A preferred embodiment of a blasting device according to the present invention will be described in detail hereinafter in accordance with the attached drawings.
As shown in these drawings, the blasting device 10 is constituted of a cylindrical container 12, a suction pipe 14, a motor (rotary drive part) 16, a hose 18, an ejector nozzle 20, an air compressor 22, a negative pressure sensor (pressure sensor) 24, a valve 26, a control part 28 and the like.
The container 12 is installed on a seat 30, and a sponge blast medium 32 that is a blast medium is stored in it. By providing casters at lower portions of three leg portions 31, 31 and 31 of the seat 30, the container 12 can be easily moved to a desired position. As a blast medium, a sponge blast 32 is shown as an example, but the blast medium is not limited to this, and it may be other blast media such as sand and steel.
The suction pipe 14 is inserted into the container 12 along a center axis P of the container 12, and is rotatably supported via a bearing 36 by a plate 34 in the shape of a cross which is fixed to an upper opening of the container 12 by screws. At a lower portion of the suction pipe 14, a lower suction port 38 is bent at the right angle as shown in
As shown in
A base end portion 18A of the hose 18 is connected to an upper portion of the suction pipe 14 via a rotary joint 48, and an ejector nozzle 20 is connected to a tip end portion of the hose 18. The base end portion 18A of the hose 18 has an ejector structure (
The ejector nozzle 20 is of a gun type having a lever (trigger) 52, and is connected to the air compressor 22 via an air hose 54. When an operator triggers the lever 52, a nozzle (not shown) incorporated in the ejector nozzle 20 is opened, and thereby, the compressed air from the air compressor 22 is introduced into the ejector nozzle 20. By the ejector effect caused by this, the sponge blast medium 32 in the container 12 is sucked into the ejector nozzle 20 through the suction pipe 14 and the hose 18, and is ejected from an ejection port 56 of the ejector nozzle 20 together with the compressed air.
A negative pressure sensor 24 is provided near a seal 58 which shields the rotary joint 48 and the base end portion 18A of the hose 18, and is mounted to a position at which it can measure the negative pressure inside the suction pipe 14. The information indicating the negative pressure measured by the negative pressure sensor 24 is outputted to a control part 28. The control part controls the rotational frequency of the motor 16 and opening and closing of the valve 26 based on the information.
An operation of the blasting device 10 constituted as described above will be described next.
First, the blasting device 10 of the embodiment uses the air compressor 22 which sucks the sponge blast medium 32 by negative pressure and ejects it instead of a large-sized blower conventionally used in order to reduces the number of setup process steps. Thereby, the compact and simple blasting device 10 is provided.
Specifically, the blasting device 10 of the embodiment rotates the suction pipe 14 at a predetermined rotational frequency by the drive force of the motor 16 in the sponge blast medium 32 stored in the container 12. In this case, the sponge blast medium 32 becomes the resistance, and large rotational torque is required for rotation of the suction pipe 14. Therefore, the operation of advancing the lower port 38 to a place where the sponge blast medium 32 is removed while rotating it, in a word, is performed while sucking the sponge blast medium 32 from the lower suction port 38 of the suction pipe 14, by using the ejector effect which is caused by supplying the compressed air to the ejector nozzle 20 from the air compressor 22.
The sponge blast medium 32 sucked by the ejector effect is guided to the hose 18 connected to the suction pipe 14 through the rotary joint 48, and is ejected from the ejection port 56 of the ejector nozzle 20.
According to the blasting device 10 constituted like this, the air compressor 22 is used instead of a large-sized blower as described above, and the structure of sucking the sponge blast medium 32 by negative pressure by rotating the suction pipe 14 in the container 12 is adopted. Therefore, the blasting device 10 is favorable for a blasting operation for a region with a small area since the number of setup process steps can be significantly reduced, and the blasting device 10 is easy to carry.
When the rotational speed of the suction pipe 14 is higher than the suction rate of the sponge blast medium 32, the suction pipe 14 is clogged with the sponge blast medium 32, and the negative pressure in the suction pipe 14 becomes too high. Therefore, it is necessary to rotate the suction pipe 14 while keeping proper negative pressure.
In the blasting device 10 of this embodiment, the control part 28 controls the motor 16 based on the negative pressure inside the suction pipe 14 which is measured by the negative pressure sensor 24, and controls the rotational frequency of the suction pipe 14 to be the rotational frequency at which the suction pipe 14 is not clogged. Specifically, the control part 28 properly controls the rotational frequency of the suction pipe 14 so that the negative pressure measured by the negative pressure sensor 24 becomes the negative pressure which gives a proper suction force. Thereby, the sponge blast medium 32 is favorably ejected from the ejector nozzle 20 without lodging in the suction pipe 14.
When the measured value by the negative pressure sensor 24 is lower than a fixed value (the value at which the suction pipe 14 is assumed to be surely clogged with the sponge blast medium 32), the control part 28 opens the valve 26, and also supplies the compressed air from the air compressor 22 to the base end portion 18A of the hose 18 as supplemental compressed air. Thereby, the ejector effect occurs in the base end portion 18A of the hose 18, and by this ejector effect, the sponge blast medium 32 lodged in the suction pipe 14 is forcefully sucked by the hose 18. Thereby, clogging in the suction pipe 14 is eliminated. When the measured value by the negative pressure sensor 24 returns to the above described fixed value, the control part 28 determines that the clogging is eliminated and closes the valve 26, and stops the supply of the supplemental compressed air to the base end portion 18A of the hose 18.
Specifically, the blasting device 10 of the embodiment usually performs a blasting operation by supplying the compressed air to the ejector nozzle 20 from the air compressor 22, but when the negative pressure of the suction pipe 14 becomes lower than the fixed value, it determines that clogging occurs to the suction pipe 14, and also supplies the compressed air to the base end portion 18A of the hose 18 from the air compressor 22 as the supplemental compressed air.
Thereby, the sponge blast medium 32 lodged in the suction pipe 14 is sucked due to the ejector effect and is fed into the hose 18. After that, when the negative pressure of the suction pipe 14 returns to the original favorable numerical value, supply of the supplemental compressed air to the suction pipe 14 is stopped. The compressed air from the air compressor 22 may be always supplied to the hose 18 as the supplemental compressed air, but by supplying it only when it is needed, energy conservation can be achieved.
The inclined plate 60 is attachably and detachably mounted to a lower portion of the suction pipe 14 by an inclination angle adjusting mechanism 62 shown in
As shown in
As the inclination angle adjusting member of the inclined plate 60, the inclined angle adjusting mechanism 62 is used, but the inclination angle adjusting member is not limited to this, and any member can be used if only it is capable of adjusting the inclination angle of the inclined plate 60.
The inclined plate 60 is disposed to be opposed to the lower suction port 38, and is disposed to incline at the downstream side with respect to the rotating direction of the lower suction port 38. Further, the inclined plate 60 is disposed to be spaced by a predetermined amount from the lower suction portion 38 so as to form a gap 64 between the inclined plate 60 and the lower suction port 38 as shown in
By disposing the inclined plate 60 at the lower suction port 38 like this, when the suction pipe 14 rotates as the inclined plate 60 is pushing the sponge blast medium 32, the sponge blast medium 32 does not exist in the gap 64 between the back surface of the inclined plate 60 and the lower suction portion 38, and the gap 64 becomes an empty space. Due to the existence of the empty space, suction of the sponge blast medium 32 from the lower suction port 38 easily occurs. Thereby, by providing the inclined plate 60, the sponge blast medium 32 can be stably sucked. This action is similar in the case of the blast media other than the sponge blast media 32.
The inclined plate 60 is adjustable in the inclination angle θ by the inclination angle adjusting mechanism 62, and therefore, in accordance with the kind of the blast medium for use (sand, steel, and sponge), the inclination angle of the inclined plate 60 can be set at an angle at which the blast medium is easily sucked.
In the inclined plate unit 80 shown in the drawing, through a long hole 82 formed in one inclined plate 70, a bolt 84 mounted to the other inclined plate 70 is inserted, and thereby, the two inclined plates 70 and 70 are slidably jointed with the long hole 82 and the bolt 84 as a guide. By relatively sliding these inclined plates 70 and 70, the size (opening area) of the gaps 72 between the comb teeth can be adjusted as shown in
Number | Date | Country | Kind |
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2006-249610 | Sep 2006 | JP | national |