movable member and an adjacent movable member, The distance limiting portion limits the distance between the sliding surfaces of the adjacent movable members.
2. An inflation molding apparatus including a sizing ring that forms a through hole through which a bubble passes, the sizing ring includes a hole diameter varying mechanism that varies the hole diameter of the insertion hole, the hole diameter varying mechanism has a plurality of movable members that define the insertion hole and are arranged continuously in a circumferential direction of the insertion hole, the movable member includes a separation limiting portion that limits a separation between the movable member and an adjacent movable member, The distance limiting portion includes an adsorption portion that adsorbs the adjacent movable member.
3. The inflation molding apparatus according to claim 2 , wherein the attraction portion includes a magnet.
4. An inflation molding apparatus including a sizing ring that forms a through hole through which a bubble passes, the sizing ring includes a hole diameter varying mechanism that varies the hole diameter of the insertion hole, the hole diameter varying mechanism has a plurality of movable members that define the insertion hole and are arranged continuously in a circumferential direction of the insertion hole, the movable member includes a separation limiting portion that limits a separation between the movable member and an adjacent movable member, The separation limiting portion includes a fitting portion that fits with an adjacent movable member.
5. A sizing ring of an inflation molding apparatus, Equipped with a variable hole diameter mechanism that changes the diameter of the insertion hole through which the bubble passes, the hole diameter varying mechanism has a plurality of movable members that define the insertion hole in a circumferential direction of the insertion hole, the movable member includes a separation limiting portion that limits a separation between the movable member and an adjacent movable member, The separation limiting portion is a sizing ring of an inflation molding device that limits the separation between the sliding surfaces of adjacent movable members.
6. A sizing ring of an inflation molding apparatus, Equipped with a variable hole diameter mechanism that changes the diameter of the insertion hole through which the bubble passes, the hole diameter varying mechanism has a plurality of movable members that define the insertion hole in a circumferential direction of the insertion hole, the movable member includes a separation limiting portion that limits a separation between the movable member and an adjacent movable member, The sizing ring of the inflation molding apparatus, wherein the separation limiting portion includes an adsorption portion that adsorbs the adjacent movable member.
7. A sizing ring of an inflation molding apparatus, Equipped with a variable hole diameter mechanism that changes the diameter of the insertion hole through which the bubble passes, the hole diameter varying mechanism has a plurality of movable members that define the insertion hole in a circumferential direction of the insertion hole, the movable member includes a separation limiting portion that limits a separation between the movable member and an adjacent movable member, The sizing ring of the inflation molding apparatus, wherein the separation limiting portion includes a fitting portion that fits with the adjacent movable member.
8. A movable member of a sizing ring of an inflation molding device, comprising: a sizing ring that forms a through-hole through which a bubble passes; the sizing ring having a hole diameter varying mechanism that varies the hole diameter of the through-hole; and the hole diameter varying mechanism having a plurality of movable members that define the through-hole in a circumferential direction of the through-hole, the movable member includes a separation limiting portion that limits a separation between the movable member and an adjacent movable member, The separation limiting portion is a movable member of a sizing ring of an inflation molding apparatus that limits the separation between the sliding surfaces of adjacent movable members.
9. A movable member of a sizing ring of an inflation molding device, comprising: a sizing ring that forms a through-hole through which a bubble passes; the sizing ring having a hole diameter varying mechanism that varies the hole diameter of the through-hole; and the hole diameter varying mechanism having a plurality of movable members that define the through-hole in a circumferential direction of the through-hole, the movable member includes a separation limiting portion that limits a separation between the movable member and an adjacent movable member, The movable member of a sizing ring of an inflation molding apparatus, wherein the separation limiting portion includes an adsorption portion that adsorbs the adjacent movable member.
10. A movable member of a sizing ring of an inflation molding device, comprising: a sizing ring that forms a through-hole through which a bubble passes; the sizing ring having a hole diameter varying mechanism that varies the hole diameter of the through-hole; and the hole diameter varying mechanism having a plurality of movable members that define the through-hole in a circumferential direction of the through-hole, the movable member includes a separation limiting portion that limits a separation between the movable member and an adjacent movable member, The movable member of a sizing ring of an inflation molding apparatus, wherein the separation limiting portion includes a fitting portion that fits with an adjacent movable member.
Citation Information
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