Injection hose feeder

The injection hose feeder with synchronized drive rollers and an encoder enables easy and precise handling of injection hoses at great depths, addressing the burden of manual insertion and withdrawal.

JP7779728B2Active Publication Date: 2025-12-03NITTOC CONSTRUCTION CO LTD
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Patent Information

Application Number
JP2021206790
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-12-21
Publication Date
2025-12-03
Estimated Expiration
2041-12-21

AI Technical Summary

Technical Problem

Inserting and withdrawing injection hoses at great depths underground is burdensome due to increased length and weight, especially when filled with water or chemicals, placing a heavy burden on workers.

Method used

An injection hose feeder with synchronized drive rollers and an elastic body to securely grip and rotate the hose, allowing easy insertion and withdrawal, accommodating varying hose lengths and joint diameters, and incorporating an encoder for precise measurement.

Benefits of technology

Facilitates effortless insertion and withdrawal of injection hoses, reduces worker burden, accommodates varying hose lengths and joint diameters, and provides precise measurement for automated operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide an injection hose device allowing insertion work of an injection hose into a bore hole and pulling-out work of the injection hose from the bore hole to be easily carried out.SOLUTION: An injection hose feeding device 1 for inserting an injection hose H into a bore hole DH constructed in the ground or pulling up the injection hose from the bore hole DH is provided with: a first driving roller 3 contacting an outer peripheral surface of the injection hose H; a second driving roller 4 arranged to face the first driving roller 3 and contacting the outer peripheral surface of the injection hose H; and an elastic body 6 pushing the second driving roller 4 toward the first driving roller 3.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to an injection hose feeder. [Background technology]

[0002] For example, chemical grouting is known as a method for improving the ground of gravel layers and unconsolidated layers that are prone to collapse. One example of the chemical grouting method is a method using a double packer or a triple packer (for example, Patent Document 1).

[0003] Generally, in a chemical grouting method using a double packer or the like, a borehole is created by drilling to a predetermined depth using a casing pipe or the like, and then an injection hose is inserted into the borehole (strictly speaking, the injection hose is inserted into the casing pipe left in the borehole), and a chemical such as sealing grout is poured out from the injection hose. After erecting a sleeve pipe, the casing pipe is pulled out, and an injection pipe equipped with a packer is inserted into the sleeve pipe. With the packer expanded, a chemical is injected into the injection pipe, creating a ground improvement body (see, for example, Patent Document 2). Note that the work of inserting the injection hose into the borehole has traditionally been done manually. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2005-314940 [Patent Document 2] Patent Publication No. 2021-172983 Summary of the Invention [Problem to be solved by the invention]

[0005] In recent years, however, structures are being constructed at great depths, exceeding 50 meters underground, which requires ground improvement work at great depths. Inserting and then withdrawing injection hoses at such great depths requires increased length and weight, placing a heavy burden on workers. In particular, these injection hoses are inserted into and withdrawn from boreholes while still filled with water or chemicals, which further increases their weight and places an even heavier burden on workers.

[0006] In view of these problems, the present invention aims to propose an injection hose feed device that can easily insert an injection hose into a borehole and pull up the injection hose from the borehole. [Means for solving the problem]

[0007] The present invention provides an injection hose feeder for inserting an injection hose into a borehole created in the ground or for pulling up the injection hose from the borehole, the injection hose feeder comprising: a first drive roller that contacts the outer peripheral surface of the injection hose; a second drive roller that is provided opposite the first drive roller and that contacts the outer peripheral surface of the injection hose; and an elastic body that presses the second drive roller against the first drive roller. a drive-side swing arm swingably supported by a swing shaft is provided, the second drive roller is rotatably supported by the drive-side swing arm, the elastic body is connected to the drive-side swing arm at a position spaced from the swing shaft, and biases the drive-side swing arm in a direction in which the second drive roller approaches the first drive roller; It is an injection hose feed device. It is also preferable that the first drive roller and the second drive roller are driven by a chain so as to rotate in synchronization with each other, and that an idler is provided that is pressed against the chain to absorb any excess or deficiency in the length of the chain caused by the swing of the drive side swing arm.

[0008] The present invention also provides an injection hose feed device for inserting an injection hose into or pulling up an injection hose from a borehole created in the ground, comprising: a first drive roller that contacts the outer surface of the injection hose; a second drive roller that is arranged opposite the first drive roller and contacts the outer surface of the injection hose; and an elastic body that presses the second drive roller toward the first drive roller, wherein the outer surfaces of the first drive roller and the second drive roller have protrusions that protrude radially outward, and the protrusions are formed by multiple V-shaped convex portions that form a V shape when viewed from the radial outside of the first drive roller and the second drive roller, and are arranged along the circumferential direction of the first drive roller and the second drive roller. In such an injection hose feed device, it is preferable that the outer surface of the first drive roller has a first concave surface that contacts the outer surface of the injection hose, and the outer surface of the second drive roller has a second concave surface that contacts the outer surface of the injection hose.

[0011] Also, in this injection hose feeder , send be drawn out The aforementioned It is preferable to have a measuring means that rotates together with the injection hose and measures the amount of the injection hose delivered. [Effects of the Invention]

[0012] According to the injection hose feeder of the present invention having the above-described configuration, the injection hose is sandwiched between the first and second drive rollers by the elastic body, and by rotating both the first and second drive rollers in this state, the injection hose can be inserted into or withdrawn from the borehole depending on the direction of rotation of these rollers. Note that multiple injection hoses are sometimes connected together using joints with a diameter larger than the outer diameter of the injection hose. The injection hose feeder of the present invention presses the second drive roller toward the first drive roller with an elastic body, and joints with an outer diameter different from that of the injection hose can pass between the first and second drive rollers, so injection hoses connected by such joints can be used without any problems. [Brief explanation of the drawings]

[0013] [Figure 1] 1 is a schematic diagram of an embodiment of an injection hose feeder according to the present invention; [Figure 2] 2 is a schematic diagram of a drive unit of the injection hose feeder shown in FIG. 1. FIG. [Figure 3] 2 is a view taken along the arrow X shown in FIG. 1. [Figure 4] 2 is a partially enlarged cross-sectional view of the first drive roller and the second drive roller shown in FIG. 1, taken from the radially outer side. DETAILED DESCRIPTION OF THE INVENTION

[0014] An embodiment of an injection hose feeder according to the present invention will be described below with reference to the drawings. FIG. 1 is a schematic diagram illustrating an embodiment of an injection hose feeder according to the present invention. The illustrated injection hose feeder 1 is used to insert an injection hose H into a borehole DH created in the ground or to pull up the injection hose H from the borehole DH during a chemical injection method in which a chemical solution is injected from an injection hose H into a borehole DH created in the ground. In a chemical injection method using a double packer or triple packer, a casing pipe or the like is used to create a borehole DH in the ground, and the injection hose H is inserted into the casing pipe left in the borehole DH; however, the casing pipe is not shown in FIG. 1 . The illustrated injection hose H is made up of multiple hoses connected via joints J. The outer diameter of the joints J is larger than the outer diameter of the injection hoses H.

[0015] Injection hose feeder 1 of this embodiment includes a base 2 shown by an imaginary line in Fig. 1. Injection hose feeder 1 also includes a first drive roller 3, a second drive roller 4, a drive-side swing arm 5, an elastic body (drive-side elastic body 6), an adjustment unit 7, a drive unit 8, a first driven roller 9, a second driven roller 10, a driven-side swing arm 11, an elastic body (driven-side elastic body 12), and an encoder 13.

[0016] The first drive roller 3 is generally disk-shaped and rotatably supported by the base 2. The second drive roller 4 is generally disk-shaped and has the same diameter as the first drive roller 3 and is rotatably supported by a drive-side swing arm 5. In the first drive roller 3 and the second drive roller 4 of this embodiment, the portions that make up the outer circumferential surfaces are made of an elastic material such as rubber. The detailed configurations of the first drive roller 3 and the second drive roller 4 will be described later.

[0017] One end of the drive-side swing arm 5 is attached to the base 2 so as to be swingable relative to the base 2. In this embodiment, the drive-side swing arm 5 is attached to the base 2 so as to swing about a swing axis C1 at a position where the second drive roller 4 faces the first drive roller 3. An adjustment unit 7 is attached to the base 2, and the other end of the drive-side swing arm 5 is connected to a drive-side elastic body 6 attached to the adjustment unit 7, and is biased in a direction in which the second drive roller 4 approaches the first drive roller 3. Here, the adjustment unit 7 adjusts the biasing force of the drive-side elastic body 6 applied to the other end of the drive-side swing arm 5. In this embodiment, the adjustment unit 7 is composed of a bolt to which the drive-side elastic body 6 is attached at one end and a nut that secures the bolt to the base 2. By changing the length of the bolt used to secure the drive-side swing arm 5 to the base 2, the biasing force applied by the drive-side elastic body 6 to the drive-side swing arm 5 can be adjusted.

[0018] The drive unit 8 rotates the first drive roller 3 and the second drive roller 4 in synchronization. As shown in Fig. 2, the drive unit 8 of this embodiment is composed of a motor 14, two drive sprockets 15, two idler sprockets 16, a chain 17, an idler 18, an idler swing arm 19, and an idler elastic body 20.

[0019] The motor 14 rotates the first drive roller 3. A drive sprocket 15 is attached to the rotation shaft of the first drive roller 3. A drive sprocket 15 is also attached to the rotation shaft of the second drive roller 4. Two idler sprockets 16 are rotatably supported on the base 2. A chain 17 is hung between the two drive sprockets 15 and the two idler sprockets 16 as shown in FIG. 2, and by driving the motor 14, the two drive sprockets 15 rotate synchronously in opposite directions. In other words, the first drive roller 3 and the second drive roller 4, to which the two drive sprockets 15 are attached, rotate synchronously in opposite directions.

[0020] The second drive roller 4 is attached to a drive-side swing arm 5, and as the drive-side swing arm 5 swings, the drive sprocket 15 attached to the rotation shaft of the second drive roller 4 also moves. Therefore, when the drive-side swing arm 5 swings, the length of the chain 17 around the two drive sprockets 15 and the two idler sprockets 16 fluctuates, causing the chain 17 to become either too long or too short. In contrast, in this embodiment, the idler 18, idler swing arm 19, and idler elastic body 20 absorb any excess or shortfall in the length of the chain 17. To explain the specific configuration of this embodiment, the idler swing arm 19 has the idler 18 rotatably attached to one end thereof, and the other end thereof is swingably supported by the base 2 at a position where the idler 18 contacts the chain 17. The overall length of the idler swing arm 19 is adjustable, and the idler elastic body 20 biases the idler swing arm 19 in a direction that increases the overall length of the idler swing arm 19. In other words, the idler 18 is moved by the idler swing arm 19 while being brought into contact with the chain 17 at a constant pressure by the idler elastic body 20, so that any excess or deficiency in the length of the chain 17 can be accommodated.

[0021] The first driven roller 9 is substantially disk-shaped and is rotatably supported by the base 2. The second driven roller 10 is rotatably supported by a driven-side swing arm 11.

[0022] One end of the driven-side swing arm 11 is supported to be swingable relative to the base 2. In this embodiment, the driven-side swing arm 11 is attached to the base 2 so as to swing around the swing axis C2 at a position where the second driven roller 10 faces the first driven roller 9. A driven-side elastic body 12 attached to the base 2 is attached to the other end of the driven-side swing arm 11, and the driven-side swing arm 11 is biased in a direction in which the second driven roller 10 approaches the first driven roller 9.

[0023] An encoder 13 is attached to the central shaft of the first driven roller 9, and the amount of rotation of the first driven roller 9 can be determined by the encoder 13. The encoder 13 corresponds to the "measuring means" in this specification.

[0024] The injection hose feeder 1 configured as above is installed near the borehole DH, as shown in Figure 1. Here, the injection hose H is installed in the injection hose feeder 1 so that it extends horizontally and passes between the first drive roller 3 and the second drive roller 4, and between the first driven roller 9 and the second driven roller 10, and then extends vertically from the first driven roller 9 and is inserted into the borehole DH.

[0025] In this state, the injection hose H is sandwiched between the first drive roller 3 and the second drive roller 4 by the biasing force of the drive-side elastic body 6. To insert the injection hose H into the borehole DH, the motor 14 is driven in a direction that rotates the first drive roller 3 counterclockwise in FIG. 1. This causes the second drive roller 4 to rotate synchronously with the first drive roller 3 via the chain 17. The second drive roller 4 rotates clockwise in FIG. 1. Therefore, the injection hose H sandwiched between the first drive roller 3 and the second drive roller 4 is fed out in the direction of arrow A by the first drive roller 3 and the second drive roller 4, allowing the injection hose H to be inserted toward the back of the borehole DH. Furthermore, if the rotation direction of the motor 14 is reversed, the first drive roller 3 rotates clockwise and the second drive roller 4 rotates counterclockwise, feeding the injection hose H in the direction of arrow B, allowing the injection hose H to be pulled up from the borehole DH. The first drive roller 3 and the second drive roller 4 have the same diameter, and the amount of injection hose H fed by the first drive roller 3 is equal to the amount of injection hose H fed by the second drive roller 4. This reduces the likelihood of slippage between the first drive roller 3 and the injection hose H and between the second drive roller 4 and the injection hose H. The biasing force applied by the drive-side elastic body 6 to the second drive roller 4 via the drive-side swing arm 5 can be changed by the adjustment unit 7. This allows the biasing force of the drive-side elastic body 6 to be adjusted so that the injection hose H does not collapse and does not slip between the first drive roller 3 and the second drive roller 4. As the depth of the borehole DH increases, the required length of the injection hose H also increases, which in turn increases the weight of the injection hose H. Therefore, it is necessary to change the biasing force of the drive-side elastic body 6. In contrast, the injection hose feed device 1 of this embodiment is equipped with the adjustment unit 7, so the biasing force of the drive-side elastic body 6 can be changed according to the length of the injection hose H.

[0026] However, when the joint J enters between the first drive roller 3 and the second drive roller 4 as the injection hose H is fed out, the second drive roller 4, which is pressed toward the first drive roller 3 by the biasing force of the drive-side elastic body 6, moves in a direction away from the first drive roller 3. In other words, according to the injection hose feed device 1 of this embodiment, even an injection hose H connected with the joint J can be used without any problems.

[0027] Furthermore, when injection hose H is fed out by first drive roller 3 and second drive roller 4, injection hose H is pressed against first driven roller 9 by second driven roller 10, and therefore first driven roller 9 rotates as injection hose H moves. Here, the amount of rotation of first driven roller 9 is detected by encoder 13, and therefore the amount of movement of injection hose H can be measured based on the diameter of first driven roller 9 and the amount of rotation of first driven roller 9 obtained from encoder 13.

[0028] That is, when the injection hose H is inserted into the borehole DH, the measurement value of the encoder 13 can be used to determine whether the tip of the injection hose H has reached the bottom of the borehole DH. Furthermore, when the injection hose H is withdrawn from the borehole DH, the amount of withdrawal of the injection hose H can be determined from the measurement value of the encoder 13. In this chemical injection method, the chemical is injected into the borehole DH by the following procedure: a predetermined amount of chemical is dispensed from the injection hose H, the injection hose H is withdrawn a predetermined length, a predetermined amount of chemical is dispensed from the injection hose H again, and the injection hose H is withdrawn a predetermined length. That is, in a conventional operation in which an operator manually withdraws the injection hose H, for example, marks are placed on the injection hose H at predetermined intervals, and the operator uses the marks as a guide to withdraw the injection hose H a predetermined amount. However, with the injection hose feed device 1 of this embodiment, the amount of withdrawal of the injection hose H can be determined from the measurement value of the encoder 13, so that such marks can be eliminated and the burden on the operator of checking the amount of withdrawal of the injection hose H can be reduced. When using the measurement value obtained by encoder 13, it is preferable to configure the control unit that controls the operation of injection hose feeder 1 so that it automatically stops motor 14 after injection hose H has been pulled up a predetermined amount. Alternatively, the configuration may be such that information can be exchanged between injection hose feeder 1 and a liquid medicine injector that dispenses liquid medicine from injection hose H, so that after injection hose H has been pulled up a predetermined amount and motor 14 has automatically stopped, the liquid medicine injector automatically injects a predetermined amount of liquid medicine into injection hose H, and then injection hose H is automatically pulled up a predetermined amount.

[0029] Incidentally, when the injection hose H is inserted into or pulled out of the borehole DH, the outer surface of the injection hose H is often wet from the water or chemical solution introduced into the injection hose H, or from the chemical solution injected into the borehole DH from the injection hose H. If the outer surface of the injection hose H is wet in this way, despite the effect of making the injection hose H less slippery by making the first drive roller 3 and the second drive roller 4 the same diameter as described above, and the effect of making the injection hose H less slippery by adjusting the biasing force of the drive-side elastic body 6 with the adjustment unit 7, the injection hose H may slip against the first drive roller 3 or the second drive roller 4, and the injection hose H may not be fed out.

[0030] For this reason, the first drive roller 3 and the second drive roller 4 in this embodiment are provided with a first concave surface 3a and a second concave surface 4a, which are formed by recessing the widthwise center portion of the outer circumferential surface radially inward, as shown in Fig. 3. In other words, the contact area of ​​the injection hose H with the first concave surface 3a and the second concave surface 4a is larger than when the outer circumferential surfaces of the first drive roller 3 and the second drive roller 4 are flat when viewed from the radial outside, making it difficult for the injection hose H to slip relative to the first drive roller 3 and the second drive roller 4, and allowing the injection hose H to be dispensed even if its outer circumferential surface is wet.

[0031] To prevent slippage between the first drive roller 3 and the second drive roller 4 when the outer circumferential surface of the injection hose H is wet, it is preferable to provide protrusions that protrude radially outward on the outer circumferential surfaces of the first drive roller 3 and the second drive roller 4. The protrusions may be, for example, as shown in FIG. 4(a), a plurality of circular protrusions P1 that appear circular when viewed from the radially outside, arranged in the circumferential and width directions of the first drive roller 3 and the second drive roller 4, or, although not shown, a plurality of polygonal (triangular, rectangular, etc.) protrusions arranged in the circumferential and width directions. The protrusions may also be, as shown in FIG. 4(b), a plurality of V-shaped protrusions P2 that appear V-shaped when viewed from the radially outside, arranged in the circumferential and width directions.

[0032] Incidentally, the inventors have conducted extensive research into the protrusions and have found that, compared to first drive roller 3 and second drive roller 4 in which multiple circular convex portions P1 shown in Figure 4(a) are arranged on first concave surface 3a and second concave surface 4a, multiple V-shaped convex portions P2 shown in Figure 4(b) arranged on first concave surface 3a and second concave surface 4a are more effective in suppressing slippage even when the outer circumferential surface of injection hose H is wet. Here, the principle of slippage suppression is predicted to be that the arrangement in which multiple V-shaped convex portions P2 are arranged has better drainage properties than the arrangement in which multiple circular convex portions P1 are arranged, making it less likely for water or chemical solution to accumulate between injection hose H and first drive roller 3 (or second drive roller 4), thereby suppressing a decrease in the frictional force between them.

[0033] Further investigation of the V-shaped protrusions P2 revealed that the effectiveness of suppressing slippage when the outer surface of the injection hose H is wet varies significantly depending on the width of the V-shaped protrusions P2 and the pitch between adjacent rows of the V-shaped protrusions P2 in the width direction. As shown in Figure 4(b), when the width of the V-shaped protrusions P2 on the first concave surface 3a and the second concave surface 4a is L1 and the pitch between adjacent rows in the width direction is L2, V-shaped protrusions P2 with L1 of 6 mm and L2 of 6.5 mm were found to be more effective in suppressing slippage than V-shaped protrusions P2 with L1 of 11 mm and L2 of 12 mm. The tolerance between L1 and L2 is approximately ±2 mm. Therefore, it is preferable that the width L1 of the V-shaped protrusions P2 be 6±2 mm and the pitch L2 be 6.5±2 mm.

[0034] Although one embodiment of the present invention has been described above, the present invention is not limited to the specific embodiment, and unless otherwise limited in the above description, various modifications and changes are possible within the scope of the spirit of the present invention as set forth in the claims. Furthermore, the effects of the above embodiment are merely examples of the effects that can be obtained from the present invention, and do not mean that the effects of the present invention are limited to the above effects.

[0035] For example, when the above-mentioned protrusions are provided on the outer peripheral surfaces of the first drive roller 3 and the second drive roller 4, the V-shaped protrusions P2 etc. may be made to protrude integrally from an elastic member such as rubber that forms the outer peripheral surface of the first drive roller 3 etc., or a rubber sheet having the V-shaped protrusions P2 etc. may be fixed to this elastic member. When such a rubber sheet having the V-shaped protrusions P2 etc. is fixed, even if the V-shaped protrusions P2 etc. wear down after repeated use, the first drive roller 3 etc. can be easily regenerated by fixing a new sheet.

[0036] In addition, in this embodiment, the feed amount of the injection hose H is measured using an encoder 13 provided on the central axis of the first driven roller 9, but other measuring means may also be used, such as providing a measuring instrument that reads markings provided at predetermined intervals on the outer surface of the injection hose H. [Explanation of symbols]

[0037] 1: Injection hose feeder 3: First drive roller 3a: First concave surface 4: Second drive roller 4a: Second concave surface 6: Drive side elastic body (elastic body) DH: Borehole H: Injection hose P1: Circular convex part (protrusion) P2: V-shaped protrusion (protrusion)

Claims

1. An injection hose feeder for inserting an injection hose into a borehole created in the ground or for pulling it up from the borehole, a first drive roller that contacts the outer peripheral surface of the injection hose; a second drive roller disposed opposite the first drive roller and in contact with an outer circumferential surface of the injection hose; an elastic body that presses the second drive roller toward the first drive roller, a drive-side swing arm that is swingably supported by a swing shaft is provided; the second drive roller is rotatably supported by the drive-side swing arm, The elastic body is connected to the drive side swing arm at a position away from the swing shaft and biases the drive side swing arm in a direction in which the second drive roller approaches the first drive roller.

2. The first drive roller and the second drive roller are driven by a chain so as to rotate synchronously with each other; 2. The injection hose feed device according to claim 1, further comprising an idler that is pressed against the chain to absorb any excess or deficiency in the length of the chain caused by the swinging of the drive-side swing arm.

3. An injection hose feeder for inserting an injection hose into a borehole created in the ground or for pulling up the injection hose from the borehole, a first drive roller that contacts the outer peripheral surface of the injection hose; a second drive roller disposed opposite the first drive roller and in contact with an outer circumferential surface of the injection hose; an elastic body that presses the second drive roller toward the first drive roller, a protrusion protruding radially outward on an outer circumferential surface of the first drive roller and an outer circumferential surface of the second drive roller; The protrusion is an injection hose feed device formed by multiple V-shaped convex portions that form a V shape when viewed from the radial outside of the first drive roller and the second drive roller, and are arranged along the circumferential direction of the first drive roller and the second drive roller.

4. the first drive roller has an outer circumferential surface having a first concave surface that contacts the outer circumferential surface of the injection hose; The injection hose feed device according to any one of claims 1 to 3, wherein the outer circumferential surface of the second drive roller has a second concave surface that contacts the outer circumferential surface of the injection hose.

5. An injection hose feeding device as described in any one of claims 1 to 4, having a measuring means that rotates together with the injection hose being fed out to measure the amount of injection hose fed out.

Citation Information

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