Grounding fitting for cable rack and connection method using the same

The grounding fitting for cable racks simplifies the electrical connection of cable racks, top covers, and bottom covers by using pressed connection portions, reducing work and ensuring reliable contact despite non-conductive treatments, addressing the inefficiencies of conventional methods.

JP7843490B2Active Publication Date: 2026-04-10LLC BREST IND RES INST
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
LLC BREST IND RES INST
Filing Date
2022-04-08
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

The process of electrically connecting cable racks, top covers, and bottom covers is time-consuming and requires extensive aerial work due to the large number of covers needing separate connections, especially when installed at high locations.

Method used

A grounding fitting for cable racks that includes first, second, and third connection portions, which are pressed against the covers and main girder surfaces to establish electrical connections, allowing simultaneous connection of both covers and the rack to a ground electrode.

Benefits of technology

Significantly reduces the work required for electrical connections by allowing simultaneous connection of cable racks to both covers, simplifying the process and ensuring reliable electrical contact despite non-conductive surface treatments, while minimizing shape changes and deformation risks.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a cable rack earth metal fitting capable of largely reducing an operation of electrically connecting a cable rack with an upper face cover and a lower face cover.SOLUTION: A cable rack earth metal fitting 1 for electrically connecting a ladder-like cable rack CR with an upper face cover TC and a lower face cover BC that are attached to the cable rack CR comprises: a first connection part 26 electrically connected with the upper face cover TC; a second connection part 27 that is provided at a position opposed to the first connection part 26 and electrically connected with the lower face cover BC; and a third connection part 28 that is provided at a connection part where the first connection part 26 is connected with the second connection part 27 and electrically connected with a side face of a master girder CR1.SELECTED DRAWING: Figure 1
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Description

Technical Field

[0001] The present invention relates to an earthing fitting for a cable rack for electrically connecting a cable rack and a cover of the cable rack. and connection methods using the same It relates to.

Background Art

[0002] A ladder-type cable rack used for wiring such as power cables and communication cables has a ladder shape including a pair of long main beams and a plurality of sub-beams installed between the main beams. The cable is disposed in an accommodation space surrounded by the main beams and the sub-beams. A plurality of such cable racks are arranged along the wiring path, and the ends of the main beams are connected to each other by a splicing fitting or the like.

[0003] For the cable rack, in order to ensure the protection and safety of the installed cable, one or both of an upper cover covering the upper part of the accommodation space and a lower cover covering the lower part of the accommodation space may be attached. The upper cover and the lower cover have a longitudinal dimension arranged along the main beam that is shorter than that of the cable rack. Therefore, a larger number of upper covers and lower covers than the number of cable racks are attached to the cable rack.

[0004] The cable rack, the upper cover, and the lower cover are formed of a conductive metal and have a function of allowing a leakage current to escape when a leakage occurs in the cable. When connecting and using a plurality of cable racks, adjacent cable racks are electrically connected to each other using a splicing fitting or an earthing bond wire, and the terminal cable rack is connected to a ground electrode. Also, for the upper cover and the lower cover, in the same manner as the cable rack, adjacent upper covers and adjacent lower covers are electrically connected to each other using an earthing bond wire or an earthing fitting for the cover (see, for example, Patent Document 1), and the terminal upper cover and the lower cover are connected to a ground electrode.

Prior Art Documents

Patent Documents

[0005] [Patent Document 1] Japanese Patent Application Publication No. 09-163539 [Overview of the project] [Problems that the invention aims to solve]

[0006] As described above, conventionally, it was necessary to electrically connect and ground the cable rack, the top cover, and the bottom cover. Furthermore, since the number of top and bottom covers is greater than the number of cable racks, the number of tasks required to electrically connect adjacent covers becomes very large as the length of the cable rack path increases. In addition, the top and bottom covers are attached to the cable rack after the cables are installed along the wiring path, and then adjacent covers are electrically connected to each other. Therefore, if the cable rack is installed at a high place, the aerial work platform must be moved many times depending on the length and number of covers, and the work platform must be raised and lowered each time to electrically connect the covers.

[0007] Thus, conventionally, electrically connecting the cable rack to the top and bottom covers was a very time-consuming process.

[0008] Therefore, the present invention aims to provide a grounding fitting for a cable rack that can significantly reduce the amount of work required to electrically connect the cable rack to the top cover and bottom cover. [Means for solving the problem]

[0009] To solve the above problems, the invention described in claim 1 is a grounding fitting for a cable rack used in a ladder-shaped cable rack comprising a pair of elongated main girders and a plurality of sub-girders erected between the main girders, a first cover attached to one side of the cable rack so as to cover the space between the pair of main girders, and a second cover attached to the other side of the cable rack opposite to the first side so as to cover the space between the pair of main girders, the grounding fitting comprising a first connection portion arranged along the width direction of the main girders perpendicular to the longitudinal direction of the main girders and the sub-girders, and electrically connected by breaking the surface treatment film of the first cover and pressing it, and the first Connection part The present invention is characterized by comprising: a second connecting portion provided at a position opposite to the main girder in the width direction, which is electrically connected by breaking the surface treatment film of the second cover and pressing it into place; and a third connecting portion provided at the connecting portion that connects the first connecting portion and the second connecting portion, which is electrically connected by breaking the surface treatment film of the side surface of the main girder and pressing it into place.

[0010] The invention described in claim 2 is an earth fitting for a cable rack as described in claim 1, wherein the first cover comprises a first cover body that covers the space between the pair of main beams and first side edges that are bent along the width direction of the main beams on both sides of the first cover body, and the second cover comprises a second cover body that covers the space between the pair of main beams and second side edges that are bent along the width direction of the main beams on both sides of the second cover body, and the first connecting portion comprises the first side edges By breaking the surface treatment film and pressing it together The first cover is electrically connected, and the second connection portion is connected to the second side edge portion. By breaking the surface treatment film and pressing it together The second cover is electrically connected, and the third connection portion is electrically connected by being pressed against the side surface of the main girder.

[0011] The invention described in claim 3 is an earth fitting for a cable rack as described in claim 2, wherein the first connecting portion comprises a first pressure contact portion inserted between the side surface of the main girder and the first side edge portion, a first opposing portion facing the first pressure contact portion on the outer surface side of the first side edge portion, a first screw hole provided in the first opposing portion, and a first bolt that is screwed into the first screw hole and presses against the first side edge portion, and also presses the first pressure contact portion against the inner surface side of the first side edge portion, and the second connecting portion comprises between the side surface of the main girder and the second side edge portion The third connecting portion is characterized by comprising: a second pressure contact portion to be inserted; a second opposing portion facing the second pressure contact portion on the outer surface side of the second side edge; a second screw hole provided in the second opposing portion; and a second bolt that is screwed into the second screw hole to press against the second side edge and press the second pressure contact portion against the inner surface side of the second side edge; and the third connecting portion comprises: a third opposing portion facing the side surface of the main girder; a third screw hole provided in the third opposing portion; and a third bolt that is screwed into the third screw hole to press against the side surface of the main girder.

[0012] The invention described in claim 4 is characterized in that, in the grounding fitting for a cable rack described in claim 3, the first pressure contact portion is provided with a corner portion that bites into and breaks the surface treatment film of the first side edge, and the second pressure contact portion is provided with a corner portion that bites into and breaks the surface treatment film of the second side edge.

[0013] The invention described in claim 5 is characterized in that, in the grounding fitting for a cable rack described in claim 4, the first and second pressure contact portions are formed by bending a plate material having a slit-shaped notch along the direction of the slit at the notch portion, and the corners of the first and second pressure contact portions are formed by the twisting of the edge of the notch.

[0014] The invention described in claim 6 is, 1The grounding fitting for a cable rack described above is characterized in that the cable rack has a sub-girder installed on one end of the main girder in the width direction, and the third connecting portion is located on the end of the main girder in the width direction where the sub-girder is installed.

[0015] The invention described in claim 7 is the same as claim 1 Any one of items from 6 The grounding fitting for a cable rack described above is characterized by comprising a locking fitting used in combination when electrically connecting the cable rack and the first cover or the second cover attached to the cable rack, wherein the locking fitting is formed by bending a substantially rectangular plate material so that its cross-section is substantially L-shaped to form a first surface and a second surface, the first surface is provided with a connecting portion which is connected by a bolt to either the first connecting portion or the second connecting portion, and the second surface is provided with a locking portion which is locked to one end of the main beam in the width direction, and when only the first cover is attached to the cable rack, the locking fitting connected to the second connecting portion is locked to the main beam to electrically connect the cable rack and the first cover by the first connecting portion and the third connecting portion, and when only the second cover is attached to the cable rack, the locking fitting connected to the first connecting portion is locked to the main beam to electrically connect the cable rack and the second cover by the second connecting portion and the third connecting portion.

[0016] The invention described in claim 8 is a ladder-shaped cable rack comprising a pair of elongated main girders and a plurality of sub-girders erected between the main girders, and a device attached to one side of the cable rack so as to cover the space between the pair of main girders. , having a first side edge portion that is bent along the width direction of the main beamAn earthing fitting for a cable rack used to electrically connect to a first cover, comprising: an earthing fitting body arranged along the width direction of the main beam perpendicular to the longitudinal direction of the main beam and the sub-beam, and comprising a first connecting portion electrically connected by breaking and pressing the surface treatment film of the first cover and a third connecting portion electrically connected by breaking and pressing the surface treatment film of the side surface of the main beam and a locking fitting connected to the earthing fitting body and having a locking portion that locks to one end of the main beam in the width direction; The first connecting portion comprises a first pressure-contact portion inserted between the side surface of the main girder and the first side edge, and the first pressure-contact portion comprises a corner portion that bites into and breaks the surface treatment film of the first side edge. It is characterized by the following:

[0017] The invention described in claim 9 is characterized in that, in the grounding fitting for a cable rack described in claim 8, the locking fitting is formed integrally with the grounding fitting body.

[0018] The invention described in claim 10 is a connection method for electrically connecting a ladder-shaped cable rack comprising a pair of elongated main beams and a plurality of sub-beams erected between the main beams, a first cover attached to one side of the cable rack so as to cover the space between the pair of main beams, and a second cover attached to the other side of the cable rack opposite to the first side so as to cover the space between the pair of main beams, wherein the first cover comprises a first cover body covering the space between the pair of main beams and first side edges where both sides of the first cover body are bent along the width direction of the main beams, and the second cover comprises a second cover body covering the space between the pair of main beams and both sides of the second cover body are bent along the width direction of the main beams The grounding fitting for the cable rack comprises a first connection portion that is electrically connected by breaking and pressing the surface treatment film of the first cover, and a second connection portion that is electrically connected by breaking and pressing the surface treatment film of the second cover, the first connection portion comprises a first pressure contact portion that is inserted between the side surface of the main girder and the first side edge portion, and the second connection portion comprises a second pressure contact portion that is inserted between the side surface of the main girder and the second side edge portion, and the grounding fitting for the cable rack is pressed against the side surface of the main girder at an angle with respect to the width direction of the main girder so that the first pressure contact portion and the second pressure contact portion do not interfere with the first side edge portion and the second side edge portion, and the grounding fitting for the cable rack is pressed against the side surface of the main girder at an angle with respect to the width direction of the main girder, and the grounding fitting for the cable rack is pressed against the first side edge portion child The girder is characterized in that, by rotating it about the longitudinal direction of the girder as an axis, the first pressure-welding portion is inserted between the side surface of the main girder and the first side edge, and at the same time, the second pressure-welding portion is inserted between the side surface of the main girder and the second side edge.

[0019] The invention described in claim 11 is characterized in that, in the connection method described in claim 10, the grounding fitting for the cable rack is provided with a third connection portion which is electrically connected by breaking and pressing the surface treatment film on the side surface of the main girder. [Effects of the Invention]

[0020] According to the invention described in claim 1, since the cable rack can be electrically connected to the first cover and the second cover, at the terminal, only the cable rack needs to be connected to the ground electrode, and it is possible to ground the entire cable rack, the first cover, and the second cover. Conventionally, since adjacent covers were electrically connected to each other, it was necessary to perform electrical connection work on the upper cover and the lower cover separately. In contrast, according to the present invention, since the electrical connection between the upper cover and the lower cover can be simultaneously achieved by simply connecting one earthing fitting for the cable rack, it is possible to significantly reduce the work required for electrical connection of the covers and the like.

[0021] According to the invention described in claim 2, the first connection portion, the second connection portion, and the third connection portion of the earthing fitting for the cable rack are electrically connected by pressure contact with the first cover, the second cover, and the cable rack, respectively. Therefore, it is possible to perform the work more simply and quickly than a configuration in which a conduction hole or the like is provided in the cover and a bolt is inserted through this conduction hole for connection. Further, even when a non-conductive surface treatment is applied to the surface of the cable rack or the cover to impart weather resistance, rust prevention, etc., the surface treatment can be broken by pressure contact of the first connection portion or the like. Thus, it is possible to reliably electrically connect the cable rack to the first cover and the second cover.

[0022] According to the invention described in claim 3, the first side edge portion of the first cover is sandwiched between the first pressure contact portion and the first opposing portion, and the second side edge portion of the second cover is sandwiched between the second pressure contact portion and the second opposing portion. Therefore, it is possible to simply and quickly attach the earthing fitting for the cable rack to the side surfaces of the cable rack, the first cover, and the second cover. Further, by simply screwing and tightening bolts into the respective screw holes provided in the first opposing portion, the second opposing portion, and the third opposing portion, each bolt can be pressure contacted with the cable rack, the first cover, and the second cover. Thus, it is possible to perform the work more simply and quickly.

[0023] According to the invention described in claim 4, the first and second pressure-contact portions are provided with corners that bite into and break the surface treatment films of the first and second covers, respectively, so that electrical connection can be reliably made by applying pressure with bolts.

[0024] According to the invention described in claim 5, by utilizing bending to form the first and second pressure-welded portions and twisting the edges of the notches to form corners, it is not necessary to create protrusions by blanking or punching as in the conventional method, and the number of steps required to manufacture the ground fittings for cable racks can be reduced. Furthermore, in blanking and punching, the shape of the formed protrusions may change due to die wear (such as blunting of sharp angles), but in the present invention, since twisting during bending is utilized, the effects of die wear and other factors can be reduced. Therefore, it is possible to stably obtain corners with little change in shape.

[0025] According to the invention described in claim 6, in the width direction of the main girder, the third connecting portion is positioned on one end side where the sub-girder is installed and the rigidity is increased, so that the main girder does not deform when the third connecting portion is pressed against the main girder.

[0026] According to the invention described in claim 7, by using a locking fitting that can be used in conjunction with the grounding fitting for cable racks, it is possible to electrically connect the cable rack to the first cover or the second cover attached to the cable rack. Therefore, even if the cable rack cover is single-sided, the grounding fitting for cable racks of the present invention can be effectively used without having to prepare a separate grounding fitting. [Brief explanation of the drawing]

[0027] [Figure 1] This is a perspective view showing a usage configuration in which the grounding fitting for a cable rack according to an embodiment of this invention is attached to a cable rack. [Figure 2]The first perspective view (a) shows the grounding bracket for the cable rack from the front, and the second perspective view (b) shows the bracket body from the rear. [Figure 3] (c) is a front view of the metal fitting body, (c) is a cross-sectional view of XX, (d) is a side view of the metal fitting body, and (e) is a rear view of the metal fitting body 2. [Figure 4] Figure 3(e) shows the YY cross-section (f) and the unfolded view (g) of the metal fitting body. [Figure 5] This is an explanatory diagram showing the procedure for attaching the grounding bracket for cable racks to a cable rack. [Figure 6] This is a cross-sectional view showing the cable rack grounding bracket attached to the cable rack. [Figure 7] This diagram illustrates a comparison between electrically connecting linked cable racks using conventional methods and using grounding brackets for cable racks. [Figure 8] This is a perspective view showing the grounding fitting for the cable rack and the locking fitting used in conjunction with it. [Figure 9] This is a cross-sectional view showing the state in which the cable rack and the top cover are electrically connected using the grounding fittings and locking fittings for the cable rack. [Figure 10] This is a perspective view showing the configuration of the cable rack, top cover, and bottom cover. [Modes for carrying out the invention]

[0028] The present invention will be described below based on the illustrated embodiments.

[0029] (Embodiment 1) Figure 1 is a perspective view showing the usage configuration of the grounding fitting 1 for the cable rack according to this embodiment. The grounding fitting 1 for the cable rack is a fitting for electrically connecting the cable rack CR with the upper cover (first cover) TC and the lower cover (second cover) BC of the cable rack CR.

[0030] In this embodiment, we describe a grounding fitting 1 for a cable rack that is attached to a cable rack CR installed in a substantially horizontal direction. However, the grounding fitting 1 for a cable rack in this embodiment can also be applied to a cable rack CR installed in a substantially vertical direction, and to covers attached to the front and rear surfaces of the cable rack CR.

[0031] Here, the cable rack CR, the top cover TC, and the bottom cover BC will be described. As shown in Figure 10, the cable rack CR in this embodiment is a ladder-type cable rack used for wiring power cables, communication cables (not shown), etc. The cable rack CR has a ladder shape comprising a pair of long main beams CR1 and CR2, and a plurality of sub-beams CR3 installed between the main beams CR1 and CR2. Cables are arranged in the storage space enclosed by the main beams CR1 and CR2 and the sub-beams CR3.

[0032] The cross-sections perpendicular to the longitudinal direction of the main girders CR1 and CR2 are roughly U-shaped with openings facing inward to increase rigidity, and the central portion protrudes inward toward the cable rack CR. Mounting holes are provided at both ends of the main girders CR1 and CR2 to which connecting fittings are attached when linking multiple cable rack CR units.

[0033] The sub-girders CR3 are rod-shaped bodies with a roughly U-shaped cross-section perpendicular to the longitudinal direction. The sub-girders CR3 are installed at predetermined intervals on one end of the width direction of the main girders CR1 and CR2, perpendicular to the longitudinal direction of the main girders CR1 and CR2, for example, on the lower end side.

[0034] Cable racks CR may be fitted with either an upper cover TC covering the top of the storage space, or a lower cover BC covering the bottom of the storage space, or both, to ensure the protection and safety of the cables installed inside. The upper cover TC and lower cover BC have shorter longitudinal dimensions than the cable racks CR when positioned along the main girders CR1 and CR2. Therefore, more upper covers TC and lower covers BC are fitted to a cable rack CR than there are cable racks CR.

[0035] The upper cover TC comprises an upper cover body (first cover body) TC1 that covers the space between a pair of main girders CR1 and CR2, and upper cover side edges (first side edges) TC2, on both sides of the upper cover body TC1 that are bent to conform to the width direction of the main girders CR1 and CR2. Similarly, the lower cover BC comprises a lower cover body (second cover body) BC1 that covers the space between a pair of main girders CR1 and CR2, and lower cover side edges (second side edges) BC2, on both sides of the lower cover body BC1 that are bent to conform to the width direction of the main girders CR1 and CR2.

[0036] The cable rack CR, top cover TC, and bottom cover BC are formed from conductive metal plates. Furthermore, the surfaces of the cable rack CR, top cover TC, and bottom cover BC are coated with a non-conductive surface treatment film to provide weather resistance, corrosion resistance, and other properties. The top cover TC and bottom cover BC may be made from the same material.

[0037] Next, the grounding bracket 1 for the cable rack will be described. Figure 2 shows a first perspective view (a) of the grounding bracket 1 for the cable rack from the front, and a second perspective view (b) of the bracket body 2 that constitutes the grounding bracket 1 for the cable rack from the rear. Figure 3 shows a front view (c) of the bracket body 2, a cross-sectional view of (c) XX, a side view (d) of the bracket body 2, and a rear view (e) of the bracket body 2. Furthermore, Figure 4 shows a cross-sectional view (f) of Figure 3(e) and an unfolded view (g) of the bracket body 2.

[0038] The cable rack grounding fitting 1 comprises a rod-shaped fitting body 2, an upper cover bolt (first bolt) 3, a lower cover bolt (second bolt) 4, and a rack bolt (third bolt) 5, which are screwed into the fitting body 2. As shown in Figure 1, the cable rack grounding fitting 1 is positioned along the width direction of the main beam CR1, avoiding the connection holes for connecting the main beam CR1.

[0039] The rack bolt 5 is longer than the top cover bolt 3 and the bottom cover bolt 4 in order to connect to the cable rack CR. Furthermore, the top cover bolt 3, the bottom cover bolt 4, and the rack bolt 5 are recessed-tip bolts in which only the peripheral edge of the tip surface protrudes in an annular shape in the insertion direction. The tips of the top cover bolt 3, the bottom cover bolt 4, and the rack bolt 5 are pressed against the main beam CR1, the top cover TC, and the bottom cover BC, thereby breaking the surface treatment film and coming into contact with the base metal.

[0040] The metal fitting body 2 is formed by bending a roughly rectangular metal substrate 2A, as shown in Figure 4(g), along four folding lines indicated by dashed lines in the figure, so that its cross-section is roughly U-shaped, thereby forming a rod-shaped body having a front portion 21, left and right side portions 22, 23, and a pair of back portions 24, 25.

[0041] The metal fitting body 2 includes a first connecting portion 26 that is electrically connected to the upper cover TC, a second connecting portion 27 that is located opposite the first connecting portion 26 and is electrically connected to the lower cover BC, and a third connecting portion 28 that is located at the connecting portion that connects the first connecting portion 26 and the second connecting portion 27 and is electrically connected to the side surface of the main girder CR1.

[0042] The first connection portion 26 is pressed against the side edge portion TC2 of the upper cover and electrically connects to the upper cover TC. The second connection portion 27 is pressed against the side edge portion BC2 of the lower cover and electrically connects to the lower cover BC. Furthermore, the third connection portion 28 is pressed against the side surface of the main girder CR1 and electrically connects to it. Note that "pressure contact and electrically connect" means breaking the surface treatment film of the cable rack CR, upper cover TC, and lower cover BC and making contact with the base metal.

[0043] The first connecting portion 26 includes first pressure contact portions 261 and 262 inserted between the side surface of the main girder CR1 and the upper cover side edge portion TC2, a first opposing portion 263 facing the first pressure contact portions 261 and 262 on the outer surface side of the upper cover side edge portion TC2, a first screw hole 264 provided in the first opposing portion 263, and an upper cover bolt 3 that screws into the first screw hole 264 to press against the upper cover side edge portion TC2, and also presses the first pressure contact portions 261 and 262 against the inner surface side of the upper cover side edge portion TC2.

[0044] The first pressure contact portions 261 and 262 are provided on the upper ends of a pair of rear portions 24 and 25, utilizing a pair of slit-shaped notches 2A1 and 2A2 provided on the metal substrate 2A. Of the first pressure contact portions 261 and 262, the outer corner of one of the pressure contact portions 262 is cut at an angle to avoid interference with the top cover body TC1 when attaching the cable rack ground fitting 1 to the cable rack CR. This angled notch may also be provided on the outside of the other first pressure contact portion 261.

[0045] Furthermore, as shown in Figure 4(f), the base portions of the first pressure contact portions 261 and 262 are provided with blade-shaped corners 261a and 262a that bite into and break the surface treatment film of the upper cover side edge portion TC2. These corners 261a and 262a are formed by bending the notches 2A1 and 2A2 of the metal substrate 2A shown in Figure 4(g) along the slit direction, causing the edges of the notches 2A1 and 2A2 to twist.

[0046] The back portions of the first contact portions 261 and 262 are provided with oval-shaped contact portions 261b and 262b that protrude to the back side. These contact portions 261b and 262b are provided to reduce friction by reducing the contact area between the cable rack grounding fitting 1 and the side surface of the main beam CR1 when attaching the fitting to the cable rack CR.

[0047] The first opposing portion 263 is provided at the upper end of the front portion 21. The first screw hole 264 is located approximately in the center of the first opposing portion 263 in the width direction. The first screw hole 264 has internal threads formed on the inner circumferential surface of the hole, which has been made cylindrical by burring.

[0048] The second connecting portion 27 includes second pressure contact portions 271 and 272 inserted between the side surface of the main girder CR1 and the lower cover side edge portion BC2, a second opposing portion 273 facing the second pressure contact portions 271 and 272 on the outer surface side of the lower cover side edge portion BC2, a second screw hole 274 provided in the second opposing portion 273, and a lower cover bolt 4 that screws into the second screw hole 274 to press against the lower cover side edge portion BC2, and also presses the second pressure contact portions 271 and 272 against the inner surface side of the lower cover side edge portion BC2.

[0049] The second pressure contact portions 271 and 272 are provided at the lower ends of a pair of rear portions 24 and 25, utilizing a pair of slit-shaped notches 2A3 and 2A4 provided in the metal substrate 2A. Of the second pressure contact portions 271 and 272, the outer corner of one of the pressure contact portions 272 is cut at an angle to avoid interference with the bottom cover body BC1 when attaching the cable rack ground fitting 1 to the cable rack CR. This angled notch may also be provided at the outer corner of the other second pressure contact portion 271.

[0050] Furthermore, the base portions of the second pressure-welded portions 271 and 272 are provided with blade-shaped corners 271a and 272a that bite into and break the surface treatment film of the lower cover side edge BC2. These corners 271a and 272a are formed in the same way as the corners 261a and 262a of the first pressure-welded portions 261 and 262a and have the same shape, so a detailed explanation is omitted.

[0051] The back portions of the second pressure contact portions 271 and 272 are provided with oval-shaped contact portions 271b and 272b that protrude to the back side. These contact portions 271b and 272b are provided to reduce friction by reducing the contact area between the bracket body 2 and the side surface of the main beam CR1 when attaching the cable rack grounding bracket 1 to the cable rack CR.

[0052] The second opposing portion 273 is provided at the lower end of the front portion 21. The second screw hole 274 is located approximately in the center of the second opposing portion 273 in the width direction. The second screw hole 274 has internal threads formed on the inner circumferential surface of the hole, which has been made cylindrical by burring.

[0053] The third connecting portion 28 comprises a third opposing portion 281 facing the side surface of the main girder CR1, a third screw hole 282 provided in the third opposing portion 281, and a rack bolt 5 that is screwed into the third screw hole 282 and pressed against the side surface of the main girder CR1. The third screw hole 282 has an internal thread formed on the inner surface of the cylindrical hole, which has been formed by burring.

[0054] The third opposing portion 281 and the third screw hole 282 are located on the lower side of the front portion 21 of the metal fitting body 2. This is to prevent the rack bolt 5, which is screwed into the third screw hole 282, from contacting and pressing against the main beam CR1, thereby preventing the main beam CR1 from deforming inward and bending. The sub-beam CR3 is positioned on the lower side of the metal fitting body 2, that is, on the lower end side in the width direction of the main beam CR1, and has high rigidity, making it possible to prevent deformation of the main beam CR1 due to the pressure of the rack bolt 5.

[0055] Furthermore, the metal fitting body 2, with the exception of the third connecting portion 28, has a shape that is rotationally symmetrical with respect to a central axis C that runs along the front-rear direction of the metal fitting body 2. In other words, the first connecting portion 26 and the second connecting portion 27 have the same shape.

[0056] Next, the operation of the above embodiment will be described. Figure 5 shows the procedure for attaching the cable rack grounding fitting 1 to the cable rack CR. As shown in Figure (a), the cable rack grounding fitting 1 is pressed against the side of the main girder CR1 at an angle so that the first contact portion 262 and the second contact portion 272 do not interfere with the upper cover side edge portion TC2 and the lower cover side edge portion BC2.

[0057] Subsequently, the grounding fitting 1 for the cable rack is rotated in the direction of arrow Z. As a result, as shown in Figures 5(b) and 6, the first pressure contact portions 261 and 262 are inserted between the side of the main girder CR1 and the side edge TC2 of the upper cover, and the first opposing portion 263 faces the outer side of the side edge TC2 of the upper cover. Similarly, the second pressure contact portions 271 and 272 are inserted between the side of the main girder CR1 and the side edge BC2 of the lower cover, and the second opposing portion 273 faces the outer side of the side edge BC2 of the lower cover.

[0058] When the top cover bolt 3 is tightened in this state, the tip of the top cover bolt 3 bites into the outer surface of the top cover side edge TC2, breaking the surface treatment film and making contact with the base metal. Also, as the top cover bolt 3 is tightened, the first pressure contact portions 261 and 262 press against the inner surface of the top cover side edge TC2, and the corner portions 261a and 262a break the surface treatment film and make contact with the base metal. As a result, the cable rack ground fitting 1 and the top cover TC are electrically connected.

[0059] Similarly, when the bottom cover bolt 4 is tightened, the tip of the bottom cover bolt 4 bites into the outer surface of the bottom cover side edge BC2, breaking the surface treatment film and making contact with the base metal. Also, as the bottom cover bolt 4 is tightened, the second pressure contact portions 271 and 272 press against the inner surface of the bottom cover side edge BC2, and the corner portions 271a and 272a break the surface treatment film and make contact with the base metal. As a result, the cable rack grounding fitting 1 and the bottom cover BC are electrically connected.

[0060] Furthermore, when the rack bolts 5 are tightened, the tips of the rack bolts 5 bite into the side surface of the main beam CR1, breaking the surface treatment film and making contact with the base metal. This electrically connects the cable rack grounding fitting 1 and the cable rack CR. In addition, the cable rack CR is electrically connected to the top cover TC and the bottom cover BC via the cable rack grounding fitting 1.

[0061] Figure 7 is a schematic diagram showing a rack path consisting of multiple cable racks CR and multiple top covers TC and bottom covers BC attached to these cable racks CR. Each horizontal line represents one cable rack CR and one top cover TC and bottom cover BC, and the black circles at both ends of each line represent the ends of each cable rack CR and each top cover TC and bottom cover BC. In this embodiment, each cable rack CR has a length of, for example, 3m, and each top cover TC and bottom cover BC has a length of, for example, 1.5m, with two top covers TC and two bottom covers BC used for each cable rack CR. In addition, six cable racks CR are connected, forming a rack path with a total length of 18m.

[0062] When installing the top cover TC and bottom cover BC using a rack path as shown in Figure 7, conventionally, adjacent top covers TC and adjacent bottom covers BC were electrically connected using grounding wires or grounding fittings for the covers. The connection points are indicated by dashed ellipses, and a total of 22 connection operations are required. For example, if this rack path is installed at a high place that is out of reach, work using an aerial work platform with a height-adjustable work platform is required. In other words, conventionally, the aerial work platform had to be moved 11 times at 1.5m intervals (at the positions of the dashed ellipses), and each time the work platform had to be raised and lowered to perform the electrical connection work on the top cover TC and bottom cover BC 22 times.

[0063] In Figure 7, the rectangle extending vertically from the top cover TC to the bottom cover BC represents the grounding bracket 1 for the cable rack according to this embodiment. One grounding bracket 1 is attached to each top cover TC and bottom cover BC. Therefore, in the rack path shown in Figure 7, installation of 12 grounding brackets 1 for the cable rack is required. Furthermore, since the grounding bracket 1 for the cable rack can be attached to any position on the cover, by bringing two adjacent grounding brackets 1 closer together, two grounding brackets 1 can be attached at a distance that can be reached from the workbench. Therefore, when using the grounding bracket 1 for the cable rack according to this embodiment, the aerial work platform is moved 6 times every 3m, and the workbench is raised and lowered each time to perform the installation of the grounding bracket 1 for the cable rack 1 11 times. This reduces both the number of times the aerial work platform is moved and the number of times the grounding bracket 1 is installed compared to conventional methods. Thus, by using the grounding fitting 1 for the cable rack of this embodiment, it is possible to significantly reduce the amount of work required to electrically connect the cable rack CR with the top cover TC and the bottom cover BC.

[0064] As described above, the grounding fitting 1 for cable racks according to this embodiment allows for the electrical connection of the cable rack CR with the upper cover TC and the lower cover BC. Therefore, at the end, by connecting only the cable rack CR to the grounding electrode, the entire cable rack CR, upper cover TC, and lower cover BC can be grounded. Furthermore, conventionally, adjacent covers were electrically connected to each other, requiring separate electrical connection work for the upper cover and the lower cover. In contrast, with this embodiment, the electrical connection of the upper cover and the lower cover can be performed simultaneously by connecting only one grounding fitting 1 for cable racks, significantly reducing the amount of work required for electrical connections of covers and the like.

[0065] Furthermore, with the grounding fitting 1 for cable racks according to this embodiment, the first connection part 26, the second connection part 27, and the third connection part 28 are electrically connected by pressing them against the upper cover TC, the lower cover BC, and the cable rack CR, respectively. This allows for simpler and faster work compared to configurations where conductive holes are provided in the cover and bolts are inserted through these holes for connection. In addition, even if the surfaces of the cable rack CR, the upper cover TC, and the lower cover BC are treated with a non-conductive surface treatment to provide weather resistance, rust prevention, etc., the surface treatment can be broken by pressing the first connection part 26, etc., against the cable rack CR, the upper cover TC, and the lower cover BC, thus ensuring reliable electrical connection.

[0066] Furthermore, according to the cable rack grounding fitting 1 of this embodiment, the upper cover side edge TC2 is sandwiched between the first pressure contact portions 261, 262 and the first opposing portion 263, and the lower cover side edge BC2 is sandwiched between the second pressure contact portions 271, 272 and the second opposing portion 273, so that the cable rack grounding fitting 1 can be easily and quickly attached to the sides of the cable rack CR, upper cover TC and lower cover BC. In addition, by simply screwing the bolts 3, 4, and 5 into the screw holes 264, 274, and 282 provided in the first opposing portion 263, second opposing portion 273 and third opposing portion 281, and tightening them, the bolts 3, 4, and 5 can be pressed against the upper cover TC, lower cover BC and cable rack CR, so that the work can be performed easily and quickly.

[0067] Furthermore, according to the grounding fitting 1 for cable racks of this embodiment, the first pressure contact portions 261, 262 and the second pressure contact portions 271, 272 are provided with corner portions 261a, 262a, 271a, 272a that bite into and break the surface treatment film of the upper cover TC and the lower cover BC, so that in addition to pressure contact by bolts 3, 4, and 5, reliable electrical connection can be made.

[0068] Furthermore, according to the cable rack grounding fitting 1 of this embodiment, by utilizing the bending process to form the first pressure-contact portions 261, 262 and the second pressure-contact portions 271, 272, twists are applied to the edges of the slit-shaped notches 2A1, 2A2, 2A3, 2A4 to form the corner portions 261a, 262a, 271a, 272a. Therefore, as in the conventional method, there is no need to create protrusions by blanking or punching, and the number of steps required to manufacture the cable rack grounding fitting 1 can be reduced. In addition, in blanking or punching, the shape of the formed protrusions may change due to mold wear (such as blunting of sharp angles), but in the present invention, since twists are utilized during bending, the effects of mold wear can be reduced. Therefore, it is possible to stably obtain corner portions 261a, 262a, 271a, 272a with little change in shape.

[0069] Furthermore, according to the cable rack grounding fitting 1 of this embodiment, the third connecting portion 28 is positioned on one end of the main girders CR1 and CR2 where the child girder CR3 is installed and the rigidity is increased, so that pressing the third connecting portion 28 against the main girder CR1 does not cause the main girder CR1 to deform.

[0070] (Embodiment 2) Next, a second embodiment of the present invention will be described. This embodiment relates to a locking fitting used in combination with the grounding fitting 1 for the cable rack when electrically connecting the cable rack CR to the upper cover TC or lower cover BC attached to the cable rack CR.

[0071] As shown in Figure 8, the locking fitting 6 is formed by bending a roughly rectangular plate material so that its cross-section is roughly L-shaped, creating a first surface 61 and a second surface 62. The first surface 61 is provided with a connecting hole (connecting part) 611 which connects to either the first connecting part 26 or the second connecting part 27 of the cable rack grounding fitting 1. The second surface 62 is provided with a hook-shaped locking part 621 which locks to one end of the main girder CR1 in the width direction.

[0072] The locking fitting 6 is positioned such that its first surface 61 is inserted into the cable rack ground fitting 1, with its second surface 62 positioned on the rear side of the cable rack ground fitting 1. The bolt 4 for the lower cover of the second connecting portion 27 is inserted into the connecting hole 611 and connected to the fitting body 2. The tip of the first surface 61 of the locking fitting 6 is bent to contact the inner surface of the cable rack ground fitting 1, and is further cut out to avoid interference with the third connecting portion 28.

[0073] Figure 9 shows the state in which the cable rack CR and the top cover TC are electrically connected using the cable rack grounding fitting 1 and the locking fitting 6. The locking fitting 6, which is connected to the second connection part 27 of the cable rack grounding fitting 1, has its locking part 621 locked to the lower end of the main girder CR1, and the cable rack CR and the top cover TC are electrically connected by the first connection part 26 and the third connection part 28.

[0074] The explanation above describes the case where the cable rack CR and the upper cover TC are electrically connected using the cable rack grounding fitting 1 and the locking fitting 6. However, it is also possible to electrically connect the cable rack CR and the lower cover BC. In this case, the locking fitting 6 is connected to the first connection part 26 of the cable rack grounding fitting 1. The locking part 621 of the locking fitting 6 connected to the cable rack grounding fitting 1 is then locked to the upper end of the main girder CR1, and the cable rack CR and the lower cover BC are electrically connected by the second connection part 27 and the third connection part 28.

[0075] Furthermore, in this embodiment, as shown in Figure 9, the metal fitting body 2 and the locking fitting 6 are connected by a bottom cover bolt 4, and the cable rack CR is electrically connected by a rack bolt 5. However, the functions of these two bolts 4 and 5 may be combined into a single bolt. Specifically, instead of the bottom cover bolt 4, a rack bolt 5, which is longer than the bottom cover bolt 4, is screwed into the second screw hole 274 of the second connection part 27, the rack bolt 5 is inserted through the connecting hole 611 of the locking fitting 6, and then pressed against the side of the cable rack CR. This allows the metal fitting body 2 and the locking fitting 6 to be connected and the cable rack CR to be electrically connected with a single rack bolt 5, reducing the number of bolts used to two and improving work efficiency.

[0076] Furthermore, when electrically connecting the cable rack CR and the bottom cover BC, the number of bolts used can be reduced in the same way as described above. Specifically, instead of the top cover bolts 3, rack bolts 5, which are longer than the top cover bolts 3, can be screwed into the first screw holes 264 of the first connection part 26, the rack bolts 5 can be inserted through the connecting holes 611 of the locking fitting 6, and then pressed against the side of the cable rack CR.

[0077] According to this embodiment, by using a locking fitting 6 that can be used in conjunction with the cable rack grounding fitting 1, it is possible to electrically connect the cable rack CR with the upper cover TC or lower cover BC attached to the cable rack CR. Therefore, even if the cable rack CR has a single-sided cover, it is possible to effectively utilize the cable rack grounding fitting 1 of this embodiment without having to prepare a separate grounding fitting.

[0078] Although embodiments of this invention have been described above, the specific configuration is not limited to the embodiments described above, and any design changes, etc., that do not depart from the gist of this invention are also included. For example, corner portions 261a, 262a, 271a, and 272a are formed on the first pressure contact portions 261, 262 and the second pressure contact portions 271, 272 in order to electrically connect the ground fitting 1 for the cable rack with the upper cover TC and the lower cover BC, but the corner portions 261a, 262a, 271a, and 272a may be omitted if the electrical connection is reliably made by bolts 3, 4, and 5.

[0079] Furthermore, in the above embodiment, a gap was provided between the first pressure contact portions 261, 262 and the second pressure contacts 271, 272 in order to allow the bolts 3, 4, and 5 to be inserted through the cable rack CR1, the top cover TC, and the bottom cover BC. However, if holes for inserting the bolts 3, 4, and 5 are provided on the back side of the ground fitting 1 for the cable rack, the first pressure contact portions 261, 262 and the second pressure contacts 271, 272 may be formed integrally.

[0080] Furthermore, in the above embodiment, when only one of the top cover TC or the bottom cover BC is attached to the cable rack CR1, the cable rack ground fitting 1 and the locking fitting 6 are combined to make an electrical connection. However, a dedicated ground fitting may also be provided. Specifically, the locking fitting 6 is integrally provided with the cable rack ground fitting 1 in place of the first connection part 26 or the second connection part 27 on one end. This eliminates the need to assemble the locking fitting 6 into the cable rack ground fitting 1, thereby improving work efficiency.

[0081] Furthermore, the grounding fitting 1 and locking fitting 6 for cable racks according to this embodiment can be applied to cable racks with different main beam width dimensions by adjusting the length of the fitting body 2 and the size of the locking fitting 6. [Explanation of symbols]

[0082] 1. Grounding bracket for cable rack 2 Metal fittings 26 First connection part 261, 262 First pressure-welded section 261a, 262a corner 263 First opposing part 264 First screw hole 27 Second connection section 271, 272 Second pressure-welded section 271a, 272a corner 273 Second opposing part 274 Second screw hole 28 Third connection section 281 Third opposing part 282 Third screw hole 3. Bolts for the top cover (first bolt) 4. Bolts for the bottom cover (second bolt) 5. Rack bolt (third bolt) 6. Locking mechanism 61 First side 611 Connection hole (connection part) 62 Second side 621 Locking part CR Cable Rack CR1, CR2 main digits CR3 sub-digit TC Top Cover (First Cover) TC2 Top cover side edge (first side edge) BC bottom cover (second cover) BC2 Lower cover side edge (second side edge)

Claims

1. A grounding fitting for a cable rack used in a ladder-shaped cable rack comprising a pair of long main beams and a plurality of sub-beams erected between the main beams, a first cover attached to one side of the cable rack so as to cover the space between the pair of main beams, and a second cover attached to the other side of the cable rack opposite to the first side so as to cover the space between the pair of main beams, The main beam and the sub-beam are arranged to be positioned along the width direction of the main beam, which is perpendicular to the longitudinal direction of the main beam and the sub-beam. A first connection portion is electrically connected by breaking and pressing the surface treatment film of the first cover, A second connecting portion is provided at a position opposite to the first connecting portion along the width direction of the main girder, and is electrically connected by breaking the surface treatment film of the second cover and pressing it into place, A third connecting portion is provided at the connecting portion that connects the first connecting portion and the second connecting portion, and is electrically connected by breaking the surface treatment film on the side surface of the main girder and pressing it into place. A grounding fitting for cable racks, characterized by having the following features.

2. The first cover comprises a first cover body that covers the space between the pair of main beams and first side edges that are bent along the width direction of the main beam on both sides of the first cover body, and the second cover comprises a second cover body that covers the space between the pair of main beams and second side edges that are bent along the width direction of the main beam on both sides of the second cover body. The first connecting portion is electrically connected to the first cover by breaking the surface treatment film on the first side edge and pressing it into place. The second connecting portion is electrically connected to the second cover by breaking the surface treatment film on the second side edge and pressing it into place. The third connection portion is electrically connected by being pressed against the side surface of the main girder. The grounding fitting for a cable rack according to feature 1.

3. The first connecting portion comprises a first pressure contact portion inserted between the side surface of the main girder and the first side edge portion, a first opposing portion facing the first pressure contact portion on the outer surface side of the first side edge portion, a first screw hole provided in the first opposing portion, and a first bolt that is screwed into the first screw hole and presses against the first side edge portion, and also presses the first pressure contact portion against the inner surface side of the first side edge portion. The second connecting portion comprises a second pressure contact portion inserted between the side surface of the main girder and the second side edge portion, a second opposing portion facing the second pressure contact portion on the outer surface side of the second side edge portion, a second screw hole provided in the second opposing portion portion, and a second bolt that is screwed into the second screw hole and presses against the second side edge portion, and also presses the second pressure contact portion against the inner surface side of the second side edge portion. The third connecting portion comprises a third opposing portion facing the side surface of the main beam, a third screw hole provided in the third opposing portion, and a third bolt that is screwed into the third screw hole and pressed against the side surface of the main beam. The grounding fitting for a cable rack according to feature 2.

4. The first pressure-contact portion is provided with a corner that bites into and breaks the surface treatment film of the first side edge, The second pressure-contact portion has a corner that bites into and breaks the surface treatment film of the second side edge. The grounding fitting for a cable rack according to feature 3.

5. The first and second pressure-welded portions are formed by bending a plate material with a slit-shaped notch along the direction of the slit at the notched portion. The twisting of the edge of the notch forms the corners of the first and second contact portions. The grounding fitting for a cable rack according to feature 4.

6. The cable rack is installed with the sub-girder mounted on one end of the main girder in the width direction. The third connecting portion is located on the side of the main girder where the sub-girder is installed, in the width direction of the main girder. The grounding fitting for a cable rack according to feature 1.

7. The cable rack and a locking fitting used in conjunction with the first cover or the second cover attached to the cable rack are provided. The aforementioned locking fitting is formed by bending a roughly rectangular plate material so that its cross-section is roughly L-shaped, thereby forming a first surface and a second surface. The first surface is provided with a connecting portion which is connected by a bolt to either the first connecting portion or the second connecting portion, and the second surface is provided with a locking portion which is locked to one end of the main beam in the width direction. If only the first cover is attached to the cable rack, the locking fitting connected to the second connection part is locked to the main beam, and the cable rack and the first cover are electrically connected by the first connection part and the third connection part. If only the second cover is attached to the cable rack, the locking fitting connected to the first connection part is locked to the main beam, and the cable rack and the second cover are electrically connected by the second connection part and the third connection part. A grounding fitting for a cable rack according to any one of claims 1 to 6.

8. A grounding fitting for a cable rack used to electrically connect a ladder-shaped cable rack comprising a pair of long main beams and a plurality of sub-beams erected between the main beams, and a first cover attached to one side of the cable rack so as to cover the space between the pair of main beams and having a first side edge that is bent along the width direction of the main beams, An earth fitting body comprising: a first connecting portion arranged along the width direction of the main beam perpendicular to the longitudinal direction of the main beam and the sub-beam, which is electrically connected by breaking and pressing the surface treatment film of the first cover; and a third connecting portion which is electrically connected by breaking and pressing the surface treatment film on the side surface of the main beam; A locking fitting having a locking portion that is connected to the main body of the earth fitting and locks to one end of the main beam in the width direction, Equipped with, The first connecting portion comprises a first pressure-contact portion inserted between the side surface of the main girder and the first side edge, and the first pressure-contact portion comprises a corner portion that bites into and breaks the surface treatment film of the first side edge. A grounding fitting for cable racks characterized by the following features.

9. The locking fitting is formed integrally with the earth fitting body. The grounding fitting for a cable rack according to feature 8.

10. A connection method comprising a ladder-shaped cable rack comprising a pair of long main girders and a plurality of sub-girders erected between the main girders, a first cover attached to one side of the cable rack so as to cover the space between the pair of main girders, and a second cover attached to the other side of the cable rack opposite to the first side so as to cover the space between the pair of main girders, wherein the two are electrically connected using a grounding fitting for the cable rack, The first cover comprises a first cover body that covers the space between the pair of main beams, and first side edges that are bent so as to follow the width direction of the main beams on both sides of the first cover body. The second cover comprises a second cover body that covers the space between the pair of main beams, and second side edges of the second cover body that are bent so as to follow the width direction of the main beam. The grounding fitting for the cable rack comprises a first connection portion which is electrically connected by breaking the surface treatment film of the first cover and pressing it into place, and a second connection portion which is electrically connected by breaking the surface treatment film of the second cover and pressing it into place. The first connecting portion includes a first pressure-fitting portion that is inserted between the side surface of the main girder and the first side edge portion. The second connecting portion includes a second pressure-fitting portion that is inserted between the side surface of the main girder and the second side edge portion. To prevent the first and second pressure-contact portions from interfering with the first and second side edges, the cable rack ground fitting is pressed against the side surface of the main girder at an angle to the width direction of the main girder. Then, by rotating the cable rack ground fitting about the longitudinal direction of the sub-girder as an axis, the first pressure-contact portion is inserted between the side surface of the main girder and the first side edge, while the second pressure-contact portion is inserted between the side surface of the main girder and the second side edge. A connection method characterized by the following:

11. The grounding fitting for the cable rack includes a third connection part which is electrically connected by breaking the surface treatment film on the side surface of the main girder and pressing it into place. The connection method according to feature 10.

Citation Information

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