PULP MOLD
20230235515 · 2023-07-27
Assignee
Inventors
Cpc classification
D21J7/00
TEXTILES; PAPER
International classification
Abstract
A pulp mold includes a mold main body extending along a longitudinal axis and having an inner surface that defines a chamber, an outer surface opposite to the inner surface, and a plurality of channel grooves extending inwardly from the outer surface toward the inner surface and extending along a length of the outer surface. The chamber is divided into a plurality of chamber sections decreasing in diameters gradually and upwardly from the opening along the longitudinal axis. Each channel groove does not communicate with the chamber. A plurality of air holes extend from the outer surface to the inner surface, pass through the channel grooves, and communicate the chamber with the outside.
Claims
1. A pulp mold for producing a container formed from pulp, the container including a container main body, and an annular flange formed on one end of the container main body, said pulp mold comprising: a mold main body extending along a longitudinal axis and having an inner surface defining a chamber that is suitable for air to flow in and out, said chamber having an opening, and being divided into a plurality of chamber sections decreasing in diameters gradually and upwardly from said opening along the longitudinal axis; an outer surface opposite to said inner surface; a plurality of channel grooves extending inwardly from said outer surface toward said inner surface and extending along a length of said outer surface, wherein each of said channel grooves does not communicate with said chamber, and a plurality of air holes extending from said outer surface to said inner surface and passing through said channel grooves, said air holes communicating said chamber with the outside.
2. The pulp mold as claimed in claim 1, wherein said air holes are arranged at equal intervals along an extending direction of said channel grooves.
3. The pulp mold as claimed in claim 1, wherein said inner surface includes a plurality of step portions spaced apart from each other along the longitudinal axis, and each of said step portions cooperates with said inner surface to define a corresponding one of said chamber sections.
4. The pulp mold as claimed in claim 1, wherein said chamber is substantially U-shape.
5. The pulp mold as claimed in claim 1, wherein said outer surface includes a conical surface portion surrounding the longitudinal axis, and an end surface portion connected to a narrow end of said conical surface portion that is opposite to said opening of said chamber, said conical surface portion forming a first angle with the longitudinal axis, said first angle ranging from 3 to 15 degrees.
6. The pulp mold as claimed in claim 5, further comprising an annular flange extending outwardly and radially from the bottom of said mold main body, said annular flange of said pulp mold having a top surface, and an annular recess extending inwardly from said top surface for forming the annular flange of the container.
7. The pulp mold as claimed in claim 6, wherein said mold main body further has an annular protrusion extending outwardly and radially from a wide end of said conical surface portion, and is immediately adjacent to said annular recess, said annular protrusion being configured to form an annular protrusion of the container adjacent to the annular flange of the container.
8. The pulp mold as claimed in claim 1, wherein each of said channel grooves 54 has a depth of 0.1 to 5 mm, and a width of 0.1 to 3 mm.
9. The pulp mold as claimed in claim 1, wherein the number of said channel grooves ranges from 3 to 24, and each of said channel grooves communicates with more than five said air holes.
10. The pulp mold as claimed in claim 1, wherein each of said air holes has a diameter of 0.5 to 3 mm.
11. The pulp mold as claimed in claim 1, wherein an extending direction of each of said air holes passing through a corresponding one of said channel grooves forms a second angle with a reference plane perpendicular to the longitudinal axis, and said second angle ranges from 20 to 60 degrees.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Other features and advantages of the disclosure will become apparent in the following detailed description of the embodiment with reference to the accompanying drawings. It is noted that various features may not be drawn to scale.
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DETAILED DESCRIPTION
[0024] Referring to
[0025] The inner surface 52 defines a chamber 51 extending along the longitudinal axis (X) and suitable for air to flow in and out. The chamber 51 has an opening 511, and is divided into four chamber sections 512 decreasing in diameters gradually and upwardly from the opening 511 along the longitudinal axis (X). In this embodiment, the inner surface 52 includes three step portions 521 spaced apart from each other along the longitudinal axis (X). Each step portion 521 cooperates with the inner surface 52 to define a corresponding one of the chamber sections 512.
[0026] The outer surface 53 is opposite to the inner surface 52, and includes a conical surface portion 531 surrounding the longitudinal axis (X), and an end surface portion 532 connected to a narrow end of the conical surface portion 531 that is opposite to the opening 511. The conical surface portion 531 forms a first angle (θ1) with the longitudinal axis (X). The first angle (θ1) ranges from 3 to 15 degrees, and preferably, 5 degrees.
[0027] The channel grooves 54 are formed on the conical surface portion 531 of the outer surface 53, and extend along a length thereof. Specifically, the channel grooves 54 extend inwardly from the conical surface portion 531 toward the inner surface 52, and are distributed equidistantly around the conical surface portion 531. The number of the channel grooves 54 ranges from 3 to 24. Preferably, the number of the channel grooves 54 is 16. Each channel groove 54 does not communicate with the chamber 51, and has a depth of 0.1 to 5 mm, and a width of 0.1 to 3 mm. Preferably, the depth is 0.6 mm, and the width is 1.5 mm.
[0028] The air holes 55 extend from the conical surface portion 531 to the inner surface 52 to communicate the chamber 51 with the outside. In this embodiment, a portion of the air holes 55 pass through the channel grooves 54, and are arranged at equal intervals along an extending direction of the channel grooves 54, while the other portion of the air holes 55 pass through the end surface portion 532. Each air hole 55 has a diameter of 0.5 to 3 mm, and preferably, 1.5 mm. An extending direction of each air hole 55 passing through a corresponding channel groove 54 forms a second angle (02) with a reference plane (C) perpendicular to the longitudinal axis (X). The second angle (02) ranges from 20 to 60 degrees, and preferably, 45 degrees. Each channel groove 54 communicates with more than five air holes 55.
[0029] The annular protrusion 57 extends outwardly and radially from a wide end of the conical surface portion 531.
[0030] The annular flange 58 has a top surface 581, and an annular recess 582 extending inwardly from the top surface 581 and immediately adjacent to the annular protrusion 57.
[0031] To make the pulp mold 5, the chamber sections 512 with different diameters, the channel grooves 54, the air holes 55, the annular protrusion 57 and the annular recess 582 can be completed by using only the processing methods, such as turning, milling grooves, and drilling, so that not only is the processing easy and the processing speed fast to produce about eight to twelve pulp molds 5 in one day, but also the production cost of each pulp mold 5 can be reduced to a minimum.
[0032] The pulp mold 5 is suitable for connecting with a vacuum pump (not shown) to generate negative pressure, and is suitable for connecting with a pressure pump (not shown) to generate positive pressure.
[0033] Referring to
[0034] What is important is that, when the suction air flow passes through the chamber 51 and the air holes 55 to remove the water in the pulp, the channel grooves 54 of this disclosure which do not communicate with the chamber 51 can be used to temporarily receive the pulp therein and prevent the pulp from passing through the air holes 55 to form barbs, so that the above-mentioned finished product after being hot-pressed and shaped can be easily blown away from the pulp mold 5, thereby achieving the purpose of demolding and improving the yield of the good product.
[0035] With reference to
[0036] When a plurality of containers 4 are stacked (only two are shown in
[0037] It is worth to mention herein that, if the first angle (θ1) is smaller than 3 degrees, because the draft angle is too small, the yield of good products is extremely low, and is not easy to produce good products, thereby leading to the stack height (H) of the containers 4 becoming large, the number of packaging bags becoming less, the volume becoming large, and increase in the transportation cost. On the other hand, if the first angle (θ1) is larger than 15 degrees, although the stack height (H) of the containers 4 can be decreased, the height of the finished product is easily limited, making the volume of the container 4 becomes small.
[0038] Moreover, although the container 4 produced by the pulp mold 5 has roughly visible stripes corresponding to the channel grooves 54, it will not affect the function of use and the appearance of the product. It is worth noting that, if the depth of each channel groove 54 is less than 0.1 mm and the width thereof is less than 0.1 mm, although the traces of the stripes are not obvious, the problems of barbs and demolding cannot be effectively resolved; and, if the depth of each channel groove 54 is greater than 5 mm and the width thereof is greater than 3 mm, the traces of the stripes are relatively obvious, and although the problems of barbs and demolding can be resolved, when the number of production times is large, it is easy to cause gap to become plugged with pulp, so that demolding cannot be achieved easily and smoothly.
[0039] If the second angle (02) is smaller than 20 degrees, the flow direction of air is close to the reference plane (C) (close to a horizontal state), because the thrust along the longitudinal axis (X) is not enough to detach the finished product from the pulp mold 5, demolding of the finished product is not easy; and, if the second angle (02) is greater than 60 degrees, the flow direction of the air is close to the longitudinal axis (X) (close to a vertical state and abut on the conical surface portion 531), because the thrust acting on the container main body 41 is not enough to separate the container main body 41 from the pulp mold 5, demolding of the finished product is also not easy.
[0040] It should be noted that the depth of the pulp mold 5 is not limited to that shown in
[0041] Further, the chamber sections 512 that gradually decrease in diameters are not limited to being correspondingly defined by the inner surface 52 of the mold main body 50 and the step portions 521. In other variations of this embodiment, as shown in
[0042] From the aforesaid description, the advantages of this disclosure can be summarized as follows:
[0043] 1. The channel grooves 54 that do not communicate with the chamber 51 can be used to temporarily receive the pulp therein so as to prevent the pulp from passing through the air holes 55 to form barbs, so that the finished product produced by this disclosure can be easily demolded, and the yield of good product can be improved.
[0044] 2. Through the design of the chamber sections 512 that gradually decrease in diameters upwardly from the opening 511 along the longitudinal axis (X), the quantity of air flow can be effectively increased, sufficient thickness can be retained, and the best balance between easy heat accumulation, heat preservation, improve drainage and mold release effects can be obtained.
[0045] 3. Since the pulp mold 5 of this disclosure can be made by only using the processing methods, such as turning, milling grooves, and drilling, not only the processing speed is fast that about eight to twelve pulp molds 5 can be produced in one day, but also the production cost of each pulp mold 5 can be reduced to a minimum.
[0046] 4. Since the channel grooves 54 do not communicate with the chamber 51, and the chamber 51 communicates with the outside through the air holes 53, there will be no disadvantage of releasing the pressure too quickly.
[0047] While the disclosure has been described in connection with what is considered the exemplary embodiment, it is understood that this disclosure is not limited to the disclosed embodiment but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.