Plumbing adjustment device and plumbing adjustment method for pillar members
The plumbing adjustment device and method address the integrity issues of existing technologies by integrating anti-rotation means with the inclination adjustment bolt operating system, ensuring precise and durable adjustments of pillar members' inclination.
Patent Information
- Application Number
- JP2022040915
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-03-16
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2042-03-16
AI Technical Summary
Existing plumbing adjustment technologies for pillar members, such as those described in Patent Document 1, face issues with the integrity of the erection jig due to the connection between the rotating shaft of the drive unit and the adjustment bolt being compromised by tilting, leading to wear, damage, and reduced accuracy in plumbing adjustments.
A plumbing adjustment device and method that includes an erection jig with an inclination adjustment bolt operating means, a rotating shaft, and a power supply, which is integrated with anti-rotation means to prevent the inclination adjustment bolt from rotating independently, ensuring the driving force is reliably transmitted, maintaining the integrity of the jig during adjustments.
The solution allows for accurate adjustment of pillar members' inclination without compromising the operation of the jig, ensuring that the plumbing adjustments are maintained within the allowable range, enhancing the precision and durability of the plumbing process.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a plumbing adjustment device and plumbing adjustment method for pillar members, and more particularly to a device and method for adjusting the inclination of pillar members that are installed successively above and below as designed when assembling the pillar members (erection). [Background technology]
[0002] When installing steel columns or other column components one above the other, if their axes are tilted relative to the vertical, various problems can occur, such as the tilt of the constructed structure itself. Therefore, when assembling the column components, workers (marking technicians) would adjust the column components' tilt while conducting surveying to ensure that the axial tilt was within the allowable range. This plumbing adjustment work relies heavily on the skills of the workers (marking technicians), and because adjustment methods differ for each site (contractor), strict management was required to ensure that the accuracy of the plumbing adjustment was not affected.
[0003] Various technologies have been disclosed to reduce the burden of such plumbing adjustments. In particular, a technology has been disclosed that links a total station with an erection jig, thereby reducing the number of skilled workers required to erect steel columns to one blacksmith and eliminating the need for marking work in plumbing measurements, thereby saving labor (see Patent Document 1).
[0004] The technology described in Patent Document 1 involves attaching a total station fixing jig to one end of a steel column, which uses a two-axis lifting platform (X-axis and Y-axis) to keep the suspended object always vertical. A total station is then attached to the total station fixing jig, and the steel column is lifted using a lifting device and installed in a predetermined position in the building. A measuring device is then used to adjust the plumbing of the steel column so that it fits within the standard. The steel column with the total station attached is then used as the column in the initial standard position, and the positions of other steel columns that are brought in subsequently are measured with the total station, and the plumbing adjustments of these other steel columns are then repeated in sequence. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] Japanese Patent Application Laid-Open No. 2016-121438 Summary of the Invention [Problem to be solved by the invention]
[0006] The technology described in the above-mentioned Patent Document 1 presupposes the use of an erection jig for plumbing adjustment, and installs erection pieces at the joints (four locations on the four faces of each column) between a lower steel column installed below and an upper steel column installed continuously above this steel column.Then, an erection jig having a Z-axis direction adjustment bolt (tilt adjustment bolt), a tipping prevention bolt, a misalignment adjustment bolt, a fine adjustment cam (vertical position adjustment cam), and an adjustment wedge is attached to a pair of erection pieces facing each other above and below.
[0007] In addition, a drive device is attached to the erection jig to rotate the Z-axis direction adjustment bolt (tilt adjustment bolt). 、 It is equipped with a motor, a reducer, a rotating shaft, and a universal shaft that fits onto the head of the adjustment bolt. By controlling the drive unit and rotating the Z-axis adjustment bolt (tilt adjustment bolt), the position of the steel column is kept within the standard range for plumbing.
[0008] Incidentally, in the erection jig having the above-described configuration, when the Z-axis adjustment bolt (tilt adjustment bolt) is rotated so as to move downward, the tip of the adjustment bolt (tilt adjustment bolt) presses against the fine adjustment cam (vertical position adjustment cam), and the fine adjustment cam (vertical position adjustment cam) operates on the principle of leverage, pushing the erection piece upward, thereby allowing the steel column located above to move upward. On the other hand, when the Z-axis adjustment bolt (tilt adjustment bolt) is rotated so as to move upward, the fine adjustment cam (vertical position adjustment cam) against which the tip of the adjustment bolt (tilt adjustment bolt) is pressed operates on the principle of leverage, pushing the erection piece downward, allowing the steel column located above to move downward.
[0009] At this time, the tip of the adjustment bolt (tilt adjustment bolt) is pressed against the fine adjustment cam (vertical position adjustment cam), so the tilt of the adjustment bolt (tilt adjustment bolt) fluctuates as the fine adjustment cam (vertical position adjustment cam) moves.
[0010] However, in the construction jig described in Patent Document 1, the Z-axis adjustment bolt (tilt adjustment bolt) and the drive unit for rotating it are fixedly attached to the construction jig, so even if the adjustment bolt (tilt adjustment bolt) tilts, the rotating shaft of the drive unit remains approximately vertical, and the axial tilt of the adjustment bolt (tilt adjustment bolt) and the rotating shaft of the drive unit will differ.
[0011] In this erection jig, the rotating shaft of the drive unit is connected to an adjustment bolt (tilt adjustment bolt) via a universal shaft. Patent Document 1 does not provide any detailed explanation about the universal shaft, so it is unclear what kind of structure the universal shaft is.
[0012] Even if the universal shaft has a universal joint in the middle of the shaft, or is a flexible shaft whose shaft is made of a flexible material, if the adjustment bolt (tilt adjustment bolt) tilts, the rotating shaft of the drive device will not be able to follow the tilt of the adjustment bolt, and the connection between the rotating shaft of the drive device and the adjustment bolt (tilt adjustment bolt) may come off.Even if the connection between the rotating shaft of the drive device and the adjustment bolt (tilt adjustment bolt) does not come off, an oblique force is applied to the connection between the rotating shaft of the drive device and the adjustment bolt (tilt adjustment bolt), which may cause wear or damage to the connection.
[0013] Furthermore, universal shafts with universal joints in the middle of the shafts have a complex structure, which not only increases the size of the device but also requires frequent maintenance, etc. Also, flexible shafts cannot withstand large rotational torque and may break.
[0014] In such a state, the integrity of the erection jig cannot be maintained, which in turn affects the accuracy of the plumbing adjustment. Therefore, an object of the present invention is to provide a plumbing adjustment device and adjustment method for pillar members that can adjust the vertical and horizontal positions of pillar members installed consecutively above and below as designed without compromising the integrity of the erection jig. [Means for solving the problem]
[0015] In order to achieve the above-mentioned object, the plumbing adjustment device and adjustment method for a pillar member according to the present invention have the following features: That is, the plumbing adjustment device and adjustment method for a pillar member according to the present invention relates to a device and method for adjusting the tilt of the upper pillar member (upper joint pillar) when connecting a pair of pillar members vertically in succession.
[0016] The plumbing adjustment device for a column member according to the present invention comprises an erection jig attached to multiple locations on the outer peripheral surface of the column member, an error measuring means for measuring the error between the installation reference position of the column member (upper section column) located above and the actual installation position, and an inclination adjustment control means for controlling the operation of the erection jig so that the error measured by the error measuring means is within the allowable range.
[0017] The erection jig is equipped with erection pieces attached to multiple locations on the outer peripheral surface of each pillar member in order to temporarily fix a pair of pillar members arranged above and below, a connection means (erection jig main body) for connecting the opposing erection pieces of the pair of pillar members arranged above and below, and a vertical position adjustment means provided in the middle of the connection means (erection jig main body) in the vertical direction and for adjusting the vertical position of the pillar member (upper joint pillar) located above.
[0018] The vertical position adjustment means includes a vertical position adjustment cam that moves the column member (upper section column) arranged above up and down in the vertical direction, an inclination adjustment bolt that operates the vertical position adjustment cam and has a connecting hole on its upper surface, and an inclination adjustment bolt operating means that operates the inclination adjustment bolt.
[0019] The tilt adjustment bolt operating means includes a rotating shaft portion that engages with a connecting engagement hole provided on the upper surface of the tilt adjustment bolt, a rotation drive means that rotates the rotating shaft portion, and a power supply means that supplies power to the rotation drive means.
[0020] The tilt adjustment control means controls the tilt adjustment bolt operating means so that the error measured by the error measuring means falls within the range of the allowable value. The tilt adjustment bolt operating means tilts in accordance with the tilt of the tilt adjustment bolt. 。
[0021] The plumbing adjustment device for column members configured as described above is provided with a pair of anti-rotation means that clamp the support steel plates protruding from the erection jig from both the left and right sides. The anti-rotation means are means for preventing the inclination adjustment bolt operating means from rotating in accordance with the rotation of the inclination adjustment bolt (rotating shaft portion). In addition, the connecting engagement hole and the rotating shaft portion are provided with connecting and fixing means that connect and fix the rotating shaft portion to the connecting engagement hole.
[0022] The method for adjusting the plumbing of a column member according to the present invention is a method for adjusting the tilt of the column member located above (upper section column) when connecting a pair of column members continuously vertically using a column member plumbing adjustment device having the above-mentioned configuration, and includes an erection jig attachment process for attaching erection jigs to multiple locations on the outer surface of the column member, an error measurement process for measuring the error between the installation reference position and the actual installation position of the column member located above (upper section column), and an inclination adjustment process for using the erection jig to adjust the error between the installation reference position and the actual inclination position within an allowable range.
[0023] In the tilt adjustment process, the operation of the erection jig is controlled so that the error measured by the error measuring means falls within the allowable range, and the tilt adjustment bolt operating means is tilted in accordance with the tilt of the tilt adjustment bolt. Controlling the operation of the erection jig means controlling the tilt adjustment bolt operating means by the tilt adjustment control means.
[0024] In the plumbing adjustment method for a column member including the above-described steps, in the erection jig installation step, the connecting and fixing means is used to connect and fix the rotating shaft portion to the connecting engagement hole, thereby integrally connecting the inclination adjustment bolt operating means of the erection jig and the inclination adjustment bolt. In the inclination adjustment step, the rotation prevention means is used to prevent the inclination adjustment bolt operating means from rotating in accordance with the rotation of the inclination adjustment bolt. [Effects of the Invention]
[0025] In the plumbing adjustment device and adjustment method for a pillar member according to the present invention, in order to adjust the plumbing of the pillar member (upper section pillar), the inclination of the pillar member (upper section pillar) is adjusted using an inclination adjustment bolt operating means. That is, the inclination of the pillar member (upper section pillar) is adjusted by rotating the inclination adjustment bolt using a rotation drive means. In this case, the inclination adjustment bolt operating means equipped with the rotation drive means tilts in accordance with the inclination of the inclination adjustment bolt used for inclination adjustment, so that the driving force from the rotation drive means can be reliably transmitted to the inclination adjustment bolt.
[0026] Therefore, according to the plumbing adjustment device and adjustment method for column members of the present invention, it is possible to adjust the inclination of column members (upper section columns) installed consecutively above and below as designed without adversely affecting the operation of the jig (erection jig) used to perform plumbing adjustment. [Brief explanation of the drawings]
[0027] [Figure 1] FIG. 1 is a block diagram showing the configuration of a plumbing adjustment device for a column member according to an embodiment of the present invention. [Figure 2] FIG. 1 is a side view of a plumbing adjustment device for a pillar member according to an embodiment of the present invention. [Figure 3] FIG. 1 is a front view of a plumbing adjustment device for a pillar member according to an embodiment of the present invention. [Figure 4] 1 is a schematic diagram of a plumbing adjustment device for a column member according to an embodiment of the present invention, viewed from the side; [Figure 5] FIG. 4 is a side view showing a coupled and fixed state by the coupling and fixing means according to the embodiment of the present invention. [Figure 6] FIG. 2 is a side view showing a state in which the coupling and fixing means according to the embodiment of the present invention is disassembled. [Figure 7] 1 is a flowchart of a plumbing adjustment method for a column member according to an embodiment of the present invention. [Figure 8] 1 is a flowchart (main routine) of tilt adjustment in a plumbing adjustment method for a pillar member according to an embodiment of the present invention. [Figure 9] 10 is a flowchart of tilt adjustment in the plumbing adjustment method for a pillar member according to an embodiment of the present invention (Z-axis adjustment subroutine). [Figure 10] 10 is a flowchart of inclination adjustment in the plumbing adjustment method for a pillar member according to an embodiment of the present invention (a subroutine for X-axis adjustment). [Figure 11] 10 is a flowchart of inclination adjustment in the plumbing adjustment method for a pillar member according to an embodiment of the present invention (a subroutine for Y-axis adjustment). [Figure 12] Schematic diagram showing a specific example of adjusting the inclination of a column member in the plumbing adjustment method for a column member according to an embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0028] Hereinafter, a plumbing adjustment device and adjustment method for a column member (hereinafter abbreviated as plumbing adjustment device and plumbing adjustment method) according to an embodiment of the present invention will be described with reference to the drawings. Figures 1 to 6 explain the plumbing adjustment device according to an embodiment of the present invention, and Figures 7 to 12 explain the plumbing adjustment method according to an embodiment of the present invention.
[0029] Specifically, Figure 1 is a block diagram of the plumbing adjustment device, Figure 2 is a side view of the plumbing adjustment device, Figure 3 is a front view of the plumbing adjustment device, Figure 4 is a schematic diagram of the plumbing adjustment device as seen from the side, Figure 5 is a side view showing the fastening state using the fastening means, and Figure 6 is a side view showing the fastening means disassembled. The fastening means is a means for fastening a rotating shaft (rotation drive means) for rotating the tilt adjustment bolt to the connecting engagement hole of the tilt adjustment bolt. Figure 7 is a flowchart of the plumbing adjustment method, Figure 8 is a flowchart showing the main routine for tilt adjustment, Figures 9 to 11 are flowcharts showing the subroutines for tilt adjustment, and Figure 12 is a schematic diagram showing a specific example of the tilt adjustment process for a column member. Note that the positions and shapes of components may differ slightly in each figure, but the configuration of each component is similar in each figure.
[0030] <Outline of the plumbing adjustment device> The plumbing adjustment device according to an embodiment of the present invention is a device for adjusting the tilt of the upper section column 11 when connecting a pair of column members 10 (hereinafter, the column member 10 arranged on the upper side is referred to as the upper section column 11, and the column member 10 arranged on the lower side is referred to as the lower section column 12) in succession vertically, and is a device used, for example, when assembling steel columns.
[0031] As shown in Figure 1, this plumbing adjustment device comprises, as its main components, an erection jig 100, an error measurement means 200, and an inclination adjustment control means 300. The erection jig 100 is a jig attached to multiple locations on the outer periphery of the pillar member 10 to perform plumbing adjustment, and for example, an erection ace manufactured by Technos Corporation is used. The error measurement means 200 is a means for measuring the error between the installation reference position of the upper section pillar 11 and the actual installation position, and although not shown, is configured using, for example, a total station and its associated equipment.
[0032] As shown in FIG. 1, the erection jig 100 includes an erection piece 20, a connection means (erection jig main body 30), and a vertical position adjustment means 40. The vertical position adjustment means 40 includes a vertical position adjustment cam 41, an inclination adjustment bolt 42 having a connection hole 42a on its upper surface, and an inclination adjustment bolt operating means 43. The inclination adjustment bolt operating means 43 includes a rotation shaft portion 43a, a rotation drive means 43b, and a power supply means 43c. The connection means (erection jig main body 30) is provided with a rotation prevention means 50. The connection hole 42a and the rotation shaft portion 43a are provided with a connection fixing means 60 that connects and fixes the rotation shaft portion 43a to the connection hole 42a.
[0033] <Construction jig> The erection jig 100 is a jig used for erecting column members 10 such as column columns, round columns, and H-shaped steel columns, and temporarily fixes the column members 10 (upper section columns 11 and lower section columns 12) connected above and below to prevent them from falling over, and can also perform misalignment adjustments, tilt adjustments, level adjustments, etc. As shown in Figures 2 and 3, this erection jig 100 is equipped with erection pieces 20 attached to the lower part of the upper section column 11 and the upper part of the lower section column 12 so as to face each other, an erection jig main body 30 that functions as connection means by being attached so as to span the pair of erection pieces 20 facing each other above and below, and vertical position adjustment means 40 (vertical position adjustment cam 41, inclination adjustment bolt 42, inclination adjustment bolt operating means 43) that is provided in the vertical middle of the erection jig main body 30 (connection means) and adjusts the vertical position of the upper section column 11.
[0034] As shown in FIG. 4, the erection jig 100 includes a control unit 70 and a power supply means. 43c The control unit 70 includes a power unit 80 and rotation prevention means 50. The power unit 80 is a unit consisting of a rotation shaft portion 43a and rotation drive means 43b that constitute the tilt adjustment bolt operation means 43. The control unit 70, power unit 80, power supply means 43c (battery), and rotation prevention means 50 will be described in detail later.
[0035] <Erection jig body> As shown in Figures 2 and 3, the erection jig body 30 has an upper vertical groove 31 into which the erection piece 20 attached to the upper section column 11 is inserted, and a lower vertical groove 32 into which the erection piece 20 attached to the lower section column 12 is inserted. A space is provided between the erection piece 20 attached to the upper section column 11 and the erection piece 20 attached to the lower section column 12 to attach a vertical position adjustment cam 41. In addition, a support steel plate 33 is provided that protrudes outward from the column member 10 so as to come into contact with the erection piece 20 attached to the upper section column 11.
[0036] In addition, a tilt adjustment bolt 42 is attached so as to penetrate the support steel plate 33, and the tip of the tilt adjustment bolt 42 presses against one end of the vertical position adjustment cam 41. A sheet pile 34 is inserted between the lower end surface of the vertical position adjustment cam 41 and the erection piece 20 attached to the lower section pillar 12. The lower end surface of the vertical position adjustment cam 41 abuts against the sheet pile 34, and the other end of the vertical position adjustment cam 41 presses against the lower end of the erection piece 20 attached to the upper section pillar 11. In other words, one end of the vertical position adjustment cam 41 serves as a force point, the lower end surface serves as a fulcrum, and the other end serves as a point of action, and the tilt adjustment bolt 42 adjusts the vertical position of the erection piece 20 attached to the upper section pillar 11.
[0037] Furthermore, as shown in Figures 2 and 3, the erection jig body 30 has a fixing bolt 35 for fixing the erection jig body 30 to the erection piece 20 by pressing it from the side against the erection piece 20 inserted into the upper vertical groove portion 31, an offset adjustment bolt 36 for adjusting the offset between the upper node column 11 and the lower node column 12 by pressing it from both the left and right sides against the erection piece 20 inserted into the lower vertical groove portion 32, and a fall prevention bolt 37 for preventing the upper node column 11 from falling by pressing it from below against the erection piece 20 inserted into the lower vertical groove portion 32. In this embodiment, these components are operated by the worker.
[0038] <Erection Piece> As shown in Figures 2 and 3, the erection piece 20 is a member attached to the lower part of the upper node column 11 and the upper part of the lower node column 12, and in a column member 10 having multiple side surfaces, multiple pairs of opposing side surfaces are attached as a set. For example, in the case of a column member 10 with a square cross section, an erection piece 20 is attached to each side surface (four side surfaces). This erection piece 20 is a plate-shaped member, and is attached in the vertical direction on the side surface of each column member 10 so as to protrude outward from each column member 10.
[0039] In addition, a space is provided between the lower end of the erection piece 20 attached to the upper section pillar 11 and the upper end of the erection piece 20 attached to the lower section pillar 12 to allow for the placement of members such as the vertical position adjustment cam 41. The attachment locations and number of the erection pieces 20 (the attachment locations and number of the erection jigs 100) are set appropriately according to the shape, size, weight, etc. of the pillar member 10.
[0040] <Vertical position adjustment means> As described above, the vertical position adjustment means 40 is provided in the vertical middle of the erection jig body 30 (connection means), and adjusts the vertical position of the upper section column 11 by adjusting the vertical position of the erection piece 20 attached to the upper section column 11. The vertical position adjustment means 40 has as its main components a vertical position adjustment cam 41, an inclination adjustment bolt 42, and an inclination adjustment bolt operating means 43.
[0041] In this embodiment, the inclination adjustment bolt operating means 43 (rotating shaft portion 43a, rotation drive means 43b), which is the power unit 80, the power supply means 43c (battery), and the control unit 70 are housed in a storage case 44. Furthermore, these units and devices are integrated with the rotation prevention means 50. That is, as shown in FIG. 4, these members are housed in the storage case 44 as the control unit 70, the power unit 80, and the power supply means 43c (battery), and the storage case 44 and the rotation prevention means 50 are integrated.
[0042] <Up / down position adjustment cam> The vertical position adjustment cam 41 has a plate-shaped portion 41a that comes into contact with the tip of the inclination adjustment bolt 42 to become the force point, and a cylindrical portion 41b (the upper surface is the action point, and the lower surface is the fulcrum) that presses against the lower end of the erection piece 20 attached to the upper joint column 11 to become the point of action, and also presses against the sheet pile 34 inserted into the upper end of the erection piece 20 attached to the lower joint column 12 to become the fulcrum. In other words, the vertical position adjustment cam 41 is a lever whose tip side bulges out cylindrically and whose base end side is plate-shaped.
[0043] <Tilt adjustment bolt> The inclination adjustment bolt 42 is screwed so as to vertically penetrate the support steel plate 33 that protrudes outward from the erection jig main body 30. When the tip of the inclination adjustment bolt 42 is rotated so that it protrudes downward, the tip of the inclination adjustment bolt 42 presses against the upper surface of the plate-shaped portion 41a (one end) of the vertical position adjustment cam 41, pushing the plate-shaped portion 41a (one end) downward. On the other hand, when the inclination adjustment bolt 42 is rotated so that it protrudes upward, the weight of the upper section pillar 11 pushes back the plate-shaped portion 41a (one end) of the vertical position adjustment cam 41. In other words, the upper section pillar 11 can be moved up and down in response to the rotation of the inclination adjustment bolt 42.
[0044] Furthermore, the erection jig 100 having the inclination adjustment bolt 42 is attached in multiple sets to a column member 10 having multiple side faces, with each set consisting of a pair of opposing side faces. Therefore, by operating the inclination adjustment bolt 42, the up / down position adjustment cam 41 operates, allowing the inclination of the upper section column 11 to be adjusted.
[0045] <Connection connection hole> A connecting hole 42a that engages with the rotation shaft portion 43a of the tilt adjustment bolt operating means 43 is provided on the top surface of the head of the tilt adjustment bolt 42. This connecting hole 42a is provided at a position that becomes the center of rotation on the top surface of the head of the tilt adjustment bolt 42. This connecting hole 42a and the rotation shaft portion 43a are provided with a connecting and fixing means 60 that connects and fixes the rotation shaft portion 43a to the connecting and fixing hole 42a. The connecting and fixing means 60 will be described in detail later.
[0046] <Tilt adjustment bolt operation means> The tilt adjustment bolt operating means 43 is a means for rotating the tilt adjustment bolt 42, and is composed of a rotary shaft portion 43a, a rotary drive means 43b, and a power supply means 43c.
[0047] <Rotating shaft> The rotating shaft 43a is a member for transmitting the rotational force of the rotation drive means 43b (electric motor), and is adapted to engage with a connecting hole 42a provided on the upper surface of the tilt adjustment bolt 42. In this embodiment, the connecting hole 42a is a recess with a circular cross section, and therefore the rotating shaft 43a is cylindrical and fits into the recess.
[0048] <Rotational drive means> The rotation drive means 43b is a means for rotating the rotation shaft portion 43a, and is configured by, for example, an electric motor. Then, by connecting and fixing the rotation shaft portion 43a of the rotation drive means 43b (electric motor) to the connection hole 42a, the inclination adjustment bolt 42 can be rotated by driving the rotation drive means 43b (electric motor). This rotation drive means 43b (electric motor) is stored in the storage case 44 together with the power supply means 43c (battery).
[0049] <Power source> The power supply means 43c is a means for supplying power to the rotation drive means 43b (electric motor), and is made up of, for example, a battery. There are no particular limitations on the type of battery, but it is preferable that the battery has sufficient drive voltage, current, and capacity to rotate the rotation shaft portion 43b, and is highly durable. In this embodiment, the power supply means 43c is a battery, but power may also be supplied directly from a power line.
[0050] <Rotation prevention means> The rotation prevention means 50 is a means for preventing the inclination adjustment bolt operating means 43 and associated devices from rotating in response to the rotation of the inclination adjustment bolt 42. This rotation prevention means 50 is composed of a pair of rotation prevention plates 51 arranged to sandwich the support steel plate 33 of the erection jig main body 30 from both sides. The pair of rotation prevention plates 51 are positioned outside the inclination adjustment bolt 42 with respect to the column member 10, and are each arranged to protrude downward from the erection jig main body 30. The distance between the pair of rotation prevention plates 51 is set to be slightly (for example, about 2 mm) larger than the width of the support steel plate 33. As described above, the rotation prevention means 50 is integrated with the control unit 70, the inclination adjustment bolt operating means 43 (rotation shaft portion 43a, rotation drive means 43b) which is the power unit 80, and the power supply means 43c (battery).
[0051] When the storage case 44 is brought to face the inclination adjustment bolt 42 from above the erection jig 100, the rotating shaft 43a engages with the connecting hole 42a of the inclination adjustment bolt 42, and the pair of rotation prevention plates 51 can sandwich the support steel plate 33. In this state, when the connecting and fixing means 60 is used to connect and fix the rotating shaft 43a to the connecting and fixing hole 42a, the inclination adjustment bolt 42 and the storage case 44 are connected together. In addition, the rotation prevention means 50 can prevent the storage case 44 from rotating in conjunction with the rotation of the rotating shaft 43a. With this configuration, the erection jig main body 30, including the storage case 44, tilts in accordance with the inclination of the inclination adjustment bolt 42.
[0052] <Tilt adjustment control means> The tilt adjustment control means 300 is a means for controlling the operation of the erection jig 100 (specifically, the tilt adjustment bolt operation means 43) so that the error measured by the error measurement means 200 is within the allowable range, and as shown in Figure 1, it is composed of a control unit 70 with computer functions and a control PC that sends and receives data to and from this control unit 70 using wireless LAN.
[0053] The control unit 70 is housed in a storage case 44 together with the inclination adjustment bolt operating means 43 (rotating shaft 43a, rotary drive means 43b) which is a power unit 80, and a battery which is a power supply means 43c. A wireless LAN means (not shown) is also housed in the storage case 44, and the control unit 70 transmits and receives data to and from a control PC using the wireless LAN. That is, the control unit 70 controls the inclination adjustment bolt operating means 43 by operating based on signals received from the control PC.
[0054] <Control PC> The control PC can be configured, for example, as a laptop computer, and transmits and receives data to and from the total station. A program is installed in the control PC for controlling the inclination adjustment bolt operating means 43 so that the inclination error of the upper section column 11 measured by the total station, which is the error measurement means 200, falls within the allowable range. The control PC then transmits a control signal to the control unit 70 via wireless LAN based on the error data received from the total station, and controls the inclination adjustment bolt operating means 43 via the control unit 70, thereby keeping the inclination error of the upper section column 11 within the allowable range.
[0055] <Connection fixing means> The connecting and fixing means 60 will be described with reference to Figures 5 and 6. Figure 5(a) is a side view of the connecting and fixing means 60, Figure 5(b) is a top view of the inclination adjustment bolt 42, and Figure 6 is a side view of the connecting and fixing means 60 in an exploded state.
[0056] 5 and 6, the coupling and fixing means 60 is a means for coupling and fixing the rotating shaft portion 43a to the connecting and connecting hole 42a. The coupling and fixing means 60 of this embodiment includes key grooves 61a, 61b provided on the inner surface of the connecting and connecting hole 42a and the outer peripheral surface of the rotating shaft portion 43a so as to face each other, a parallel key 62 that fits into the facing key grooves 61a, 61b, a plurality of fixing screw insertion holes 63 that penetrate from the outer peripheral surface of the head of the inclination adjustment bolt 42 toward the connecting and connecting hole 42a, and fixing screws 64 that are screwed into the fixing screw insertion holes 63 so that their tips abut against the parallel keys 62 or the outer peripheral surface of the rotating shaft portion 43a.
[0057] Although not shown, the fixing screw 64 has a male thread on its outer circumferential surface and a wrench insertion hole for inserting a wrench (for example, a hexagonal wrench) in its head. In this embodiment, three adjacent fixing screw insertion holes 63 are provided at equal intervals of 120° from each other.
[0058] Then, the rotary shaft 43a is inserted into the connecting hole 42a with the key groove 61a on the inner surface of the connecting hole 42a facing the key groove 61b on the outer circumferential surface of the rotary shaft 43a, and the parallel key 62 fits into both key grooves 61a, 61b. In this state, a fixing screw 64 is inserted into the fixing screw insertion hole 63 and screwed in so that the tip of the fixing screw 64 abuts against the parallel key 62 or the outer circumferential surface of the rotary shaft 43a, thereby coupling and fixing the rotary shaft 43a to the connecting hole 42a.
[0059] <Error measurement method> The error measurement means 200 of this embodiment is a means for measuring the error between the reference installation position of the upper section column 11 and the actual installation position, and its main component is, for example, a total station (not shown). The total station is a device that combines an electronic distance meter that measures distance by emitting a beam of light toward a measurement target point and electronically analyzing the beam of light reflected from the measurement target point, and a digital theodolite that measures angles. The total station can simultaneously measure angles (vertical angle and horizontal angle) and distance, and can also send measurement result data to a calculation device (control PC).
[0060] A case where a total station is used as the error measurement means 200 of this embodiment will be described. In this embodiment, the total station is connected to a control PC (notebook computer) so that data can be communicated. Therefore, the operation of the total station can be controlled by the control PC, and distance measurement result data can be imported into the control PC. Various operation icons for controlling the operation of the total station are displayed on the display screen of the control PC (liquid crystal display screen of the notebook computer), and the operation of the total station is controlled using these operation icons.
[0061] The distance measurement data is displayed on the display screen of the control PC (a liquid crystal display screen of a laptop computer). Note that since the total station has computer functions and a display device, the control and data display can also be performed within the total station itself.
[0062] The total station is installed at an appropriate location, and targets (prisms) are installed at two reference points with known position coordinates. The installation position (self-position) of the total station can be calculated by measuring the distance between the targets (prisms) installed at the two reference points. Only one target (prism) is required, and the target (prism) is moved to the reference point and installed each time the distance to each reference point is measured. In addition, a dedicated target sticker 90 is installed at an appropriate position on the upper section column 11.
[0063] To measure the tilt error of the upper section pillar 11, a total station is used to collimate and position the target seal 90 of the upper section pillar 11, and the deviation (error) from pre-stored reference position data is calculated. Then, based on the calculation results, a control PC controls the operation of the vertical position adjustment means 40 attached to the upper section pillar 11, thereby adjusting the tilt of the upper section pillar 11 so that the tilt error of the upper section pillar 11 falls within the reference value range. For example, if an erection jig 100 is attached to each side (four faces) of the upper section pillar 11, which is a square pillar, the tilt of the upper section pillar 11 is adjusted by adjusting the vertical position of the upper section pillar 11 in three mutually orthogonal axial directions (the vertical Z axis, and the horizontal X and Y axes).
[0064] Alternatively, 3D CAD model data, which are design values, may be stored, and the 3D CAD model data may be displayed in AR. At the same time, the edge of the upper section pillar 11 may be detected using an image recognition function, and the error between the edge data detected by image recognition and the coordinate data selected on the AR may be calculated to measure the tilt error of the upper section pillar 11.
[0065] <Outline of Plumbing Adjustment Method> The plumbing adjustment method of the present invention is a method for adjusting the tilt of the upper column member 10 (upper section column 11) when connecting a pair of column members 10 continuously vertically using the plumbing adjustment device described above, and as shown in Figure 7, it includes the following main processes: an erection jig installation process (S100), an error measurement process (S200), and an inclination adjustment process (S300).
[0066] <Erection jig installation process> The erection jig attachment process (S100) is a process for attaching the erection jig 100 to multiple locations on the outer peripheral surface of the column member 10. In this erection jig attachment process (S100), the connecting and fixing means 60 is used to connect and fix the rotating shaft portion 43a to the connecting and fixing hole 42a, thereby integrally connecting the tilt adjustment bolt operating means 43 of the erection jig 100 and the tilt adjustment bolt 42.
[0067] <Error measurement process> The error measurement step (S200) is a step for measuring the error between the installation reference position and the actual installation position of the upper section pillar 11. In this error measurement step (S200), a total station is used to perform surveying and error measurement. Note that the total station may only perform surveying, and the survey result data may be transmitted to a control PC, where the error may be calculated.
[0068] <Tilt adjustment process> The tilt adjustment process (S300) is a process for adjusting the error between the installation reference position and the actual installation position using the erection jig 100 (tilt adjustment bolt operating means 43) under the control of the tilt adjustment control means 300 so that it falls within a tolerance range. In this tilt adjustment process (S300), the rotating shaft portion 43a and the rotation drive means 43b are connected and fixed by the connecting and fixing means 60, so that the tilt adjustment bolt operating means 43 can be tilted in accordance with the tilt of the tilt adjustment bolt 42. Furthermore, in the tilt adjustment process (S300), the rotation prevention means 50 is used to prevent the tilt adjustment bolt operating means 43 from rotating in accordance with the rotation of the tilt adjustment bolt 42.
[0069] <Control flow (main routine)> The error measurement process (S200) and the inclination adjustment process (S300) will now be described in detail. As described above, the error measurement means 200 (total station) and the inclination adjustment control means 300 (control PC) are connected via a connection cable so as to be able to send and receive data, and the control PC and the plumbing adjustment device (vertical position adjustment means 40) are connected via a wireless LAN so as to be able to send and receive data.
[0070] In the following explanation, it is assumed that an erection jig 100 is attached to each side (four faces) of the column member 10 (upper section column 11 and lower section column 12) consisting of a square column, and the explanation will be given assuming three mutually perpendicular axial directions (the vertical direction is the Z axis, and the horizontal directions are the X axis and Y axis), and each plumbing adjustment device (vertical position adjustment means 40) is referred to as A, B, C, and D. As shown in Figure 12, A and C (X axis direction) and B and D (Y axis direction) are plumbing adjustment devices installed on opposing side faces.
[0071] As shown in Figure 8, when the "Start Plumbing" button is operated on the operation screen of the control PC to instruct the error measurement means 200 (total station) and plumbing adjustment device (vertical position adjustment means 40) to start plumbing (S1), a surveying start signal is sent to the total station (S2), and the total station sights the target (target seal 90 installed on the upper section pillar 11) and performs a survey (S3, S4), and compares the surveyed position data with the reference position data, which is the design value, to calculate an error value (S5).
[0072] When the control PC receives the error value (S6), it performs the Z-axis adjustment process (S7), the X-axis adjustment process (S8), and the Y-axis adjustment process (S9), and then performs the Z-axis adjustment process again (S10) to determine whether the errors on all three axes are within the allowable range (S11). If the errors on all three axes are within the allowable range, the plumbing adjustment process ends.
[0073] On the other hand, if the error on any of the three axes exceeds the allowable range, the process returns to the initial Z-axis adjustment step (S7), and each adjustment step (S7 to S10) is repeated until the error on all three axes is within the allowable range.
[0074] <Subroutine (Z-axis adjustment)> Next, the Z-axis adjustment subroutine will be described. As shown in Figure 9, in the Z-axis adjustment subroutine, the plumbing adjustment device is operated and, once its operation has been confirmed (S7a), a survey instruction signal is sent to the total station (S7b), as described in the main routine. The total station then sights the target (target seal 90 attached to the upper section pillar 11) and measures it (S7c, S7d), and compares the measured position data with the reference position data, which is the design value, to calculate an error value (S7e).
[0075] When the control PC receives the error value (S7f), it determines whether the Z-axis error is within the allowable range (S7g), and if the Z-axis error is within the allowable range, the Z-axis adjustment subroutine is terminated.
[0076] On the other hand, if the error in the Z axis exceeds the allowable range, it is determined whether the error is a positive value or a negative value (S7h). If the error is a positive value, an UP command (up command) signal is sent to all of the plumbing adjustment devices (A, B, C, D) ( S7i ). If the error is a negative value, a DOWN command (lowering command) is sent to all of the plumbing adjustment devices (A, B, C, D) (S7j). The plumbing adjustment devices perform plumbing adjustment operations (S7k) to try to eliminate the Z-axis error. The Z-axis adjustment process is then repeated until the Z-axis error is within the allowable range, and once the Z-axis error is within the allowable range, the Z-axis adjustment subroutine is terminated.
[0077] <Subroutine (X-axis adjustment)> Next, the X-axis adjustment subroutine will be described. As shown in Figure 10, in the X-axis adjustment subroutine, the plumbing adjustment device is operated and, once its operation has been confirmed (S8a), a survey instruction signal is sent to the total station (S8b), as described in the main routine. The total station then sights the target (target seal 90 attached to the upper section pillar 11) and measures it (S8c, S8d), and compares the measured position data with the reference position data, which is the design value, to calculate an error value (S8e).
[0078] When the control PC receives the error value (S8f), it determines whether the X-axis error is within the allowable range (S8g), and if the X-axis error is within the allowable range, the X-axis adjustment subroutine is terminated.
[0079] On the other hand, if the X-axis error exceeds the tolerance, it is determined whether the error is positive or negative (S8h). If the error is positive, an UP command (raise command) signal is sent to the plumbing adjustment device A, and a DOWN command (lower command) signal is sent to the plumbing adjustment device C (S8i). If the error is negative, an UP command (raise command) signal is sent to the plumbing adjustment device C, and a DOWN command (lower command) signal is sent to the plumbing adjustment device A (S8j). The plumbing adjustment device performs a plumbing adjustment operation (S8k) to attempt to eliminate the X-axis error. The X-axis adjustment process is then repeated until the X-axis error is within the tolerance, and once the X-axis error is within the tolerance, the X-axis adjustment subroutine is terminated.
[0080] <Subroutine (Y-axis adjustment)> Next, the Y-axis adjustment subroutine will be described. As shown in Figure 11, in the Y-axis adjustment subroutine, the plumbing adjustment device is operated and, once its operation has been confirmed (S9a), a survey instruction signal is sent to the total station (S9b), as described in the main routine. The total station then sights the target (the target seal 90 attached to the upper section pillar 11) and measures it (S9c, S9d), and compares the measured position data with the reference position data, which is the design value, to calculate an error value (S9e).
[0081] When the control PC receives the error value (S9f), it determines whether the Y-axis error is within the allowable range (S9g), and if the Y-axis error is within the allowable range, the Y-axis adjustment subroutine is terminated.
[0082] On the other hand, if the Y-axis error exceeds the tolerance, it is determined whether the error is positive or negative (S9h). If the error is positive, an UP command (raise command) signal is sent to the plumbing adjustment device B, and a DOWN command (lower command) signal is sent to the plumbing adjustment device D (S9i). If the error is negative, an UP command (raise command) signal is sent to the plumbing adjustment device D, and a DOWN command (lower command) signal is sent to the plumbing adjustment device B (S9j). The plumbing adjustment device performs a plumbing adjustment operation (S9k) to attempt to eliminate the Y-axis error. The Y-axis adjustment process is then repeated until the Y-axis error is within the tolerance, and once the Y-axis error is within the tolerance, the Y-axis adjustment subroutine is terminated.
[0083] <Specific examples of control methods> A specific example of the above-mentioned inclination adjustment step (S300) will be described using the schematic diagram shown in Fig. 12. In Fig. 12, (a) is a plan view showing the target posture of the column member 10, (b) is an elevation view showing the posture of the column member 10 before adjustment, and (c) is an elevation view showing the target posture of the column member 10 after adjustment. As shown in Fig. 12(a), the upper section column 11 has a rectangular cross section, and the plumbing adjustment devices attached to the side surfaces opposite each other in the X-axis direction are designated as A and C, and the plumbing adjustment devices attached to the side surfaces opposite each other in the Y-axis direction are designated as B and D.
[0084] In Figure 12(b), assume that the upper section pillar 11 is tilted to the right in the X-axis direction (the error Δx in the X-axis direction is 10 mm, the error Δy in the Y-axis direction is 0 mm, and the error Δz in the Z-axis direction is 1 mm, within the allowable range). In this case, the left side of the upper section pillar 11 is lowered by plumbing adjustment device A, and the right side of the upper section pillar 11 is raised by plumbing adjustment device C, thereby eliminating the tilt of the upper section pillar 11 in the X-axis direction, as shown in Figure 12(c). The same applies to adjusting the tilt in the Y-axis direction, but for adjusting the tilt in the Y-axis direction, plumbing adjustment devices B and D are used. In addition, in the Z-axis direction, all of the plumbing adjustment devices (A, B, C, and D) are raised or lowered to adjust the position of the upper section pillar 11.
[0085] <Tolerance of error> In the embodiment of the present invention, the allowable error values are as follows: These error values are set for the X-axis direction, the Y-axis direction, and the Z-axis direction. Building collapse: e≦H / 4000+7(mm) and e≦30(mm) Pillar member tilt: e≦H / 1000(mm) and e≦10(mm) e: Error value H: Height [Explanation of symbols]
[0086] 100 Construction Jig 200 Error measurement means (total station) 300 Tilt adjustment control means (control PC, control unit) 10 Column members 11 Upper segment pillar 12 Lower segment column 20 Erection Piece 30 Construction jig body (connection means) 31 Upper vertical groove 32 Lower longitudinal groove 33 Support steel plate 34 Yaita 35 Fixing bolt 36 Misalignment adjustment bolt 37 Anti-tip bolt 40 Vertical position adjustment means 41 Vertical position adjustment cam 41a Plate-shaped part 41b Cylindrical part 42 Tilt adjustment bolt 42a Connection connection hole 43 Tilt adjustment bolt operating means 43a Rotating shaft 43b Rotation drive means (electric motor) 43c Power supply means (battery) 44 Storage Case 50 Anti-rotation means 51 Anti-rotation plate 60 Connection fixation means 61a, b keyway 62 Parallel Key 63 Fixing screw insertion hole 64 fixing screws 70 Control Unit 80 Power Unit 90 Target Stickers
Claims
1. A plumbing adjustment device for adjusting the tilt of the upper column member when connecting a pair of column members vertically in succession, An erection jig attached to a plurality of locations on the outer peripheral surface of the pillar member; an error measuring means for measuring an error between an installation reference position of the column member located above and an actual installation position; an inclination adjustment control means for controlling the operation of the erection jig so that the error measured by the error measuring means falls within a tolerance range; Equipped with The erection jig is In order to temporarily fix a pair of pillar members arranged above and below, erection pieces attached to a plurality of locations on the outer peripheral surface of each pillar member; A connecting means for connecting opposing erection pieces in a pair of pillar members arranged above and below, a vertical position adjustment means provided in the vertical middle of the connection means for adjusting the vertical position of the upper column member; Equipped with The vertical position adjustment means is a vertical position adjustment cam that moves the column member disposed above up and down in the vertical direction; a tilt adjustment bolt that operates the vertical position adjustment cam and has a connection hole on its upper surface; tilt adjustment bolt operating means for operating the tilt adjustment bolt; Equipped with The tilt adjustment bolt operating means is a rotation shaft portion that engages with a connection hole provided on an upper surface of the tilt adjustment bolt; a rotation drive means for rotationally driving the rotary shaft portion; power supply means for supplying power to the rotation drive means; Equipped with the tilt adjustment control means controls the tilt adjustment bolt operation means so that the error measured by the error measurement means falls within a tolerance range; The tilt adjustment bolt operating means tilts in accordance with the tilt of the tilt adjustment bolt. A plumbing adjustment device for pillar members characterized by the above.
2. A pair of rotation prevention means is provided to sandwich the support steel plate protruding from the erection jig from both the left and right sides, the rotation prevention means is a means for preventing the inclination adjustment bolt operating means from rotating in accordance with the rotation of the inclination adjustment bolt, The coupling hole and the rotary shaft are provided with a coupling and fixing means for coupling and fixing the rotary shaft to the coupling hole. The plumbing adjustment device for a pillar member according to claim 1.
3. A plumbing adjustment method for adjusting the tilt of a column member located above a pair of column members when connecting them vertically in succession, an erection jig attachment process of attaching erection jigs to a plurality of locations on the outer peripheral surface of the pillar member; an error measurement step of measuring an error between an installation reference position of the pillar member located above and an actual installation position; a tilt adjustment process in which the erection jig is used to adjust the error between the installation reference position and the actual installation position so that it falls within a tolerance range; Including, In order to carry out each of the above steps, the system is provided with erection jigs attached to a plurality of locations on the outer peripheral surface of the pillar member, an error measuring means for measuring the error between the installation reference position of the pillar member located above and the actual installation position, and an inclination adjustment control means for controlling the operation of the erection jig so that the error measured by the error measuring means is within the range of an allowable value, The erection jig is provided with erection pieces attached to a plurality of locations on the outer peripheral surface of each pillar member in order to temporarily fix a pair of pillar members arranged vertically, a connecting means for connecting the opposing erection pieces in a pair of pillar members arranged vertically, and a vertical position adjusting means provided in the vertical middle of the connecting means to adjust the vertical position of the pillar member located above, The vertical position adjustment means includes a vertical position adjustment cam that moves the column member disposed above up and down in the vertical direction, an inclination adjustment bolt that operates the vertical position adjustment cam and has a connecting hole on the top surface, and an inclination adjustment bolt operating means that operates the inclination adjustment bolt, the tilt adjustment bolt operating means includes a rotary shaft portion that engages with a connecting hole provided on the upper surface of the tilt adjustment bolt, a rotary drive means that rotates the rotary shaft portion, and a power supply means that supplies power to the rotary drive means; In the tilt adjustment step, the tilt adjustment control means controls the tilt adjustment bolt operation means so that the error measured by the error measurement means falls within a tolerance range, and the tilt adjustment bolt operation means is tilted in accordance with the tilt of the tilt adjustment bolt. A method for adjusting the plumbing of a pillar member.
4. a pair of rotation prevention means for clamping the support steel plate protruding from the erection jig from both the left and right sides, the rotation prevention means being a means for preventing the tilt adjustment bolt operating means from rotating in accordance with the rotation of the tilt adjustment bolt, and a coupling and fixing means for coupling and fixing the rotating shaft portion to the coupling and fixing hole provided on the coupling and fixing hole; In the erection jig attachment step, the rotary shaft portion is coupled and fixed to the connecting coupling hole using the coupling and fixing means, thereby integrally connecting the tilt adjustment bolt operating means of the erection jig and the tilt adjustment bolt, In the tilt adjustment step, the rotation prevention means is used to prevent the tilt adjustment bolt operating means from rotating in accordance with the rotation of the tilt adjustment bolt. The plumbing adjustment method for a column member according to claim 3.
Citation Information
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