DISPENSER AND NOZZLE FOR DISCHARGING MIXTURE OF GAS AND PASTE MATERIAL AND MECHANICAL FOAMING DEVICE
20230110347 · 2023-04-13
Inventors
Cpc classification
B05C11/1036
PERFORMING OPERATIONS; TRANSPORTING
B29B7/7414
PERFORMING OPERATIONS; TRANSPORTING
B29C44/022
PERFORMING OPERATIONS; TRANSPORTING
B05C5/0216
PERFORMING OPERATIONS; TRANSPORTING
B05B7/0031
PERFORMING OPERATIONS; TRANSPORTING
B29C44/3442
PERFORMING OPERATIONS; TRANSPORTING
B29C44/50
PERFORMING OPERATIONS; TRANSPORTING
B29C44/461
PERFORMING OPERATIONS; TRANSPORTING
B29B7/728
PERFORMING OPERATIONS; TRANSPORTING
B05B12/008
PERFORMING OPERATIONS; TRANSPORTING
B29B7/7419
PERFORMING OPERATIONS; TRANSPORTING
B29B7/726
PERFORMING OPERATIONS; TRANSPORTING
International classification
B05B7/00
PERFORMING OPERATIONS; TRANSPORTING
B05B12/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A dispenser used for discharging a mixture of gas and a paste material includes: a nozzle part provided in a tip end part of a body and having a tip end opening through which the mixture is discharged; a flow path extending from a mixture introduction part to the tip end opening through a hollow space of the nozzle part; a needle part movable in the flow path of the nozzle part to open and close the flow path; a driving part that drives the needle part; and a stopper part that limits an operation range of the needle part. The nozzle part has a tapered section in which an inside diameter of the flow path of the nozzle part decreases toward the tip end opening. Also provided is a stopper position adjusting part that adjusts a stop position defined by the stopper part.
Claims
1. A dispenser used for discharging a mixture of gas and a paste material, the dispenser comprising: a nozzle part provided in a tip end part of the dispenser and having a tip end opening through which the mixture is discharged; a flow path for the mixture extending from an introduction part for the mixture to the tip end opening through an inside of the nozzle part; a needle part movable in the flow path of the nozzle part to open and close the flow path; and a driving part that drives the needle part, wherein the nozzle part has a tapered section in which an inside diameter of the flow path of the nozzle part decreases toward the tip end opening, the inside diameter being relative to an operation range of a tip end of the needle part, as a result of the tip end of the needle part abutting against a closed position of the tapered section, the flow path for the mixture is closed, whereas as a result of the tip end of the needle part moving away from the closed position, the flow path is opened, and the dispenser further comprises a stopper part that limits a moving range of the tip end of the needle part to a range from the closed position to a stop position located rearward relative to the closed position.
2. The dispenser according to claim 1, further comprising: a stopper position adjusting part that adjusts a position of the stopper part to change the stop position.
3. The dispenser according to claim 2, wherein a rearmost position of the stop position adjusted by the stopper position adjusting part is a position distant from the closed position by a distance equal to or longer than four times a diameter of the tip end opening.
4. The dispenser according to claim 2, wherein as the stopper position adjusting part, the stopper part has a rod screwed into a body of the dispenser in an axial direction, a position of the rod in the axial direction is adjusted according to an amount of being screwed in the body, and the needle part is stopped, as a result of a tip end part of the rod abutting against a basal end part of the needle part.
5. The dispenser according to claim 4, wherein the stopper position adjusting part further includes an electric motor disposed to rotate the rod, and the stop position is set by controlling a rotation amount of the rod rotated by the electric motor.
6. The dispenser according to claim 5, further comprising: a controller that controls the stop position; and a pressure sensor that measures pressure of the mixture in the flow path, wherein the controller sets the stop position in such a manner that the pressure measured by the pressure sensor falls in a desired pressure range, under a condition where the paste material and a discharge flow amount of the mixture are given.
7. The dispenser according to claim 4, wherein the stopper position adjusting part has a mechanism that makes the rod manually rotatable.
8. The dispenser according to claim 7, further comprising: a pressure sensor that measures pressure of the mixture in the flow path; and a display unit that displays the pressure measured by the pressure sensor.
9. The dispenser according to claim 1, wherein in the position distant rearward from the closed position by a distance four times the diameter of the tip end opening, the inside diameter of the flow path is 1.1 to 3 times larger than the diameter of the tip end opening.
10. A nozzle connectable to a dispenser used for discharging a mixture of gas and a paste material, the nozzle comprising: a nozzle part having a basal end opening through which the mixture is introduced and a hollow space penetrating inside so as to form a tip end opening through which the mixture is discharged; and a needle part inserted into the hollow space through the basal end opening, wherein the nozzle part has a tapered section in which an inside diameter of the hollow space decreases toward the tip end opening, and as a result of a tip end of the needle part abutting against a closed position of the tapered section, a flow path for the mixture is closed, whereas as a result of the tip end of the needle part moving away from the closed position, the flow path is opened.
11. The nozzle according to claim 10, wherein in a position distant rearward from the closed position by a distance four times a diameter of the tip end opening, the inside diameter of the hollow space is 1.1 to 3 times larger than the diameter of the tip end opening.
12. A mechanical foaming device that discharges a mixture of gas and a paste material, the mechanical foaming device comprising: a gas conduit used for transporting the gas; a material conduit used for transporting the paste material; a connection part to which the gas conduit and the material conduit are connected; a mixing part that mixes together the gas and the paste material coming out of the connection part; and the dispenser according to claim 1 that receives a supply of the mixture of the gas and the paste material coming out of the mixing part.
13. The mechanical foaming device according to claim 12, wherein the connection part is at least one piston pump, the gas conduit and the material conduit are connected to a cylinder of the piston pump, and into a cylinder space formed by raising a piston of the piston pump, the gas transported through the gas conduit and the paste material transported through the material conduit are supplied, so that the gas and the paste material in the cylinder space are pumped forward to the mixing part as a result of lowering the piston.
14. The mechanical foaming device according to claim 12, wherein the connection part is a part in which the gas conduit is connected to the material conduit via a piston pump and an opening/closing valve, and into a cylinder space formed by raising a piston of the piston pump while the opening/closing valve is closed, the gas transported through the gas conduit is supplied, so that the gas in the cylinder space is compressed as a result of lowering the piston, and so that the compressed gas is mixed into the paste material transported through the material conduit as a result of opening the opening/closing valve.
15. The mechanical foaming device according to claim 12, further comprising: a constant flow amount device that supplies, to the dispenser, the mixture of the gas and the paste material mixed by the mixing part, in a constant flow amount.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
DESCRIPTION OF EMBODIMENTS
[0028] The following will describe a dispenser according to one embodiment of the present invention, with reference to the drawings.
[0029]
[0030] The mechanical foaming device 100 includes a gas conduit 107 transporting gas supplied from a gas supply source 101 (e.g., factory-pressured air); a material conduit 108 transporting a paste material supplied from a paste material supply source 102 (e.g., a pail pump); a connection part 103 to which the gas conduit 107 and the material conduit 108 are connected; a mixer 104 that mixes together the gas and the paste material coming out of the connection part 103; and a constant flow amount device 105 that causes a flow of the mixture formed by the mixer 104 to be in a constant flow amount. Further, the mechanical foaming device 100 includes a robot 106 and the dispenser 1 having a nozzle part 2 and being attached to an arm of the robot 106. The dispenser 1 discharges, from the nozzle part 2, the mixture of the gas and the paste material supplied from the constant flow amount cylinder 105. The discharged mixture is foamed and applied to the surface. As a result of the robot 106 moving the dispenser 1 along a controlled track during the discharge from the nozzle part 2, a foamed body applied from the nozzle part 2 forms the foam beads 110 on the surface.
[0031] In this situation, the paste material is liquid resin (which may be a hot melt material) that has fluidity and is obtained by adding a hardening agent, a hardening accelerator, a filler, a stabilizer, an additive and/or the like to reactive liquid resin such as an isocyanate, alkoxy silyl, acryl, epoxy, or the like. When being discharged from the dispenser, the mixture of the paste material and the gas is in a state in which the gas is micro-dispersed in the paste material. After that, when the resin is hardened by thermosetting, moisture curing, UV curing, or the like, the foamed body is formed.
[0032] As shown in
[0033] The connection part 103 in the abovementioned mode of the present invention does not necessarily need to have two piston pumps. It is acceptable to use one piston pump or three or more piston pumps.
[0034] Further, the mixer 104 may be a dynamic mixer or a static mixer. Alternatively, it is also acceptable to use a simple pipe without using a mixer. The reason is that, even in the pipe, bubbles of the gas are micro-dispersed while the material is being transported through the pipe, and it is possible to form a mixture in which the bubbles are dispersed in the material.
[0035]
[0036] Because the cylinder space formed at the time of raising the piston of the piston pump 113 has a prescribed capacity, it is possible to keep constant the amount of the gas to be mixed into the paste material at the time of lowering the piston, by adjusting the amount of the gas forwarded by the gas supply device 116 so that the pressure of the gas in the cylinder space is at a prescribed level. In this situation, by further keeping constant the flow amount of the paste material flowing through the material conduit 108 by using a constant flow amount pump 109, it is possible to control the proportion between the amount of the paste material and the amount of the gas to be constant and to thus achieve a desired foam expansion ratio. In this situation, it is also possible to control the proportion between the amount of the paste material and the amount of the gas to be constant, by measuring the flow amount of the paste material flowing through the material conduit 108 and adjusting the gas amount in accordance with the flow amount of the paste material. Further, the flow amount of the paste material forwarded by the constant flow amount pump 109 may fluctuate, as long as the ratio between a total amount of the paste material and a total amount of the gas to be mixed therewith in a certain period of time is substantially constant. Alternatively, control may be exercised to substantially achieve a certain target value.
[0037]
[0038] Possible examples of the connection point of the present invention are not limited to the examples of 103b and 103c described above. Possible examples include a mode in which high-pressure gas is introduced by structuring the gas supply source 101 with a high-pressure tank or the like, for example, while the piston pump 113 and the gas supply device 116 are omitted. Further, the constant flow amount pump 109 may be provided on either the upstream side or the downstream side of the connection point 115.
[0039] Next, a configuration of the dispenser 1 will be explained, with reference to
[0040] As show in
[0041] The nozzle part 2 has formed therein a hollow space 20 penetrating from the basal end to the tip end of the nozzle part 2. As a result, a basal end opening 21 is formed at the basal end of the nozzle part 2, while a tip end opening 22 is formed at the tip end of the nozzle part 2. Further, on the inner surface of the nozzle part 2, a tapered section 23 is formed in which the inside diameter of the hollow space 20 on each cross-sectional plane perpendicular to the axial direction decreases toward the tip end opening 22. In the hollow space 20 of the nozzle part 2, the needle part 3 is inserted. As explained later, as a result of the needle part 3 moving up and down on the inside of the hollow space 20, the nozzle part 2 is opened and closed.
[0042] As shown in
[0043] At the basal end of the nozzle body 24, the abovementioned basal end opening 21 is formed. On the outer circumference of the basal end, an engagement part 26 for attaching the nozzle part 2 while being engaged with the body 11 of the dispenser 1 is formed. At the farthest tip end of the nozzle tip end part 25, a discharge port 29 having the tip end opening 22 is formed. The inner surface of the discharge port 29 is formed to have an inside dimeter that is equal, in the whole length thereof, to the inside diameter of the tip end opening 22. In other words, the tapered section 23 ends at the most rearward edge of the inner surface of the discharge port 29.
[0044] The needle part 3 for opening and closing the nozzle part 2 includes, as shown in
[0045] The diameter of a tip end 35 (in the vicinity of the farthest tip end) of the tip end part 32 is formed to be equal to the inside diameter of the discharge port 29 or to be equal to the inside diameter of the tapered section 23 positioned in the vicinity of the discharge port 29. Accordingly, when the needle part 3 is inserted in the hollow space 20 of the nozzle part 2 and advanced, the tip end 35 of the needle part 3 is engaged in a closed position T1 (
[0046] In the nozzle part 2 according to the present embodiment, the inclination rate of the tapered section 23 is determined in such a manner that, as shown in
[0047] Returning to the description of
[0048] Further, the body 11 includes: a support part 19 that slidably supports the needle part 3 in a hermetic state; a cylinder part 7 formed behind (above in the drawing) the support part 19; the piston part 8 that moves up and down within the cylinder part 7; and a compressed air port 9 through which compressed air is put into and taken out of the space formed between the piston part 8 and the bottom face of the cylinder part 7. With the piston part 8, the large diameter part 33 formed in the vicinity of the basal end of the needle part 3 is fitted, so that the basal end part 31 of the needle part 3 protrudes upward from the piston 8. The piston part 8 is biased downward by a spring (not shown) toward the position shown in
[0049] Through the compressed air port 9, when the compressed air is pumped into the space formed between the piston part 8 and the bottom face of the cylinder part 7, the piston part 8 rises against the spring force due to the pressure from the compressed air. In conjunction with the rise, the needle part 3 fitted with the piston part 8 also rises, so that the tip end of the nozzle part 2 moves away from the closed position T1, which makes a transition from the closed state shown in
[0050] When the mixture of the gas and the paste material is supplied through the introduction port 5, the mixture passes through the flow path 4 and reaches the vicinity of the tip end opening 22 of the nozzle part 2. When the needle part 3 has retreated upward to open the tip end opening 22, the mixture is discharged from the tip end opening 22 and is applied to the surface as a foamed body. When the needle part 3 is moved downward, because the tip end of the needle part 3 closes the tip end opening 22, the flow path 4 is closed so that the mixture stops being discharged.
[0051] Further, provided above the cylinder part 7 is a stopper support part 16 that defines the top face of the cylinder part 7. The stopper support part 16 has formed therein a penetrating hole 16a extending in the axial direction. A screw thread is formed on the inner surface of the penetrating hole 16a. A rod 10 on which a screw thread 10a is formed is screwed into the penetrating hole 16a. A tip end part 14 of the rod 10 protrudes into the cylinder part 7. When the needle part 3 is raised by a prescribed distance, the basal end part 31 of the needle part 3 abuts against the tip end part 14 of the rod 10 and stops the needle part 3 from rising further. In other words, the stopper support part 16, the rod 10, and the tip end part 14 thereof function as a stopper that restricts the operation range of the needle part 3.
[0052] It is possible to change the position of the rod 10 in the axial direction in accordance with the amount (hereinafter, “screw-in amount”) by which the stopper support part 16 is screwed into the penetrating hole 16a. Accordingly, it is possible to adjust the operation range of the needle part 3 in accordance with the screw-in amount of the rod 10. It can be observed that, as shown in
[0053] The screwing of the rod 10, i.e., the adjustment of the operation range of the needle part 3 may be performed manually; however, in the present embodiment, an electric stopper position adjusting part is employed as shown in
[0054] As shown in detail in
[0055] Further, the dispenser 1 further includes a controller 17 that controls the electric motor part 18 so as to adjust the position of the tip end part 14 of the rod 10, i.e., the operation range of the needle part 3 (3b). Although the controller 17 is arranged in a control panel of the mechanical foaming device 100 in
[0056] The nozzle part 2 and the needle part 3 have thus been described as embodiments of the present invention; however, the present invention is not limited to these examples. Next, while the nozzle part 2 and the needle part 3 described above are regarded as a first modification example, a nozzle part and a needle part according to a second modification example will be explained, with reference to
[0057] As shown in
[0058] In the nozzle part 2b according to the second modification example, as shown in
[0059] Next, effects of one embodiment of the present invention will be explained.
[0060] A mixture in which gas and a paste material are micro-dispersed is supplied to the introduction port 5 of the dispenser 1 from the mechanical foaming device 100. The introduced mixture passes through the flow path 4 and reaches the vicinity of the tip end opening 22 (22b) of the nozzle part 2 (2b). When the dispenser 1 is brought to a discharge position, the robot 106 introduces compressed air to the cylinder 7 through the compressed air port 9. Due to the introduced compressed air, the piston 8 rises so that the tip end 35 (35b) of the needle part 3 (3b) moves away from the closed position T1 (T1'), and the flow path 4 reaching the stopper tip end opening 22 (22b) changes from the closed state to the open state. The basal end part 31 (31b) of the needle part 3 (3b) abuts against the tip end part 14 of the rod 10 and stops.
[0061] In this situation, the foamed body passes through the open flow path 4 and is discharged from the tip end opening 22 (22b) to be applied to a surface as the foam beads 110. In this situation, the mixture passing through the flow path 4 is reduced in pressure when the tip end opening 22 (22b) is opened, but there is no drastic change in the inside diameter or the pressure while the mixture passes through the tapered section 23 (23b). Also, the mixture is able to maintain relatively high pressure until immediately before being discharged. Accordingly, it is possible to avoid the situation where the bubbles become large due to aggregation caused by the pressure getting lower during the passing through the nozzle. It is therefore possible to keep small the foamed cells of the foamed body after being discharged. Also, because the bubbles are prevented from becoming large, it is possible to inhibit the bubbles from breaking and to thus stabilize the foam expansion ratio. In other words, it is possible to apply the foam beads that have a desired foam expansion ratio and in which the bubbles are evenly dispersed. The desired foam expansion ratio is preferably 3 times or more and may be 3.5 times, 4 times, or 5 times. Further, variance of the foam expansion ratio is 10% or lower and is preferably 5%. The present invention realizes the desired foam expansion ratio and is also able to keep the variance thereof within the preferable range. Further, with the tapered section 23 (23b), because it is possible to maintain the pressure of the mixture relatively high until immediately before being discharged, there is no need to supply the paste material to the dispenser 1 at extremely high pressure. It is therefore possible to proactively prevent clogging of the material and reactions of the mixture before being discharged.
[0062] The pressure of the mixture at the time of being discharged has a certain relationship not only with the viscosity of the paste material and the discharge flow amount of the mixture, but also with a needle gap amount, which is a value indicating an operation range of the needle part 3 (3b). As shown in
[0063]
[0064] The graph in
[0065] Accordingly, it means that, when the viscosity of the paste material to be used is given, the needle gap amount of the needle part 3 (3b) should be adjusted so as to achieve a desirable level of pressure that will exert the abovementioned advantage effect with the used dispenser, with respect to the discharge flow amount of the mixture. For this purpose, the controller 17 is configured to calculate the position T2 (T2') within the nozzle part 2 (2b) in which the tip end 35 (35b) of the needle part 3 (3b) forms the needle gap amount achieving the desired level of pressure, to further calculate the position of the tip end part 14 of the rod 10, i.e., the screw-in amount of the rod 10, corresponding to the position T2 (T2’), and to control the rotation of the electric motor 50 in the electric motor part 18 to rotate the rod 10 with the calculated screw-in amount.
[0066] Preferably, the controller 17 exercises feedback control on the needle gap amount by controlling the electric motor 50 so that the pressure of the mixture in the flow path 4 detected by the pressure sensor 15 falls within a desirable pressure range.
[0067] Further, as explained above, when the screwing of the rod 10, i.e., the operation range of the needle part 3 (3b) is adjusted manually without using the electric motor, the controller 17 may be omitted. In that situation, preferably, a display device displaying the pressure detected by the pressure sensor 15 may be provided, so that the user is able to adjust the operation range of the needle part 3 (3b) while looking at the displayed pressure level.
[0068] The one embodiment of the present invention has thus been explained. The present invention, however, is not limited to the example described above. It is possible to arbitrarily modify the present invention as appropriate, within the scope thereof.
[0069] For example, in the example in
[0070] Further, as the mechanisms driving the needle part 3 or 3b, the example described above employs the raising mechanism of the piston 8 using the compressed air introduced to the inside of the cylinder 7 through the compressed gas port 9 and the lowering mechanism of the spring (not shown); however, it is also acceptable to employ raising and lowering mechanisms for the needle part 3 or 3b using an electric motor. As for the mechanism of the stopper position adjusting part, the present invention is not limited to the example using the screwing of the rod as shown in
Reference Signs List
[0071] 1: dispenser [0072] 2, 2b: nozzle part [0073] 3, 3b: needle part [0074] 4: flow path [0075] 5: introduction port [0076] 6: passage extending from the introduction port 5 to the inside of the body 11 [0077] 7: cylinder part [0078] 8: piston part [0079] 9: compressed air port [0080] 10: rod [0081] 10a: screw thread of the rod [0082] 11: body of the dispenser [0083] 12: rotation transmitting part [0084] 13: basal end part of the rod [0085] 14: tip end part of the rod [0086] 15: pressure sensor [0087] 16: stopper support part [0088] 16a: penetrating hole with the screw thread [0089] 17: controller [0090] 18: electric motor part [0091] 19: support part of the needle part [0092] 20, 20b: hollow space [0093] 21, 21b: basal end opening [0094] 22, 22b: tip end opening [0095] 23, 23b: tapered section [0096] 24, 24b: nozzle body [0097] 25, 25b: nozzle tip end part [0098] 26, 26b: engagement part of the nozzle body with the dispenser body [0099] 27, 27b: engagement part of the nozzle body [0100] 28, 28b: engagement part of the nozzle tip end part [0101] 29, 29b: discharge port [0102] 30, 30b: needle body [0103] 31, 31b: basal end part of the needle part [0104] 32, 32b: tip end part of the needle part [0105] 33, 33b: large diameter part [0106] 34, 34b: axial-direction groove [0107] 35, 35b: tip end of the tip end part [0108] 50: electric motor [0109] 51: reduction gear [0110] 52: output shaft of the reduction gear 51 [0111] 53: rotation plate [0112] 54: cylindrical projection [0113] 100: mechanical foaming device [0114] 101: gas supply source [0115] 102: paste material supply source [0116] 103: piston pump [0117] 104: mixer [0118] 105: constant flow amount cylinder [0119] 106: robot [0120] 107: gas conduit [0121] 108: material conduit [0122] 109: constant flow amount pump [0123] 110: foam beads [0124] 111, 112, 113: piston pump [0125] 114: valve [0126] 115: connection point [0127] 116: gas supply device