Powder filling apparatus, shaped article manufacturing apparatus, powder filling method, shaped article manufacturing method

The method and apparatus control the filling process with pressurized air and negative pressure to prevent material loss during mold filling, ensuring complete and efficient use of granular or powdery materials.

JP2026057364AActive Publication Date: 2026-04-02SUGIMATSU IND CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-09-20
Publication Date
2026-04-02

AI Technical Summary

Technical Problem

Conventional methods for filling molds with granular or powdery particulate matter result in waste due to material falling from the outlet after filling, as the outlet is typically positioned downwards, causing support loss and material loss with each fill.

Method used

A method and apparatus that utilizes a storage tank with a controlled pressurized air supply and negative pressure generation to fill the mold, followed by negative pressure application to draw in falling material, preventing waste.

Benefits of technology

Prevents the generation of wasted powder or granular material by ensuring complete filling and retention within the mold, optimizing material usage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The powder and granular material are filled into the mold without generating any unnecessary waste. [Solution] The outlet (25a) of the storage tank (23) containing the powdered material is brought into contact with the filling port (11b) of the mold (11, 12), and pressurized air is supplied into the storage tank, causing the powdered material in the storage tank to be blown out of the outlet along with the pressurized air and filled into the mold. When separating the outlet from the filling port after filling with the powdered material, the air in the storage tank is sucked out, so that the powdered material falling from the outlet is also sucked into the storage tank along with the air. In this way, by simply adding a function to suck out the air in the storage tank, it is possible to prevent the powdered material from falling out of the outlet of the storage tank and being wasted.
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Description

Technical Field

[0001] The present invention relates to a technique for manufacturing a molded article made of granular or powdery particulate matter by filling the internal space of a mold with the granular or powdery particulate matter and then solidifying the particulate matter inside the mold.

Background Art

[0002] It is widely practiced to manufacture a molded article such as a core by filling the internal space of a mold with granular or powdery particulate matter such as casting sand and then solidifying the particulate matter filled in the mold. In addition, as a method for solidifying the particulate matter in the mold, various methods such as heating, pressurization, and reaction treatment with a predetermined gas are used. Thus, when manufacturing a molded article by solidifying the particulate matter filled inside the mold, if there is a portion inside the mold where the particulate matter is not filled, the resulting molded article will be a defective product.

[0003] Therefore, in order to fill the mold with particulate matter without any gaps, the following method is adopted. First, a filling port is formed on the upper surface of the mold so that the particulate matter supplied from the filling port flows into the mold by its own weight. Further, a plurality of air vents that allow air to pass through but do not allow the particulate matter to pass through are formed at various locations inside the mold. Then, after bringing the outlet of the particulate matter provided at the bottom of the storage tank storing the particulate matter into contact with the filling port of the mold, pressurized air is supplied into the storage tank, and the particulate matter in the storage tank is blown out from the outlet together with the pressurized air to fill the inside of the mold with the particulate matter. By doing so, by forming a plurality of air vents at appropriate locations inside the mold, the inside of the mold can be filled with particulate matter without any gaps (Patent Document 1). Further, after filling the particulate matter, the pressurized air in the storage tank is released to the outside air to return the pressure in the storage tank to atmospheric pressure.

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

[0005] However, the conventional technology described above had the problem of generating wasted powder material that was not filled into the mold. The reason for this is as follows: First, since the filling port of the mold is formed facing upwards, the outlet from which the powder material flows out of the storage tank is formed facing downwards. Therefore, at the time the powder material is filled into the mold, the powder material inside the outlet is supported by the powder material already filled into the mold. As a result, when the outlet is separated from the filling port of the mold after filling is complete, the powder material inside the outlet, which has lost its support, falls onto the mold, and this amount of powder material is wasted. Of course, the amount of powder material wasted with each fall is small, but since powder material falls each time the mold is filled, a large amount of powder material is wasted overall.

[0006] This invention was made to solve the aforementioned problems of the conventional technology, and aims to provide a technology that makes it possible to fill the inside of a mold with powder or granular material without generating any wasted powder or granular material. [Means for solving the problem]

[0007] To solve the above-mentioned problems, the powder and granular material filling apparatus of the present invention employs the following configuration. That is, In a powder filling apparatus for filling granular or powdery materials into the internal space of a mold, A storage tank in which the aforementioned granular material is stored, The outlet from which the granular material in the storage tank flows out of the storage tank, A pressurized air supply unit that supplies pressurized air into the storage tank, A negative pressure generating unit that creates negative pressure inside the storage tank by drawing air out of the storage tank, A control unit that controls the operation of the pressurized air supply unit and the negative pressure generation unit. Equipped with, The control unit, With the outlet in contact with the filling port of the mold, the pressurized air supply unit is operated to blow out the powder and granular material from the outlet along with the pressurized air, thereby filling the inside of the mold with the powder and granular material, after which the operation of the pressurized air supply unit is stopped. When the outlet separates from the filling port, the negative pressure generating unit is activated to draw the powder falling from the outlet into the storage tank along with the air outside the outlet. It is characterized by the following:

[0008] Furthermore, the powder and granular material filling method corresponding to the powder and granular material filling apparatus of the present invention described above employs the following configuration. That is, In a method for filling a mold with granular or powdery material, in which granular or powdery material stored in a storage tank is discharged from an outlet to fill the internal space of a mold, With the outlet in contact with the filling port of the mold, pressurized air is supplied into the storage tank, thereby blowing out the powder and granular material from the outlet along with the pressurized air to fill the inside of the mold with the powder and granular material, and then the supply of pressurized air is stopped. After the supply of pressurized air is stopped, when the outlet separates from the filling port, the process involves drawing air from the storage tank, thereby drawing the powder falling from the outlet into the storage tank together with the air outside the outlet. It is characterized by having the following features.

[0009] In the powder and granular material filling apparatus or method of the present invention, the outlet of the storage tank is brought into contact with the filling port of the mold, and pressurized air is supplied into the storage tank, causing the powder and granular material in the storage tank to be blown out from the outlet along with the pressurized air. In this way, the powder and granular material can be filled completely inside the mold. Furthermore, when separating the outlet of the storage tank from the filling port of the mold after filling with the powder and granular material, the air in the storage tank is sucked out, so that the powder and granular material that would otherwise fall from the outlet is also sucked into the storage tank along with the air. In this way, by simply adding a function to suck out the air in the storage tank, it is possible to prevent the powder and granular material from falling from the outlet of the storage tank and generating wasted powder and granular material when separating the outlet of the storage tank from the filling port of the mold.

[0010] Furthermore, in the powder and granular material filling apparatus of the present invention described above, the air in the storage tank may be started to be drawn out before the outlet is separated from the filling port of the mold, and only then may the outlet be separated from the filling port of the mold.

[0011] By creating a sufficiently negative pressure inside the storage tank and then separating the outlet from the filling port of the mold, air can be forcefully drawn in the moment of separation. Therefore, even if the capacity of the equipment used to draw air from the storage tank is small, it is possible to reliably prevent the generation of unnecessary powder and granular material.

[0012] Alternatively, in the powder and granular material filling apparatus of the present invention described above, the storage tank may be made open to the atmosphere, and the storage tank may be opened to the atmosphere before the outlet separates from the filling port of the mold. Then, when the outlet separates from the filling port of the mold, or after they separate, the suction of air from the storage tank may be started.

[0013] If the storage tank is opened to the atmosphere before the outlet separates from the filling port of the mold, the pressure inside the storage tank can prevent the powder or granular material inside from being blown out of the outlet. In addition, if the air in the storage tank is started to be drawn out at the moment the outlet separates from the filling port of the mold, or after they separate, even if the negative pressure generated inside the storage tank is excessive, that negative pressure will not be directly applied to the filling port of the mold. This makes it possible to prevent the powder or granular material filled in the mold from being sucked out from the filling port.

[0014] Furthermore, the clothes drying apparatus and powder / granular material filling method of the present invention described above can also be understood as the following molded product manufacturing apparatus or molded product manufacturing method. That is, the molded product manufacturing apparatus of the present invention is In a molded product manufacturing apparatus for producing a molded product by filling a mold with granular or powdery material into the internal space of a mold and then solidifying the granular material inside the mold, A storage tank in which the aforementioned granular material is stored, The outlet from which the granular material in the storage tank flows out of the storage tank, A moving part that switches between a state in which the outlet is in contact with the filling port of the molding die and a state in which the outlet is separated from the filling port by moving at least one of the molding die or the outlet, A pressurized air supply unit that supplies pressurized air into the storage tank, A negative pressure generating unit that creates negative pressure inside the storage tank by drawing air out of the storage tank, The solidification section inside the mold solidifies the powder and granules, A control unit that controls the operation of the moving unit, the solidification unit, the pressurized air supply unit, and the negative pressure generation unit. Equipped with, The control unit, After bringing the outlet into contact with the filling port by operating the aforementioned movable part, By operating the pressurized air supply unit, the granular material is blown out together with the pressurized air from the outlet to fill the inside of the mold with the granular material, and then the operation of the pressurized air supply unit is stopped. After stopping the operation of the pressurized air supply unit, the outlet is separated from the filling port by operating the moving unit. When separating the outlet from the filling port, the negative pressure generating unit is operated to suck the granular material falling from the outlet together with the air outside the outlet into the storage tank. The granular material inside the mold is solidified by operating the solidifying unit. It is characterized by the above.

[0015] Also, a manufacturing method of a product corresponding to the product manufacturing apparatus of the present invention described above is as follows. In a product manufacturing method for manufacturing a molded product by filling a space inside a mold with a granular or powdery granular material stored in a storage tank through an outlet and then solidifying the granular material inside the mold, a step of bringing the outlet into contact with a filling port of the mold; a step of supplying pressurized air into the storage tank to blow out the granular material together with the pressurized air from the outlet to fill the inside of the mold with the granular material, and then stopping the supply of the pressurized air; a step of sucking the granular material falling from the outlet together with the air outside the outlet into the storage tank by separating the outlet from the filling port while sucking out the air in the storage tank; a step of solidifying the granular material inside the mold; It is characterized by comprising the above steps.

[0016] In such a product manufacturing apparatus or product manufacturing method of the present invention, when filling the mold with the granular material to manufacture the molded product, the granular material is filled using the same method as the granular material filling apparatus or granular material filling method of the present invention described above, so it is possible to prevent the generation of waste granular material. [Brief explanation of the drawing]

[0017] [Figure 1] This is an explanatory diagram showing the general structure of the sand core manufacturing apparatus 1 in this embodiment. [Figure 2] This is a cross-sectional view showing the internal structure of the storage tank 23. [Figure 3] This is an explanatory diagram showing the mechanism by which casting sand is retained in the storage tank 23. [Figure 4] This is a cross-sectional view showing the internal structure of the pressure cap 30. [Figure 5] This is an explanatory diagram showing the shapes of the mold holding plate 13, the support column 14, the lifting plate 15, and the lower burner 17. [Figure 6] This is an explanatory diagram showing the first half of the operation in which the sand core manufacturing apparatus 1 of this embodiment manufactures sand cores. [Figure 7] This diagram illustrates the latter half of the operation in which the sand core manufacturing apparatus 1 of this embodiment manufactures sand cores. [Figure 8] This diagram illustrates why, in conventional methods of raising the storage tank 23 without creating negative pressure inside the storage tank 23, the casting sand inside the storage tank 23 spills out. [Figure 9] This diagram explains why creating negative pressure inside the storage tank 23 when it is raised prevents casting sand from spilling out of the outlet 25a. [Figure 10] This is an explanatory diagram showing how the control unit 50 mounted on the sand core manufacturing apparatus 1 switches the switching valve 34 in accordance with the movement of the lifting cylinder 18, the horizontal cylinder 28, the push cylinder 32, and the opening / closing shutter 22. [Figure 11] This is an explanatory diagram showing how the modified sand core manufacturing apparatus 1 raises the storage tank 23 at the changed timing when the negative pressure generated by the suction device 36 is too large. [Modes for carrying out the invention]

[0018] A. This embodiment: In the following, as an example of the powder and granular material filling apparatus and molded product manufacturing apparatus of the present invention, a sand core manufacturing apparatus 1 will be described, which manufactures sand cores by solidifying casting sand into a predetermined shape using a mold. Accordingly, the casting sand in this example corresponds to "powder and granular material" in the present invention, and the sand core in this example corresponds to "molded product" in the present invention.

[0019] Figure 1 is an explanatory diagram showing the general structure of the sand core manufacturing apparatus 1 of this embodiment. The sand core manufacturing apparatus 1 of this embodiment is formed by assembling various equipment onto a frame 2 formed by assembling steel frames. Focusing on the operation of the sand core manufacturing apparatus 1 when manufacturing sand cores, the sand core manufacturing apparatus 1 can be divided into a part that fills the inside of the mold with casting sand (casting sand filling section 20 in Figure 1), a part that solidifies the casting sand filled inside the mold (casting sand solidification section 10 in Figure 1), and a part that controls the operation of the casting sand solidification section 10 and the casting sand filling section 20 (control section 50 in Figure 1). In this embodiment, the casting sand filling section 20 and the control section 50 correspond to the "powder and granular material filling apparatus" in the present invention.

[0020] The casting sand solidification unit 10 includes an upper mold 11 assembled to a frame 2, a lower mold 12 that moves up and down below the upper mold 11, a mold holding plate 13 to which the lower mold 12 is attached, a lifting plate 15 that moves the mold holding plate 13 up and down, and a lifting cylinder 18 that moves the lifting plate 15 up and down. A lower burner 17 is mounted on the upper surface of the lifting plate 15, and support columns 14 are erected upward from the four corners of the lifting plate 15. A gas pipe (not shown) is connected to the lower burner 17, and a flame is formed upward by burning fuel gas supplied from the gas pipe.

[0021] As shown in Figure 1, when the lifting plate 15 is lowered to its lowest position, the mold holding plate 13 is resting on the support portion 2a that protrudes from the frame 2. However, when the lifting plate 15 is raised, the mold holding plate 13 is also lifted by the support column 14 and rises together with the lifting plate 15. As a result, the lower mold 12 attached to the upper surface of the mold holding plate 13 is pressed against the upper mold 11.

[0022] A recess 12a is formed on the upper surface of the lower mold 12, and a recess 11a is also formed on the lower surface of the upper mold 11. Therefore, when the lower mold 12 is raised and pressed against the upper mold 11, a space is formed between the upper surface of the lower mold 12 and the lower surface of the upper mold 11 by the recesses 12a and 11a. In addition, a filling port 11b is formed on the upper surface of the upper mold 11, and a filling passage 11c is formed from the filling port 11b through to the lower surface of the upper mold 11. Therefore, the space formed between the upper mold 11 and the lower mold 12 when the lower mold 12 is pressed against the upper mold 11 communicates with the filling port 11b via the filling passage 11c. In this embodiment, the upper mold 11 and the lower mold 12 correspond to the "molds" in the present invention.

[0023] Furthermore, an upper burner 16 is mounted above the upper mold 11. The upper burner 16 is attached to a carriage 27 that can move horizontally, and by moving the carriage 27, the upper burner 16 can be positioned directly above the upper mold 11. A gas pipe (not shown) is also connected to the upper burner 16, and by burning the fuel gas supplied from the gas pipe, a flame is formed that points downward.

[0024] In the casting sand solidification section 10, casting sand is filled into the space between the upper mold 11 and the lower mold 12 using a method described later. The upper mold 11 and the lower mold 12 are then heated by the upper burner 16 and the lower burner 17. This process sintersects the casting sand filling the space between the upper mold 11 and the lower mold 12, forming a sand core. In this embodiment, the casting sand is sintered into the filled shape by heating the upper mold 11 and the lower mold 12. However, the casting sand may be solidified by other methods as long as it can be solidified into the filled shape. For example, the casting sand may be solidified by compressing it under high pressure, or by applying a predetermined reaction gas that reacts with a material coated on the casting sand. Furthermore, the material to be filled into and solidified in the upper mold 11 and the lower mold 12 does not need to be casting sand; any granular or powdery material will do. Furthermore, the molded product manufactured does not necessarily have to be a sand core. In this embodiment, the upper burner 16 and the lower burner 17 correspond to the "solidification section" in the present invention.

[0025] The casting sand filling unit 20 includes a hopper 21 into which casting sand is fed, an opening / closing shutter 22 attached to the lower end of the hopper 21, a storage tank 23 for temporarily storing the casting sand to be filled, a carriage 27 on which the storage tank 23 is mounted and which is movable in the horizontal direction, and a horizontal cylinder 28 for moving the carriage 27. The storage tank 23 is attached to the carriage 27 in a state biased upward by a spring (not shown), and when force is applied from above it moves downward by a certain range, but when the force is removed it returns to its original position by the force of the spring. The carriage 27 is also equipped with the upper burner 16 mentioned above.

[0026] Furthermore, the casting sand filling section 20 is also equipped with a pressure cap 30, a pressing cylinder 32, a switching valve 34, and a suction device 36. Here, the suction device 36 is a cylindrical device with a Venturi-shaped central passage opening at both ends, and a supply nipple 36a is provided protruding from its side. When pressurized air is supplied from the supply nipple 36a, air at a flow rate greater than the supplied amount is blown out from the opening at one end of the suction device 36, and consequently, negative pressure is generated at the opening at the other end of the suction device 36. Note that it is sufficient for the suction device 36 to generate negative pressure by sucking in air at a certain flow rate or higher, and equipment such as a suction pump may be used. In this embodiment, the pressing cylinder 32 corresponds to the "moving section" in the present invention.

[0027] Furthermore, the switching valve 34 is a four-way valve having three input ports (not shown) and one output port (not shown), and by switching the switching valve 34, one of the three input ports is connected to the output port. The output port of the switching valve 34 is connected to the pressure cap 30 via a pressure hose 33. In addition, a pressure piping (not shown) that supplies pressurized air is connected to the first input port of the switching valve 34. Furthermore, the second input port of the three input ports is connected to the open end on the side where negative pressure is generated of the suction device 36 via a suction hose 35, and the remaining third input port is open to the atmosphere.

[0028] Furthermore, when the switching valve 34 is switched to connect the first input port (the input port to which pressurized air is supplied) to the output port, the pressurized air supplied from the first input port flows out from the output port, and this state will be referred to as the "air supply state" below. Also, when the switching valve 34 is switched to connect the second input port (the input port to which the negative pressure of the suction device 36 acts) to the output port, air is drawn in from the output port by the negative pressure acting on the second input port, and this state will be referred to as the "air suction state" below. Moreover, when the switching valve 34 is switched to connect the third input port (the input port open to the atmosphere) to the output port, the output port is also opened to the atmosphere, and this state will be referred to as the "atmospheric open state" below.

[0029] As will be described in detail later, the casting sand filling unit 20 operates as follows. First, the storage tank 23 is moved to a position directly below the hopper 21 by moving the carriage 27 with the horizontal cylinder 28. Figure 1 shows the state in which the storage tank 23 has been moved to a position directly below the hopper 21. After supplying a certain amount of casting sand from the hopper 21 to the storage tank 23 by opening the opening / closing shutter 22 in this state, the opening / closing shutter 22 is closed, and then the storage tank 23 is moved to a position directly above the upper mold 11 by moving the carriage 27 with the horizontal cylinder 28. The pressure cap 30 is mounted in a position directly above the moved storage tank 23. Subsequently, when the pressure cap 30 is lowered using the push cylinder 32, the storage tank 23 moves downward due to the pressure cap 30, and the bottom surface of the storage tank 23 is pressed against the top surface of the upper mold 11.

[0030] Next, the switching valve 34 is switched to the air supply state described above, thereby supplying pressurized air to the pressure cap 30. The pressurized air supplied to the pressure cap 30 flows into the storage tank 23 and, together with the casting sand in the storage tank 23, flows into the space between the upper mold 11 and the lower mold 12. As a result, the space between the upper mold 11 and the lower mold 12 is filled with casting sand. In this embodiment, since pressurized air is supplied to the storage tank 23 by switching the switching valve 34 to the air supply state, the switching valve 34 in this embodiment corresponds to the "pressurized air supply unit" in the present invention.

[0031] Once the casting sand has been filled, the pressurized air in the storage tank 23 and the pressure cap 30 is released to the atmosphere by switching the switching valve 34 to the atmospheric release state described above. In this embodiment, since the pressure inside the storage tank 23 and the pressure cap 30 is returned to atmospheric pressure by switching the switching valve 34 to the atmospheric release state, the switching valve 34 in this embodiment corresponds to the "atmospheric release section" in the present invention.

[0032] Then, once the pressure in the storage tank 23 and the pressure cap 30 returns to atmospheric pressure, the switching valve 34 is switched from an open-to-atmosphere state to an air-in-air state, thereby creating negative pressure in the storage tank 23 and the pressure cap 30, and then the pressure cap 30 is raised to its original position. Consequently, the storage tank 23 also rises to its original position. As will be explained in more detail later, creating negative pressure in the storage tank 23 and the pressure cap 30 when raising the pressure cap 30 and the storage tank 23 prevents the casting sand in the storage tank 23 from spilling out. In this embodiment, negative pressure is created in the storage tank 23 by switching the switching valve 34 to an air-supply state while air is being drawn in by the suction device 36. Therefore, in this embodiment, the switching valve 34 and the suction device 36 correspond to the "negative pressure generation unit" in the present invention.

[0033] The control unit 50 is a so-called microcomputer and controls the overall operation of the sand core manufacturing apparatus 1.

[0034] Figure 2 is a cross-sectional view showing the internal structure of the storage tank 23. As shown in the figure, the storage tank 23 has a cylindrical body 24 to which a disc-shaped bottom plate 25 is attached, and a casting sand supply port 24a is formed at the upper end of the body 24. A circular outlet 25a is formed in the center of the bottom plate 25, and above the outlet 25a, a larger diameter, disc-shaped storage plate 26 is attached parallel to the bottom plate 25. A gap 26a of a predetermined height is formed between the bottom plate 25 and the storage plate 26. Thus, the outlet 25a at the bottom of the storage tank 23 is actually always open, but the casting sand is retained inside the storage tank 23 by the following mechanism.

[0035] Figure 3 is an explanatory diagram showing the mechanism by which casting sand is retained in the storage tank 23. When forming a mound of powdered material such as casting sand, the powdered material can be piled up as long as the slope of the mound is below a certain angle. However, if the angle of the slope exceeds a certain angle, the lower powdered material can no longer support the weight of the upper powdered material, and the slope collapses. This angle of the slope is called the "angle of repose," and it is known to take a value that is almost fixed depending on the size of each individual particle of the powdered material, the shape of the particles, the moisture content, and the surface properties. Figure 3(a) shows casting sand piled up at an angle of repose θ.

[0036] As long as the angle of the slope does not exceed the angle of repose θ, the casting sand can be piled up stably. As described above using Figure 2, a gap 26a is formed between the storage plate 26 and the bottom plate 25 in the storage tank 23, but by forming a slope less than or equal to the angle of repose θ, the casting sand can be stably held in the gap 26a. Figure 3(b) shows the state in which the casting sand is stably held in the gap 26a between the storage plate 26 and the bottom plate 25 in the storage tank 23. Furthermore, in order to prevent the angle of the slope of the casting sand formed in the gap 26a from exceeding the angle of repose θ, the outer diameter of the storage plate 26 should be made sufficiently large relative to the inner diameter of the outlet 25a, or the height of the gap 26a should be made sufficiently small. More specifically, the angle of repose θ of the casting sand, the inner diameter d of the outlet 25a, the outer diameter D of the storage plate 26 and the height h of the gap 26a are as follows: tanθ > 2h / (Dd) You just need to make sure that it satisfies that condition.

[0037] Figure 4 is a cross-sectional view showing the internal structure of the pressure cap 30. As shown, the inside of the pressure cap 30 is hollow, and the bottom surface of the pressure cap 30 is large and open. A through hole 30a is formed on the side of the pressure cap 30, and a nipple 31 protrudes outward from the position of the through hole 30a. The pressure hose 33 is connected to the nipple 31. The rod 32a of the pressing cylinder 32 is attached to the top surface of the pressure cap 30.

[0038] Figure 5 is an explanatory diagram showing the shapes of the mold holder plate 13, the support column 14, the lifting plate 15, and the lower burner 17. As described above using Figure 1, the mold holder plate 13 is a component to which the lower mold 12 is attached to the upper surface, and the lifting plate 15 is a component that moves up and down by the lifting cylinder 18. The mold holder plate 13 is supported by the support column 14 which is erected from the lifting plate 15, and the mold holder plate 13 moves up and down by moving the lifting plate 15 up and down.

[0039] As shown in Figure 5, the lifting plate 15 is a rectangular plate-shaped member made of iron, with a lower burner 17 attached to the center of its upper surface, and cylindrical iron support columns 14 erected at the four corners of the upper surface. Multiple burner nozzles 17a are attached to the upper surface of the lower burner 17, and by igniting the fuel gas flowing out from the burner nozzles 17a, a flame of fuel gas can be formed directed upward. In addition, the upper part of the support column 14 is processed to a smaller diameter to form a cylindrical guide portion 14a, and an annular contact surface 14b is formed where the outer diameter of the support column 14 changes to the outer diameter of the guide portion 14a.

[0040] The mold holder plate 13 is made of iron and has a rectangular plate-like member with a large-diameter circular central window 13a formed in the center. An annular peripheral wall 13b protrudes upward from the periphery of the central window 13a. Guide holes 13c are formed at the four corners of the mold holder plate 13. The inner diameter of the guide holes 13c is smaller than the outer diameter of the support column 14, but larger than the outer diameter of the guide portion 14a. Therefore, when the mold holder plate 13 is lowered from above the lifting plate 15 while the guide portion 14a of the support column 14 is inserted through the four guide holes 13c, the lower surface of the mold holder plate 13 comes into contact with the contact surface 14b of the support column 14, making it possible to support the mold holder plate 13. As a result, the mold holding plate 13 is placed on the contact surface 14b of the support column 14 erected from the lifting plate 15, and is able to move vertically relative to the lifting plate 15 while being guided by the guide portion 14a. In addition, rectangular projections 13d are provided on the left and right sides of the mold holding plate 13. Then, as shown in Figure 1, when the lifting cylinder 18 is lowered, the projections 13d are supported by the support portion 2a of the frame 2.

[0041] The sand core manufacturing apparatus 1 of this embodiment, having the structure described above, manufactures sand cores by filling the space formed by joining the upper mold 11 and the lower mold 12 with casting sand, and then heating the casting sand together with the upper mold 11 and the lower mold 12. Conventionally, when manufacturing sand cores in this way, a certain amount of casting sand spills out after filling, resulting in waste of casting sand. However, this problem is resolved in the sand core manufacturing apparatus 1 of this embodiment by improving upon the conventional method. Below, the operation of the sand core manufacturing apparatus 1 of this embodiment in manufacturing sand cores will be explained in detail, explaining why casting sand was wasted in the conventional method, and then explaining why casting sand is not wasted in this embodiment.

[0042] Figure 6 is an explanatory diagram showing the first half of the operation in which the sand core manufacturing apparatus 1 of this embodiment manufactures sand cores. Figure 7 is an explanatory diagram showing the second half of the operation in which the sand core manufacturing apparatus 1 of this embodiment manufactures sand cores. Note that in Figures 6 and 7, the frame 2 and control unit 50, etc., have been omitted from the illustration to avoid making the diagrams too complex.

[0043] When manufacturing sand cores, as shown in Figure 6(a), the storage tank 23 is moved to a position directly below the hopper 21 by moving the carriage 27 with the horizontal cylinder 28. Then, by opening the opening / closing shutter 22, the casting sand in the hopper 21 is supplied to the storage tank 23. The casting sand supplied to the storage tank 23 is held in the storage tank 23 in the state shown in Figure 3(b). Also, in the state shown in Figure 6(a), the lifting cylinder 18 is lowered to its lowest position, and the pushing cylinder 32 is raised to its highest position. Furthermore, the switching valve 34 is switched to the aforementioned open-to-the-air state.

[0044] Next, as shown in Figure 6(b), the carriage 27 is moved by operating the horizontal cylinder 28 so that the storage tank 23 is directly above the upper mold 11. At this time, the storage tank 23 is directly below the pressure cap 30. Subsequently, as shown in Figure 6(c), the lifting cylinder 18 is used to raise the lifting plate 15, thereby raising the mold holding plate 13 and the lower mold 12, so that the lower mold 12 comes into contact with the lower surface of the upper mold 11. As a result, a space is formed between the upper mold 11 and the lower mold 12. In parallel with the raising of the lifting cylinder 18, the pressure cap 30 is lowered by the pushing cylinder 32. As a result, the storage tank 23 is pushed down by the pressure cap 30, and the bottom surface of the storage tank 23 is pressed against the upper surface of the upper mold 11. Furthermore, a fuel gas flame is constantly formed in the lower burner 17. Therefore, when the lifting plate 15 pushes up the mold holding plate 13, the lower mold 12 attached to the mold holding plate 13 is heated from below by the lower burner 17 of the lifting plate 15.

[0045] Subsequently, when the switching valve 34 is switched to the aforementioned air supply state, pressurized air is supplied to the pressurized cap 30 and the storage tank 23 via the pressurized hose 33. In Figure 6(d), the flow of pressurized air supplied to the pressurized cap 30 and the storage tank 23 via the pressurized hose 33 is shown by thick dashed arrows. The pressurized air supplied to the storage tank 23 in this way is blown out together with the casting sand in the storage tank 23 from the outlet 25a (see Figure 2) that opens on the bottom surface of the storage tank 23. Then, it is filled into the space between the upper mold 11 and the lower mold 12 through the filling port 11b that opens on the upper surface of the upper mold 11 and the filling passage 11c. In addition, the upper mold 11 and the lower mold 12 have multiple vents that allow air to pass through but not casting sand, so that casting sand can be filled into every corner of the space between the upper mold 11 and the lower mold 12.

[0046] After filling the spaces inside the upper mold 11 and lower mold 12 with casting sand, it is then necessary to heat the upper mold 11 from above using the upper burner 16. To do this, the storage tank 23, which was pressed against the upper surface of the upper mold 11, needs to be raised back to its original position. However, since the pressure inside the storage tank 23 and pressure cap 30 is high due to the pressurized air, if the storage tank 23 is raised as is, the casting sand remaining inside the storage tank 23 will be blown out from the outlet 25a of the storage tank 23. Therefore, before raising the storage tank 23, the switching valve 34 is switched to the aforementioned open-to-atmosphere state to release the pressurized air inside the storage tank 23 and pressure cap 30 into the atmosphere, thereby reducing the pressure inside the storage tank 23 and pressure cap 30 to atmospheric pressure.

[0047] Conventionally, the pressure in the storage tank 23 and the pressure cap 30 was reduced to atmospheric pressure before the storage tank 23 was raised. However, in the sand core manufacturing apparatus 1 of this embodiment, the switching valve 34, which has been switched from an air supply state to an open-to-atmosphere state, is further switched to an air suction state. When this is done, the negative pressure generated by the suction device 36 draws out the air from the storage tank 23 and the pressure cap 30, and the pressure in the storage tank 23 and the pressure cap 30 decreases. Figure 7(a) shows how the air is drawn out of the storage tank 23 and the pressure cap 30 by the negative pressure generated by the suction device 36. In this embodiment, negative pressure is generated by supplying pressurized air to the suction device 36. However, negative pressure can be generated using equipment other than the suction device 36, as long as it is possible to draw out the air from the storage tank 23 and the pressure cap 30 by generating negative pressure.

[0048] Then, after creating negative pressure inside the storage tank 23 and the pressure cap 30, the pressure cap 30 is raised using the push cylinder 32. As a result, the storage tank 23, which had been pushed down by the pressure cap 30, rises back to its original position due to the force of a spring (not shown). Figure 7(b) shows the storage tank 23 in its original position. After raising the storage tank 23, the switching valve 34 can be switched to the open-to-atmosphere state. By creating negative pressure inside the storage tank 23 and the pressure cap 30 in this way before raising the storage tank 23, it is possible to prevent casting sand from spilling out of the outlet 25a of the storage tank 23 when it is raised. The reason for this will be explained in detail using a separate diagram.

[0049] Once the storage tank 23 is raised back to its original position, the carriage 27 is moved using the horizontal cylinder 28, as shown in Figure 7(c), so that the upper burner 16 is directly above the upper mold 11. As a result, the upper mold 11 is heated from above by the upper burner 16, and the lower mold 12 is heated from below by the lower burner 17, thereby heating the casting sand filled in the space between the upper mold 11 and the lower mold 12. When the carriage 27 is moved so that the upper burner 16 is directly above the upper mold 11, the storage tank 23 mounted on the carriage 27 moves to a position directly below the hopper 21.

[0050] Then, after a predetermined time has elapsed while the upper mold 11 and lower mold 12 are heated by the upper burner 16 and lower burner 17, the casting sand between the upper mold 11 and lower mold 12 solidifies, forming a sand core. When the lifting plate 15 is lowered using the lifting cylinder 18, the mold holding plate 13 and the lower mold 12 also descend along with it, and the solidified casting sand (sand core) between the upper mold 11 and the lower mold 12 also descends together with the lower mold 12. As the lifting plate 15 is lowered further, the mold holding plate 13 and the lower mold 12 are supported by the support part 2a of the frame 2 (see Figure 1), and from there only the lifting plate 15 descends to the lowest position. Figure 7(d) shows the state when the lifting plate 15 has descended to the lowest position. Once this state is reached, the sand core on top of the lower mold 12 can be removed. Then, after removing the sand core, return to Figure 6(a) and repeat the series of operations described above. In this way, sand cores can be manufactured.

[0051] In this embodiment, the sand core manufacturing apparatus 1 is configured to supply pressurized air into the storage tank 23 to fill the space between the upper mold 11 and the lower mold 12 with casting sand (see Figure 6(d)). Before raising the storage tank 23, the inside of the storage tank 23 is made into negative pressure (see Figure 7(a)), and then the storage tank 23 is raised (see Figure 7(b)). The reason for making the inside of the storage tank 23 into negative pressure before raising it is to prevent the casting sand inside the storage tank 23 from spilling onto the upper mold 11 when the storage tank 23 is raised, thus preventing waste. Below, in order to explain the reason, we will explain why, in conventional methods where the inside of the storage tank 23 is not made into negative pressure, the casting sand inside the storage tank 23 spills out when the storage tank 23 is raised. Based on the above, we will now explain why, in this embodiment, creating negative pressure inside the storage tank 23 prevents the casting sand from spilling out.

[0052] Figure 8 is an explanatory diagram illustrating why casting sand spills out of the storage tank 23 in the conventional method of raising the storage tank 23 without creating negative pressure inside the storage tank 23. Figure 8(a) shows the inside of the storage tank 23 after casting sand has been filled into the spaces inside the upper mold 11 and the lower mold 12. It is assumed that the pressure inside the storage tank 23 has already been returned to atmospheric pressure. As shown in the figure, after filling with casting sand, the area from below the storage plate 26 to the filling passage 11c of the upper mold 11 is also filled with casting sand from the storage tank 23. At this time, the casting sand located below the storage plate 26 is supported by the casting sand filled in the filling passage 11c.

[0053] Therefore, when the storage tank 23 is raised from this state, as shown in Figure 8(b), the casting sand that was below the storage plate 26 falls down and forms a small mound on the filling passage 11c of the upper mold 11. Also, inside the storage tank 23, the casting sand is held in place by forming a slope at the angle of repose around the outlet 25a (see Figure 3). Therefore, in the conventional method, each time the storage tank 23 is raised after filling it with casting sand, the casting sand below the storage plate 26 spills out from the outlet 25a, resulting in the waste of this casting sand. In contrast, in the sand core manufacturing apparatus 1 of this embodiment, after filling with casting sand, the inside of the storage tank 23 is made negatively pressurized before raising the storage tank 23, which prevents the casting sand from spilling out from the outlet 25a.

[0054] Figure 9 is an explanatory diagram illustrating why casting sand can be prevented from spilling out of the outlet 25a by creating negative pressure inside the storage tank 23 before raising the storage tank 23. Figure 9(a) shows the state after casting sand has been filled inside the upper mold 11 and the lower mold 12, and the inside of the storage tank 23 has been created to negative pressure. Immediately after filling with casting sand, the bottom plate 25 of the storage tank 23 is pressed against the upper surface of the upper mold 11, so by sucking out the air inside the storage tank 23, the pressure inside the storage tank 23 can be reduced to negative pressure. In the sand core manufacturing apparatus 1 of this embodiment, negative pressure is created inside the storage tank 23 by switching the switching valve 34 to the air suction state.

[0055] In this state, when the storage tank 23 is raised, the moment the bottom plate 25 of the storage tank 23 separates from the upper surface of the upper mold 11, the air surrounding the storage tank 23 flows forcefully into the storage tank 23 through the gap between the bottom plate 25 and the upper surface of the upper mold 11. The thick dashed arrows shown in Figure 9(b) indicate the flow of air flowing into the storage tank 23. As illustrated, the incoming air enters the storage tank 23 from the outlet 25a of the bottom plate 25 (see Figure 2), then collides with the storage plate 26, changes direction, and passes through the gap 26a (see Figure 2) between the bottom plate 25 and the storage plate 26. As a result, the casting sand that was below the storage plate 26 is sucked into the storage tank 23 by this airflow.

[0056] Furthermore, when air flows in, the negative pressure inside the storage tank 23 decreases, so the force of the incoming air also decreases. Moreover, after switching the switching valve 34 to the open-to-atmosphere state, no more air flows in. However, the casting sand around the outlet 25a is sucked in by the incoming air, forming a slope with a gentler incline than the angle of repose. For this reason, as shown in Figure 9(c), the casting sand can be stably retained inside the storage tank 23 even when the air inflow stops. As a result, even if the storage tank 23 is raised, it is possible to prevent the casting sand from spilling out of the outlet 25a.

[0057] Furthermore, as described above, since the air inside the storage tank 23 is sucked out before raising the storage tank 23, even if the air flow rate sucked in by the suction device 36 is small, if given some time, the storage tank 23 can be made into a negative pressure up to the minimum pressure that the suction device 36 can generate. Then, by raising the storage tank 23, even when using a suction device 36 with a small air flow rate, air can be forcefully sucked in from the outlet 25a of the storage tank 23, and as a result, casting sand spilling out from the outlet 25a can be reliably collected. Of course, if the suction device 36 is capable of sucking in a sufficient flow rate of air, or if a suction pump capable of sucking in a sufficient flow rate of air is used to generate negative pressure, the air inside the storage tank 23 and the pressure cap 30 may be sucked out at the same time as raising the storage tank 23, or immediately after raising the storage tank 23.

[0058] In the sand core manufacturing apparatus 1 of this embodiment, after filling with casting sand, the inside of the storage tank 23 is made negatively pressurized before raising the storage tank 23. This mechanism makes it possible to recover casting sand that would otherwise spill out into the storage tank 23. This is achieved by the control unit 50 appropriately switching the switching valve 34 in accordance with the movement of the lifting cylinder 18, the horizontal cylinder 28, and the pushing cylinder 32. Therefore, the control by which the control unit 50 switches the switching valve 34 in accordance with the movement of the lifting cylinder 18 and the like will be described below.

[0059] Figure 10 is an explanatory diagram illustrating the operation of the control unit 50 mounted on the sand core manufacturing apparatus 1 of this embodiment, which appropriately switches the switching valve 34 in accordance with the movements of the lifting cylinder 18, horizontal cylinder 28, push cylinder 32, and opening / closing shutter 22. In the figure, the operation of the lifting cylinder 18, horizontal cylinder 28, push cylinder 32, and opening / closing shutter 22 is shown as time progresses on the horizontal axis. Furthermore, the switching of the switching valve 34 in accordance with these operations is shown above. Although the opening and closing operation of the opening / closing shutter 22 is explained here as being controlled by the control unit 50, the opening / closing shutter 22 may also be opened and closed by the movement of the carriage 27 when the control unit 50 operates the lifting cylinder 18 to move the carriage 27.

[0060] As described above using Figures 6 and 7, in order to manufacture sand cores with the sand core manufacturing apparatus 1, it is necessary to fill the insides of the upper mold 11 and the lower mold 12 with casting sand (corresponding to Figures 6(a) to (d)). This operation can be expressed using the movements of the lifting cylinder 18, the horizontal cylinder 28, the pushing cylinder 32, and the opening / closing shutter 22 as follows. First, the opening / closing shutter 22 is opened for a predetermined time, then the horizontal cylinder 28 is moved forward, followed by raising the lifting cylinder 18 and lowering the pushing cylinder 32. After that, the switching valve 34 is switched from an open-to-atmosphere state to an air supply state. By doing so, casting sand is filled inside the upper mold 11 and the lower mold 12.

[0061] After filling with casting sand, it is necessary to heat and solidify the casting sand (corresponding to Figure 7(c)). Before that, however, it is necessary to create negative pressure inside the storage tank 23, raise the storage tank 23 (corresponding to Figures 7(a) and (b)), and then retract the carriage 27 to its original position. This operation can be described using the movements of the lifting cylinder 18, horizontal cylinder 28, push cylinder 32, and opening / closing shutter 22 as follows: First, the switching valve 34 is switched from an air supply state to an open-to-atmosphere state to return the pressure inside the storage tank 23 and pressure cap 30 to atmospheric pressure. Then, the switching valve 34 is switched from an open-to-atmosphere state to an air intake state to create negative pressure inside the storage tank 23 and pressure cap 30. After that, the push cylinder 32 is raised, and then the horizontal cylinder 28 is retracted. In this way, the casting sand in the upper mold 11 and the lower mold 12 is heated from above and below by the upper burner 16 and the lower burner 17, and after a predetermined time, the casting sand solidifies and a sand core is formed. Then, the lifting cylinder 18 is lowered to remove the sand core. Note that some or all of the above series of controls performed by the control unit 50 in this embodiment correspond to the "powder and granular material filling method" or "molded product manufacturing method" in the present invention.

[0062] B. Variant: In the sand core manufacturing apparatus 1 of the above-described embodiment, the magnitude of the negative pressure that the suction device 36 can generate is considered more important than the flow rate of air that the suction device 36 can suck up in order to reliably recover the casting sand. This is because, even if the flow rate of air that the suction device 36 can suck up is small, if the negative pressure that can be generated is large, the pressure inside the storage tank 23 can be sufficiently reduced by sucking out the air inside the storage tank 23 over a short period of time, making it possible to reliably recover the casting sand. Therefore, it is desirable to use a suction device 36 that can generate a slightly larger negative pressure. However, if the negative pressure generated by the suction device 36 is too large, there is a risk that the casting sand filled in the space between the upper mold 11 and the lower mold 12 will be sucked out by the negative pressure inside the storage tank 23 when the inside of the storage tank 23 is made negative.

[0063] Furthermore, while the sand core manufacturing apparatus 1 can produce various types of sand cores by changing the mold used and the type of casting sand, even when the same negative pressure is applied, the filling casting sand may or may not be sucked out depending on the type of sand core being manufactured. As a result, it becomes necessary to change the negative pressure generated by replacing the suction device 36 each time the type of sand core being manufactured is switched, which may reduce manufacturing efficiency.

[0064] However, by changing the timing of raising the storage tank 23 after filling with casting sand, it is possible to prevent the filled casting sand from being sucked out even if the negative pressure generated by the suction device 36 is too large.

[0065] Figure 11 is an explanatory diagram showing how the modified sand core manufacturing apparatus 1 raises the storage tank 23 at the changed timing when the negative pressure generated by the suction device 36 is too large. Figure 11(a) shows the state immediately after filling with casting sand. At this stage, the inside of the storage tank 23 is still pressurized, so if the storage tank 23 is raised, the casting sand inside the storage tank 23 will blow out through the gap created between the bottom plate 25 of the storage tank 23 and the upper molding die 11. Therefore, the storage tank 23 cannot be raised yet.

[0066] However, after switching the switching valve 34 to the open-to-atmosphere state and reducing the pressure inside the storage tank 23 to atmospheric pressure, raising the storage tank 23 will only cause the casting sand inside the outlet 25a to spill out, and there is no risk of the casting sand inside the storage tank 23 being blown out. Also, immediately after switching the switching valve 34 to the air-suction state and starting air suction by the suction device 36, the negative pressure inside the storage tank 23 is not yet considered to be very large. Therefore, it is considered possible to reduce the amount of casting sand spilling out from the outlet 25a by raising the storage tank 23 at this stage.

[0067] Therefore, in the modified sand core manufacturing apparatus 1, as shown in Figure 11(b), the storage tank 23 is raised when the pressure inside the storage tank 23 reaches atmospheric pressure, or before the negative pressure becomes large. In this way, by separating the bottom plate 25 of the storage tank 23 from the upper mold 11 before the negative pressure inside the storage tank 23 becomes large, even if the negative pressure inside the storage tank 23 increases afterward, air is simply drawn in through the gap between the bottom plate 25 and the upper mold 11, and a large negative pressure is not applied to the filling passage 11c of the upper mold 11. For this reason, even if the negative pressure generated by the suction device 36 is too large, the filled casting sand will not be sucked out. Thus, in the modified sand core manufacturing apparatus 1, even if the negative pressure that can be generated by the suction device 36 becomes excessive due to switching the type of sand core to be manufactured, it is possible to continue manufacturing sand cores without changing the negative pressure generated by the suction device 36.

[0068] Although the sand core manufacturing apparatus 1 of this embodiment and its modified form has been described above, the present invention is not limited to the above embodiment and its modified form, and can be implemented in various forms without departing from the spirit of the invention.

[0069] For example, in the sand core manufacturing apparatus 1 of this embodiment and its modified form described above, the bottom plate 25 of the storage tank 23 is pressed against the upper surface of the upper mold 11 by lowering the storage tank 23. However, the upper mold 11 and the lower mold 12 may be raised to press the upper surface of the upper mold 11 against the bottom plate 25 of the storage tank 23, and then casting sand may be filled into the interiors of the upper mold 11 and the lower mold 12. [Explanation of Symbols]

[0070] 1...Sand core manufacturing apparatus, 2...Frame, 2a...Support section, 10...Casting sand solidification section, 11...Upper mold, 11a...Recess, 11b...Filling port, 11c...filling passage, 12...lower mold, 12a...recess, 13...Molding mold holding plate, 13a...Central window, 13b...Surrounding wall, 13c... Guide hole, 13d... Projection, 14... Support column, 14a... Guide section 14b... Contact surface, 15... Lifting plate, 16... Upper burner, 17...Lower burner, 17a...Burner nozzle, 18...Lifting cylinder, 20... Casting sand filling section, 21... Hopper, 22... Opening / closing shutter, 23...Storage tank, 24...Main body, 24a...Supply port, 25...Bottom plate, 25a...Outlet, 26...Storage plate, 26a...Gap 27...Carriage, 28...Horizontal cylinder, 30...Pressure cap, 30a...Through hole, 31...Nipple, 32...Push cylinder, 32a...rod, 33...pressure hose, 34...switching valve 35... Suction hose, 36... Suction device, 36a... Supply nipple, 50... Control unit.

Claims

1. In a powder filling apparatus for filling granular or powdery materials into the internal space of a mold, A storage tank in which the aforementioned granular material is stored, The outlet from which the granular material in the storage tank flows out of the storage tank, A pressurized air supply unit that supplies pressurized air into the storage tank, A negative pressure generating unit that creates negative pressure inside the storage tank by drawing air out of the storage tank, A control unit that controls the operation of the pressurized air supply unit and the negative pressure generation unit. Equipped with, The control unit, With the outlet in contact with the filling port of the mold, the pressurized air supply unit is operated to blow out the powder and granular material from the outlet along with the pressurized air, thereby filling the inside of the mold with the powder and granular material, after which the operation of the pressurized air supply unit is stopped. When the outlet separates from the filling port, the negative pressure generating unit is activated to draw the powder falling from the outlet into the storage tank along with the air outside the outlet. A powder and granular material filling apparatus characterized by the following features.

2. In the powder and granular material filling apparatus according to claim 1, The control unit, after stopping the operation of the pressurized air supply unit, operates the negative pressure generation unit from the point before the outlet separates from the filling port of the mold. A powder and granular material filling apparatus characterized by the following features.

3. In the powder and granular material filling apparatus according to claim 1, The storage tank is equipped with an atmospheric vent that opens the inside to the atmosphere, After stopping the operation of the pressurized air supply unit, the control unit operates the atmospheric release unit before the outlet separates from the filling port of the mold, and stops the operation of the atmospheric release unit and operates the negative pressure generation unit at the time when the outlet separates from the filling port of the mold or after the separation. A powder and granular material filling apparatus characterized by the following features.

4. In a molded product manufacturing apparatus for producing a molded product by filling a mold with granular or powdery material into the internal space of a mold and then solidifying the granular material inside the mold, A storage tank in which the aforementioned granular material is stored, The outlet from which the granular material in the storage tank flows out of the storage tank, A moving part that switches between a state in which the outlet is in contact with the filling port of the molding die and a state in which the outlet is separated from the filling port by moving at least one of the molding die or the outlet, A pressurized air supply unit that supplies pressurized air into the storage tank, A negative pressure generating unit that creates negative pressure inside the storage tank by drawing air out of the storage tank, The solidification section inside the mold solidifies the powder and granules, A control unit that controls the operation of the moving unit, the solidification unit, the pressurized air supply unit, and the negative pressure generation unit. Equipped with, The control unit, After bringing the outlet into contact with the filling port by operating the aforementioned movable part, By operating the pressurized air supply unit, the powder and granular material are blown out from the outlet along with the pressurized air to fill the inside of the mold with the powder and granular material, and then the operation of the pressurized air supply unit is stopped. After the operation of the pressurized air supply unit is stopped, the movable unit is operated to separate the outlet from the filling port, and when separating the outlet from the filling port, the negative pressure generating unit is operated to suck the powder falling from the outlet into the storage tank together with the air outside the outlet, The granular material inside the mold is solidified by operating the solidification unit. A molded product manufacturing apparatus characterized by the following features.

5. In a method for filling a mold with granular or powdery material, in which granular or powdery material stored in a storage tank is discharged from an outlet to fill the internal space of a mold, With the outlet in contact with the filling port of the mold, pressurized air is supplied into the storage tank, causing the powder and granular material to be blown out from the outlet along with the pressurized air, thereby filling the inside of the mold with the powder and granular material, after which the supply of pressurized air is stopped. After the supply of pressurized air is stopped, when the outlet separates from the filling port, the process involves drawing air from the storage tank, thereby drawing the powder falling from the outlet into the storage tank together with the air outside the outlet. A method for filling powders and granules, comprising the following features.

6. In a method for manufacturing molded products, in which granular or powdery material stored in a storage tank is discharged from an outlet to fill the space inside a mold, and then the granular material is solidified inside the mold, a molded product is manufactured using the granular material. The process of bringing the outlet into contact with the filling port of the molding die, The process involves supplying pressurized air into the storage tank, thereby blowing out the powder and granular material from the outlet along with the pressurized air to fill the inside of the mold with the powder and granular material, and then stopping the supply of the pressurized air. The process involves drawing the air inside the storage tank out while moving the outlet away from the filling port, thereby drawing the powder and granular material falling from the outlet into the storage tank together with the air outside the outlet. A step of solidifying the powder inside the mold A method for manufacturing molded products, comprising the following features.

Citation Information

Patent Citations

  • Method for manufacturing core for casting

    JP2002192305A