Electrical junction box

The electrical junction box addresses assembly complexity and cost issues by using a busbar structure with through holes and a weakened connecting plate portion, enabling simplified assembly and cost-effective adaptation to varying power supply specifications.

JP7832066B2Active Publication Date: 2026-03-17YAZAKI CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-07-21
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

Conventional electrical connection boxes face complexity in assembly and increased costs due to the need for complicated bolt fixation and multiple types of joint busbars to accommodate changes in power supply specifications within or between vehicle models.

Method used

An electrical junction box design featuring a busbar structure with a connecting plate portion and through holes, allowing for simplified assembly and flexible adaptation to different power supply specifications by using a single bolt for connecting busbars and holders, and a weakened portion for easy detachment of connecting plate portions.

Benefits of technology

Facilitates easy accommodation of power supply changes with a simplified structure, reducing component and processing costs, and enabling standardization of parts, while allowing for flexible response to vehicle-specific requirements.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide an electric connection box capable of easily coping with a specification change of electric power source in the same vehicle or the other vehicles in a simple configuration.SOLUTION: Main body units 10 and 11 provided in an electric connection box 1 each comprise: a first bus bar 40 having a first bus bar body 41, and a first connection plate portion 42 provided with a first through hole 42a; a holder 20 having a first bus bar receiving portion 21a for receiving the first bus bar body 41 from a first direction being a mounting direction of a safety device 90; and a bolt portion 30. The first bus bar 40 has a coupling plate portion 43 that extends from the first connection plate portion 42 along a second direction. The coupling plate portion 43 has a second through hole 43a in a distal end portion 43b, and has a fragile portion 44 with a reduced cross-sectional area at a boundary position between itself and the first connection plate portion 42. A first distance L1 between the first through hole 42a and the second through hole 43a is the same as a second distance L2 between one of the bolt portions 30 and the other of the bolt portions 30 supported by two neighboring ones of the holders 20.SELECTED DRAWING: Figure 3
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Description

Technical Field

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[0001] The present invention relates to an electrical connection box.

Background Art

[0002] Conventionally, there is an electrical connection box that is mounted on a vehicle or the like, configures the power supply specifications of vehicle electrical components, and has safety devices such as fuses for protecting electrical circuits as connection targets. Patent Document 1 discloses a technique related to an electrical connection box having a bus bar that partially includes a connection portion of a safety device and a box body that houses the bus bar.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] In the electrical connection box disclosed in Patent Document 1, while the safety device is connected to the bus bar from above the box body, when assembling the electrical connection box, the bus bar has a structure that is housed in the box body from below the box body. In such a structure, for example, when connecting the bus bar to an external input electric wire connected from above the box body by bolt fastening, after housing the bus bar in the box body, it is necessary to insert the bolt from below the box body and then fasten it. Therefore, the structure for fixing the bolt to the box body becomes complicated, and as a result, there is a risk that the component cost or the mounting processing cost may increase.

[0005] On the other hand, consider the case where multiple holders, such as cassette blocks included in the box body of the electrical connection box disclosed in Patent Document 1, are connected together. In this case, a joint busbar is required to electrically connect the busbar in one holder to the busbar in the other holder. In particular, considering the need to prepare multiple types of joint busbars according to the number of connected holders in order to accommodate changes in power supply specifications within the same vehicle or between different vehicle models, an increase in parts costs is unavoidable.

[0006] This invention has been made in view of the problems of the prior art. The object of this invention is to provide an electrical connection box with a simple structure that can easily accommodate changes in power supply specifications within the same vehicle or between different vehicle types. [Means for solving the problem]

[0007] An aspect of the present invention is an electrical junction box comprising a plurality of main unit bodies to which safety devices are to be connected, wherein each main unit body comprises a busbar body to which one of a pair of terminal portions of a safety device is connected, a busbar having a connecting plate portion continuous with the busbar body and provided with a first through hole, a holder having a mounting portion for attaching the safety device, and a busbar housing portion for housing the busbar body from a first direction which is the mounting direction of the safety device, and a portion protruding from the holder in the direction opposite to the first direction, passing through the first through hole and connected to an external input wire. The busbar comprises a bolt portion and a holder provided on one main unit, and the holder provided on the other main unit is adjacent to the holder in a second direction perpendicular to the first direction, and the busbar has a connecting plate portion extending from the connecting plate portion along the second direction, the connecting plate portion has a second through hole at its tip and a weakened portion with a reduced cross-sectional area at the boundary with the connecting plate portion, and the first distance between the first through hole and the second through hole is the same as the second distance between the bolt portion of one holder and the other holder supported by two adjacent holders. [Effects of the Invention]

[0008] According to the present invention, it is possible to provide an electrical connection box with a simple structure that can easily accommodate changes in power supply specifications within the same vehicle or between different vehicle types. [Brief explanation of the drawing]

[0009] [Figure 1] This is a perspective view of an electrical junction box employing a first configuration example according to one embodiment. [Figure 2] This is an exploded view of an electrical junction box employing a first configuration example according to one embodiment. [Figure 3] This is a perspective view of the first main unit constituting an electrical junction box according to one embodiment. [Figure 4] This is a perspective view of a second main unit constituting an electrical junction box according to one embodiment. [Figure 5A] This is an upper perspective view of the holder included in the main unit. [Figure 5B] This is a lower perspective view of the holder included in the main unit. [Figure 6] This is a perspective view of the first busbar included in the first main unit. [Figure 7] This is a perspective view of the first deformable busbar included in the second main unit. [Figure 8] This is a cross-sectional view of the busbar connection section corresponding to the VIII-VIII section in Figure 1. [Figure 9] This is a perspective view of an electrical junction box employing a second configuration example according to one embodiment. [Figure 10A] This is a perspective view of an electrical junction box employing a third configuration example according to one embodiment. [Figure 10B] This is a perspective view of an electrical junction box employing a fourth configuration example according to one embodiment. [Modes for carrying out the invention]

[0010] The following describes in detail an electrical junction box according to one embodiment, using the drawings. Note that the dimensional ratios in the drawings are exaggerated for illustrative purposes and may differ from the actual ratios.

[0011] Figure 1 is a perspective view of an electrical junction box 1 according to one embodiment, employing the first configuration example. Figure 2 is an exploded perspective view of the electrical junction box 1 shown in Figure 1. The electrical junction box 1 is installed in a vehicle such as an automobile and holds connection targets for protecting the electrical circuits of various electronic devices in a manner that allows for attachment and removal. The electrical junction box 1 is also sometimes referred to as a fuse block or junction block. Generally, the electrical junction box 1 is installed inside the vehicle, housed in a waterproof box (not shown).

[0012] In this embodiment, the electronic components to which the electrical junction box 1 is connected are two types of safety devices: a fuse 90 as a first safety device and a fusible link (hereinafter referred to as "FL") 91 as a second safety device. The fuse 90 has a pair of flat, plate-shaped first terminal portions 90a that protrude in the same direction. The FL 91 has slit-shaped second terminal portions 91a that are parallel to each other. Figure 1 shows the electrical junction box 1 with multiple fuses 90 and FL 91 installed.

[0013] In the first configuration example, the electrical junction box 1 is constructed by connecting two main units: a first main unit 10 and a second main unit 11. Hereinafter, the spatial coordinates are defined as follows as a reference for explaining the connection direction between the main units, or the mounting direction of the fuses 90 and FL91. First, the Z direction is the direction along the mounting direction of the fuses 90 and FL91. According to the definition of the Z direction shown in each figure, the mounting direction of the fuses 90 and FL91 is strictly speaking the opposite direction to the Z direction. Note that the Z direction may be, for example, the vertical direction. The X direction and Y direction are directions that are perpendicular to each other in a plane perpendicular to the Z direction. In this embodiment, the connection direction between the main units is the direction along the X direction.

[0014] FIG. 3 is a perspective view of the first main body unit 10. FIG. 4 is a perspective view of the second main body unit 11. The first main body unit 10 includes a holder 20, a bolt portion 30, a first bus bar 40, a second bus bar 50, and a nut 60. The second main body unit 11 has the same basic structure as the first main body unit 10, but includes a first modified bus bar 40A instead of the first bus bar 40 included in the first main body unit 10. Therefore, hereinafter, the first main body unit 10 will be described in detail, and for the second main body unit 11, the same components as those of the first main body unit 10 will be denoted by the same reference numerals and the description will be omitted.

[0015] FIG. 5A is an upper perspective view of the holder 20. FIG. 5B is a lower perspective view of the holder 20 viewed from a direction opposite to the viewing direction of FIG. 5A. Hereinafter, the upper side of the holder 20 refers to the side to which the fuse 90 and FL91 are attached. On the other hand, the lower side of the holder 20 refers to the opposite side in the Z direction with respect to the upper side of the holder 20.

[0016] The holder 20 is the main body of the electrical connection box 1 that holds other components included in the first main body unit 10 and attaches the fuse 90 and FL91. As a whole, the holder 20 is a rectangular parallelepiped member having the Z direction that defines the upper and lower sides as the height direction, the X direction as the depth direction, and the Y direction as the width direction shorter than the length in the X direction. In this case, the holder 20 has, as six wall portions at least a part of which is exposed to the outside, an upper wall portion 21, a bottom wall portion 22, a first connecting wall portion 23a, a second connecting wall portion 23b, a first side wall portion 24a, and a second side wall portion 24b. Further, the holder 20 may be formed of an insulating material such as resin and integrally manufactured by processing using a slide mold.

[0017] First, the holder 20 has a first attachment portion 25 and a second attachment portion 26 as portions for attaching the connection target.

[0018] The first mounting section 25 is used to mount fuses 90. The electrical junction box 1 can, for example, accommodate up to seven fuses 90. Therefore, the first mounting section 25 has seven first housing sections 25a, each opening outward from the upper wall section 21 along the Z direction and arranged along the X direction. Each first housing section 25a has a shape that can accommodate only the tip portion of the fuse 90. The first housing sections 25a are separated from other adjacent first housing sections 25a or the outside in the X direction by two first partition walls 25b that face each other in the X direction. The first housing sections 25a are also separated from adjacent second mounting sections 26 or the outside in the Y direction by two first side walls 25d that face each other in the Y direction.

[0019] Here, each of the multiple first partition walls 25b has a first wall slit 25c cut out along the Z direction to match the slit shape of the first busbar housing 21a. One end of the first wall slit 25c is open to the outside, and the other end is continuous with the first busbar housing 21a.

[0020] Furthermore, the first housing section 25a, although not shown, has a bottom portion inside that is parallel to the XY plane. The bottom portion may also serve as a so-called stopper, where the body of the fuse 90 ultimately abuts against the bottom portion when the fuse 90 is attached to the first mounting section 25, marking the completed mounting position. In this case, the bottom portion has terminal insertion openings that allow a pair of first terminal portions 90a of the fuse 90 to reach the first busbar terminal 41a and the first external terminal of the first busbar 40, which will be described later. In other words, the portion of the terminal insertion opening into which the first terminal portion 90a connected to the first busbar terminal 41a is inserted is continuous with the first busbar housing section 21a.

[0021] Furthermore, in the first housing section 25a, the two first partition walls 25b facing each other in the X direction and the two first side walls 25d facing each other in the Y direction may each function as guide sections that correct the insertion orientation when the fuse 90 is installed in the first housing section 25a. This allows the insertion angle to be restricted even if the fuse 90 is to be inserted at an angle to the installation direction, preventing excessive stress from being applied to the first terminal section 90a.

[0022] The second mounting section 26 is used to mount the FL91. The electrical junction box 1 can, for example, mount up to five FL91s. Therefore, the second mounting section 26 has five second housing sections 26a, each opening outward from the upper wall section 21 along the Z direction and arranged along the X direction. Each second housing section 26a has a shape that can accommodate only the tip portion of the FL91. The second housing section 26a is separated from other adjacent second housing sections 26a or the outside in the X direction by two second partition walls 26b that face each other in the X direction. The second housing section 26a is also separated from adjacent first mounting sections 25 or the outside in the Y direction by two second side walls 26d that face each other in the Y direction.

[0023] Here, the multiple second partition walls 26b have second wall slits 26c cut out along the Z direction to match the slit shape of the second busbar housing section 21b, which will be described later. One end of the second wall slit 26c is open to the outside, and the other end is continuous with the second busbar housing section 21b.

[0024] Furthermore, the second housing section 26a, although not shown, has a bottom parallel to the XY plane inside. The bottom may serve as a so-called stopper, where the body of the FL91 ultimately abuts against the bottom when the FL91 is attached to the second mounting section 26, marking the completed mounting position. In this case, the bottom has terminal protrusions that allow the second busbar terminals 51a and the second external terminals of the second busbar 50, described later, to reach the pair of second terminal sections 91a of the FL91 from the lower side of the holder 20. In other words, the portion of the terminal protrusions that allows the second busbar terminals 51a to protrude is continuous with the second busbar housing section 21b.

[0025] Furthermore, in the second housing section 26a, the two second partition walls 26b facing each other in the X direction and the two second side walls 26d facing each other in the Y direction may each function as guide sections that correct the insertion orientation when attaching the FL91 to the second housing section 26a. This allows the insertion angle to be restricted even if the FL91 is to be inserted at an angle to the mounting direction, preventing excessive stress from being applied to the second busbar terminal 51a of the second busbar 50.

[0026] Furthermore, the holder 20 has a first busbar housing section 21a, a second busbar housing section 21b, a first terminal housing section 22a, and a second terminal housing section 22b, which are parts for housing members that directly and electrically connect to the connection target.

[0027] As shown in Figure 5A, the first busbar housing section 21a houses the first busbar body 41 of the first busbar 40 from the same direction as the mounting direction of the fuse 90. The first busbar body 41 is a flat plate portion having a main plane along the Z direction, which will be described in detail below. Therefore, the first busbar housing section 21a may be a slit portion into which the first busbar body 41 is inserted while maintaining its orientation along the main plane and passing through the first wall slit 25c, which is part of the first mounting section 25. Specifically, the slit shape of the first busbar housing section 21a is such that the Z direction is the depth direction, the X direction is the width direction, and the Y direction is aligned with the thickness direction of the first busbar body 41.

[0028] Furthermore, a portion of the first busbar housing 21a is exposed to the outside from the surface of the upper wall portion 21, which is continuous with the portion where the bolt support portion 21c is provided. As shown in Figure 3, this portion of the first busbar housing 21a is the portion of the first busbar body 41 housed in the first busbar housing 21a that is exposed, specifically the portion that is continuous with the first connecting plate portion 42 of the first busbar 40.

[0029] As shown in Figure 5A, the second busbar housing section 21b accommodates the second busbar body 51 of the second busbar 50 from the same direction as the mounting direction of the FL91. The second busbar body 51 is a flat plate portion having a main plane along the Z direction, which will be described in detail below. Therefore, the second busbar housing section 21b may be a slit portion into which the second busbar body 51 is inserted while maintaining its orientation along the main plane and passing through the second wall slit 26c, which is part of the second mounting section 26. Specifically, the slit shape of the second busbar housing section 21b is such that the Z direction is the depth direction, the X direction is the width direction, and the Y direction is aligned with the thickness direction of the second busbar body 51.

[0030] Furthermore, a portion of the second busbar housing 21b is exposed to the outside from the surface of the upper wall portion 21, which is continuous with the portion where the bolt support portion 21c is provided. As shown in Figure 3, this portion of the second busbar housing 21b is the portion of the second busbar body 51 housed in the second busbar housing 21b that is exposed, specifically the portion that is continuous with the second connecting plate portion 52 of the second busbar 50.

[0031] As shown in Figure 5B, the first terminal housing 22a houses a first external terminal to which the other of a pair of first terminal portions 90a of the fuse 90 is connected. The first external terminal is, for example, a metal rod-shaped terminal crimped to the end of a first electric wire. The first electric wire is, for example, part of a wire harness routed inside a vehicle, to which the fuse 90 is selected as a safety device suitable for the electronic equipment to which it is connected. In particular, the head of the first external terminal has a shape that engages with the other of the pair of first terminal portions 90a of the fuse 90 while sandwiching it.

[0032] Furthermore, seven first terminal housing sections 22a are provided, corresponding to the positions of each of the seven first housing sections 25a included in the first mounting section 25. Each first terminal housing section 22a opens outward from the bottom wall section 22 in the opposite direction to the Z direction and is arranged along the X direction. In other words, the first terminal housing section 22a accommodates the first external terminal from the direction opposite to the mounting direction of the fuse 90 to the first mounting section 25. Also, as described above, the first terminal housing section 22a communicates with the portion of the terminal insertion opening provided at the bottom of the first housing section 25a into which the first terminal section 90a connected to the first external terminal is inserted.

[0033] As shown in Figure 5B, the second terminal housing section 22b houses a second external terminal connected to the other of a pair of second terminal sections 91a on the FL91. The second external terminal is, for example, a metal plate-shaped terminal crimped to the end of a second wire. The second wire is, for example, part of a wire harness routed inside a vehicle, to which the FL91 is selected as a safety device suitable for the connected electronic equipment. In particular, the head of the second external terminal is plate-shaped and engages with the slit on the other of the pair of second terminal sections 91a on the FL91 while being inserted into it.

[0034] Furthermore, five second terminal housing sections 22b are provided, corresponding to the positions of each of the five second housing sections 26a included in the second mounting section 26. Each second terminal housing section 22b opens outward from the bottom wall section 22 in the opposite direction to the Z direction and is arranged along the X direction. In other words, the second terminal housing section 22b accommodates the second external terminal from the direction opposite to the mounting direction of the FL91 to the second mounting section 26. Also, as described above, the second terminal housing section 22b communicates with the portion of the terminal protrusion provided at the bottom of the second housing section 26a from which the second external terminal protrudes toward the second terminal section 91a.

[0035] Furthermore, the holder 20 has a bolt support portion 21c as a place for installing the bolt portion 30. The bolt support portion 21c is provided in the upper wall portion 21 in an area adjacent to the first mounting portion 25 and the second mounting portion 26 in the X direction. In this embodiment, the bolt portion 30 is supported by insert molding a base portion 32, which is part of the bolt portion 30, into the bolt support portion 21c in accordance with the manufacturing of the holder 20 (see Figure 8). The holder 20 may also be provided with a posture regulating portion 29 on the first side wall portion 24a to regulate the posture of the external input wire 80 connected to the bolt portion 30. The posture regulating portion 29 has, for example, two regulating walls 29a facing each other in the Y direction, and by positioning the external input wire 80 between the two regulating walls 29a, the posture of the external input wire 80 can be maintained at a constant position.

[0036] Furthermore, the holder 20 has a first connecting portion 27 and a second connecting portion 28, which are shaped to engage with each other, as a mechanism for connecting adjacent holders 20 in the Y direction, in order to connect adjacent main body units in the Y direction.

[0037] Two first connecting portions 27 are provided on the first connecting wall portion 23a of the holder 20, for example. Each first connecting portion 27 has a protrusion 27a projecting in the Y direction from the first connecting wall portion 23a, and guide portions 27b provided on both sides of the protrusion 27a in the X direction. Each guide portion 27b extends along the Z direction.

[0038] The second connecting portion 28 is provided in two places on the second connecting wall portion 23b of the holder 20, for example. Each second connecting portion 28 has a pair of recesses 28a that protrude from the second connecting wall portion 23b in opposite directions in the Y direction and face each other in the X direction. Each recess 28a extends along the Z direction.

[0039] For example, consider the case where a first main unit 10 and a second main unit 11 are connected, as shown in Figure 1. In this case, a first connecting portion 27 on the holder 20 on the first main unit 10 side and a second connecting portion 28 on the holder 20 on the second main unit 11 side are connected opposite to each other. Focusing on a pair of first and second connecting portions 27 and 28, the protrusion 27a of the first connecting portion 27 is fitted into the recess 28a of the second connecting portion 28, which is opposite in the X direction, along the opposite direction in the Z direction. Then, the protrusion 27a abuts against a stopper portion 28b that is pre-provided at the lowest part of the recess 28a in the Z direction, thereby positioning and connecting the first connecting portion 27 to the second connecting portion 28.

[0040] The bolt section 30 holds the first bus bar 40, the second bus bar 50, and the external input wire 80 to the holder 20 by bolt fastening, so that they are electrically connected to each other. The bolt section 30 has a threaded section 31 and a base section 32. The base section 32 is supported by the bolt support section 21c of the holder 20 as described above, so that the bolt section 30 protrudes from the holder 20 in the Z direction. The first bus bar 40, the second bus bar 50, and the external input wire 80 are assembled to the threaded section 31 as will be explained in detail below, and then a nut 60 is fastened.

[0041] The first busbar 40 is a conductive member that electrically connects multiple fuses 90. In this embodiment, the first busbar 40 electrically connects all of the fuses 90. The first busbar 40 is manufactured, for example, by cutting, drilling, or bending a metal plate having a certain thickness dimension t (see Figure 8).

[0042] Figure 6 is a perspective view of the first busbar 40. The first busbar 40 has a first busbar body 41, a first connecting plate portion 42, and a connecting plate portion 43.

[0043] The first busbar body 41 connects to one of the pair of first terminal portions 90a that each fuse 90 attached to the first mounting portion 25. Specifically, the first busbar body 41 is a flat plate portion having a main plane along the Z direction, and having an end edge portion projecting in the direction opposite to the Z direction that forms a plurality of first busbar terminals 41a to which the first terminal portions 90a are connected.

[0044] The first busbar terminal 41a is composed of, for example, a combination of a first arm portion 41b and a second arm portion 41c that face each other in the X direction. The first busbar terminal 41a is mechanically and electrically connected by sandwiching one of the flat first terminal portions 90a between the first arm portion 41b and the second arm portion 41c. There are seven first busbar terminals 41a along the X direction, corresponding to the positions of the seven first housing portions 25a.

[0045] The first connecting plate portion 42 has a main plane parallel to the XY plane and is continuous with a part of the first busbar body 41. The first connecting plate portion 42 has a first through hole 42a through which the bolt portion 30 passes when the first busbar 40 is installed in the holder 20. Also, when the first busbar 40 is installed in the holder 20, the first connecting plate portion 42 as a whole faces the upper wall portion 21 of the holder 20.

[0046] The connecting plate portion 43 has a main plane parallel to the XY plane and is continuous with a part of the first connecting plate portion 42 so as to extend from the first connecting plate portion 42 along the second direction. The connecting plate portion 43 has a second through hole 43a at its tip portion 43b. Here, we assume that the first main body unit 10 and the second main body unit 11 are connected. Furthermore, the distance between the bolt portion 30 supported by the holder 20 on the first main body unit 10 side and the bolt portion 30 supported by the holder 20 on the second main body unit 11 side is defined as the second distance L2 (see Figure 8). In this case, if the distance between the first through hole 42a and the second through hole 43a in the first busbar 40 is defined as the first distance L1, then the first distance L1 is the same as the second distance L2. Here, the term "same distance" is not limited to the narrow sense of strictly identical dimensions. In other words, the phrase "the same distance between them" can be interpreted in a broader sense to include a distance range in which the second through-hole 43a can penetrate the bolt portion 30 on the second main unit 11 side while the first through-hole 42a penetrates the bolt portion 30 on the first main unit 10 side.

[0047] Furthermore, the connecting plate portion 43 has a weak portion 44 at the boundary with the first connecting plate portion 42, where the cross-sectional area at that position is smaller than the cross-sectional area at other positions in the Y direction. In this embodiment, the weak portion 44 is formed by three holes 44a that are aligned along the X direction and penetrate the connecting plate portion 43 in the Z direction. In the first busbar 40, the connecting plate portion 43 can be easily separated from the first connecting plate portion 42 by using the weak portion 44 as a cutting point. For example, a worker can separate the connecting plate portion 43 from the position shown by the dashed line crossing the weak portion 44 in Figure 6 by bending the connecting plate portion 43 multiple times with the weak portion 44 as the boundary. Alternatively, a worker can more easily separate the connecting plate portion 43 by cutting along the dashed line crossing the weak portion 44 in Figure 6.

[0048] The shape of the vulnerable portion 44 is not limited to that formed by a plurality of holes 44a as illustrated. For example, the vulnerable portion 44 may be a groove formed to traverse the connecting plate portion 43 along the X direction.

[0049] Figure 7 is a perspective view of the first deformed busbar 40A. The first deformed busbar 40A is a busbar that has been deformed from its original state after the connecting plate portion 43 has been separated from the first busbar 40, with the weak portion 44 being the cutting portion. In this embodiment, the first busbar 40 is installed in the first main unit 10, while the first deformed busbar 40A is installed in the second main unit 11.

[0050] The second busbar 50 is a conductive member that electrically connects multiple FL91s. In this embodiment, the second busbar 50 electrically connects all FL91s. The second busbar 50 is manufactured, for example, by cutting, drilling, or bending a metal plate having a certain thickness, similar to the first busbar 40.

[0051] As shown in Figure 2, the second busbar 50 has a second busbar body 51 and a second connecting plate portion 52.

[0052] The second busbar body 51 connects to one of the pair of second terminal portions 91a that each FL91 attached to the second mounting portion 26. Specifically, the second busbar body 51 is a flat plate portion having a main plane along the Z direction, and an end portion that protrudes in the direction opposite to the Z direction is inserted into a slit-shaped second terminal portion 91a, forming a second busbar terminal 51a.

[0053] The second connecting plate portion 52 has a main plane parallel to the XY plane and is continuous with a part of the second busbar body 51. The second connecting plate portion 52 has a third through hole 52a through which the bolt portion 30 passes when the second busbar 50 is installed in the holder 20. Also, when the second busbar 50 is installed in the holder 20, the second connecting plate portion 52 as a whole faces the upper wall portion 21 of the holder 20.

[0054] In this holder 20, the first busbar body 41 of the first busbar 40 and the second busbar body 51 of the second busbar 50 are arranged parallel to each other while being spaced apart in the Y direction. On the other hand, the first through hole 42a provided in the first connecting plate portion 42 of the first busbar 40 and the third through hole 52a provided in the second connecting plate portion 52 of the second busbar 50 are each passed through the same bolt portion 30. Therefore, the direction in which the first connecting plate portion 42 is bent relative to the first busbar body 41 in the first busbar 40 and the direction in which the second connecting plate portion 52 is bent relative to the second busbar body 51 in the second busbar 50 are opposite to each other.

[0055] Next, the assembly and operation of the electrical junction box 1 will be explained with reference to Figure 2, etc.

[0056] First, as part of the assembly of the first main unit 10, there is a holder 20 with the bolt portion 30 already insert-molded, and the worker places the second busbar 50 into the holder 20. At this time, the second busbar body 51 of the second busbar 50 is housed in the second busbar housing portion 21b, and the bolt portion 30 is passed through the third through hole 52a provided in the second connecting plate portion 52 of the second busbar 50. Next, the worker places the first busbar 40 into the holder 20. At this time, the first busbar body 41 of the first busbar 40 is housed in the first busbar housing portion 21a, and the bolt portion 30 is passed through the first through hole 42a provided in the first connecting plate portion 42 of the first busbar 40. This completes the first main unit 10 shown in Figure 3. In Figure 3, all fuses 90 are attached to the first mounting section 25 and all FL91 are attached to the second mounting section 26. However, these safety devices may be installed after the entire electrical junction box 1 has been assembled and installed in the vehicle.

[0057] Next, the second main unit 11 is assembled in the same manner as the first main unit 10, completing the second main unit 11 shown in Figure 4. However, in the second main unit 11, the first modified busbar 40A is used instead of the first busbar 40. In Figure 4, all fuses 90 are attached to the first mounting part 25 and all FLs 91 are attached to the second mounting part 26, but these safety devices may be attached after the entire assembly of the electrical connection box 1 and its installation in the vehicle are completed.

[0058] Next, the worker connects the first main unit 10 and the second main unit 11. At this time, as described above, the first connecting portion 27 on the holder 20 on the first main unit 10 side and the second connecting portion 28 on the holder 20 on the second main unit 11 side are connected facing each other. Simultaneously, the second through hole 43a in the first bus bar 40 on the first main unit 10 side passes through the bolt portion 30 on the second main unit 11 side.

[0059] The worker then connects the external input wire 80 to both the bolt section 30 on the first main unit 10 and the bolt section 30 on the second main unit 11. A crimp terminal 81 is pre-attached to the end of the external input wire 80. The worker then attaches the crimp terminal 81 to the bolt section and finally tightens it with a nut 60, thereby completing the assembly of the electrical connection box 1 shown in Figure 1.

[0060] Thus, when assembling the electrical junction box 1, the first busbar 40, the first modified busbar 40A, and the external input wire 80 are all installed relative to the holder 20 from the opposite direction of the Z-direction, which is the same direction as the mounting direction of the safety device.

[0061] Furthermore, with this type of electrical connection box 1, the power input through the two external input wires 80 is distributed to all of the first busbars 40 and second busbars 50 via the connecting plate portion 43 of the first busbar 40.

[0062] Next, we will explain the effect of the electrical junction box 1.

[0063] The electrical junction box 1 comprises a plurality of main unit components to which safety devices are to be connected. Each main unit component comprises a first busbar body 41 to which one of a pair of terminals of a safety device is connected, and a first busbar 40 which is continuous with the first busbar body 41 and has a first connecting plate portion 42 provided with a first through hole 42a. Each main unit component comprises a holder 20 which has a mounting portion for attaching the safety device and a first busbar housing portion 21a that houses the first busbar body 41 from a first direction, which is the mounting direction of the safety device. Each main unit component also comprises a bolt portion 30 which protrudes from the holder 20 in the direction opposite to the first direction and is connected to an external input wire 80 while passing through the first through hole 42a. A holder 20 on one main unit component is adjacent to a holder 20 on another main unit component 11 in a second direction Y, which is perpendicular to the first direction. The first busbar 40 has a connecting plate portion 43 that extends from the first connecting plate portion 42 along a second direction. The connecting plate portion 43 has a second through hole 43a at its tip portion 43b and a weakened portion 44 with a reduced cross-sectional area at the boundary with the first connecting plate portion 42. The first distance L1 between the first through hole 42a and the second through hole 43a is the same as the second distance L2 between one bolt portion 30 and the other bolt portion 30 supported by two adjacent holders 20.

[0064] In the above example, the safety device corresponds to the fuse 90 as the first safety device, and the mounting portion of the holder 20 corresponds to the first mounting portion 25. In this case, the pair of terminal portions of the safety device corresponds to the first terminal portion 90a. Furthermore, the multiple main unit units correspond to the first main unit 10 and the second main unit 11. In this case, one main unit corresponds to the first main unit, and the other main unit corresponds to the second main unit. Moreover, the first direction corresponds to the opposite direction of the Z direction, and the second direction corresponds to the Y direction.

[0065] First, in the electrical junction box 1, the first busbar housing section 21a is provided in the holder 20 so as to house the first busbar body 41 from the same direction as the mounting direction of the safety device. In other words, if the safety device is attached to the holder 20 from above, the first busbar 40 is also installed in the holder 20 from above.

[0066] Here, for reference, let's consider the case where the first busbar 40 is installed on the holder 20 from the opposite direction to the mounting direction of the safety device, i.e., from below. In this case, it may be necessary to prepare a separate bolt holder to fix the bolt portion and install the bolt holder from the back side of the holder 20 to the inside. In addition, various restrictions may be placed on the internal shape of the holder 20 in order to fix the bolt holder, which may complicate the structure or shape of the holder 20.

[0067] In contrast, in this embodiment, as long as the holder 20 has one bolt portion 30 that protrudes in the direction opposite to the mounting direction of the safety device, both the first busbar 40 and the external input wire 80 can be connected to a single bolt portion 30. Therefore, since the bolt portion 30 can be installed in the holder 20 by insert molding, there is no need to prepare a separate component such as a bolt holder, and furthermore, the structure or shape of the holder 20 can be simplified.

[0068] Furthermore, the use of components such as bolt holders is not excluded in the electrical junction box 1. For example, even if a bolt that replaces the bolt section 30 is installed in the holder 20 using a bolt holder, the fact that the bolt holder can be installed from above the holder 20 is advantageous because it reduces the restrictions on the assembly order and other aspects compared to conventional designs.

[0069] Furthermore, since the first bus bar 40 is installed on the holder 20 from above, the back structure of the holder 20 is simplified.

[0070] Here, for reference, we will assume that the first busbar 40 is installed in the holder 20 from below. As a premise, the holder 20 is provided with a first terminal housing section 22a for housing the first external terminal from below the holder 20, and a second terminal housing section 22b for housing the second external terminal from below the holder 20. In this case, if the first busbar 40 is also installed in the holder 20 from below, the openings for housing the first external terminal, the second external terminal, and the first busbar 40 are formed on the back side of the holder 20, which complicates the back structure of the holder 20. As a result, for example, when a worker tries to insert the first external terminal or the second external terminal into the corresponding housing section, there is a risk of terminal deformation due to mistakenly inserting it into the housing section for the first busbar 40.

[0071] In contrast, in this embodiment, since there is no opening on the back surface of the holder 20 for accommodating the first busbar 40, terminal deformation due to incorrect insertion of the first or second external terminal can be prevented in advance. Furthermore, tapered portions may be provided on the opening edges of each accommodating section to facilitate the insertion of the first external terminal into the first terminal accommodating section 22a by the operator, or to facilitate the insertion of the second external terminal into the second terminal accommodating section 22b.

[0072] Furthermore, in the electrical connection box 1, the first busbar 40 has a connecting plate portion 43 with a second through hole 43a formed at its tip portion 43b. Here, we consider the case where the first main unit 10 and the second main unit 11 are connected. In this case, by passing the bolt portion 30 on the first main unit 10 side through the first through hole 42a and the bolt portion 30 on the second main unit 11 side through the second through hole 43a, the busbars can be electrically connected between the main units. In other words, the connecting plate portion 43 of the first busbar 40 can function as a joint busbar.

[0073] On the other hand, depending on the circuit configuration required for the electrical junction box 1, it is conceivable that the connecting plate portion 43 may not be necessary as a function of the first busbar 40. In the above example, in the second main unit 11, no other main unit is connected to the side opposite in the Y direction to the side to which the first main unit 10 is connected, so the connecting plate portion 43 is unnecessary.

[0074] In contrast, in the first busbar 40, the connecting plate portion 43 has a weak portion 44 with a reduced cross-sectional area, so that an operator can easily detach the connecting plate portion 43 from the first connecting plate portion 42 of the first busbar 40 and deform it into the first deformed busbar 40A. In other words, according to this embodiment, there is no need to prepare separately in advance a busbar having a portion such as the connecting plate portion 43 that functions as a joint busbar and other busbars that do not have a portion such as the connecting plate portion 43. Therefore, for example, it is possible to flexibly respond to changes in the vehicle's power supply specifications, and consequently, it becomes possible to standardize the parts used in the electrical connection box 1. In addition, by reducing the number of parts, it may also contribute to weight reduction or cost reduction. Furthermore, the connecting plate portion 43 that has been cut off from the first busbar 40 can be recovered as scrap material and melted down for recycling, and as a result, the recovery costs can be returned to the product, which may also contribute to suppressing cost increases.

[0075] By using the first busbar 40 in the electrical junction box, it becomes possible to set various power supply specifications in addition to those supported by the electrical junction box 1 as the first configuration example. However, when combining multiple main unit components, the following conditions should be considered.

[0076] Figure 8 is a cross-sectional view of the busbar connection section, corresponding to the VIII-VIII section in Figure 1, and cut in the YZ plane with reference to the installation position of each bolt section 30.

[0077] On the first main unit 10 side, the bolt portion 30 is connected to the second bus bar 50 by stacking the second connecting plate portion 52, the first bus bar 40 by stacking the first connecting plate portion 42, and the crimp terminal 81 of the external input wire 80 in that order. On the other hand, on the second main unit 11 side, the bolt portion 30 is connected to the second connecting plate portion 52, the first connecting plate portion 42 of the first deformed bus bar 40A by stacking the connecting plate portion 43 from the first main unit 10 side, and the crimp terminal 81 of the external input wire 80 in that order. In other words, if the height position of the connecting plate portion 43, which functions as a joint bus bar, is used as a reference, the height position of the second main unit 11 will be lower than the height position of the first main unit 10 by the thickness dimension t of the connecting plate portion 43 in the opposite direction in the Z direction. Therefore, when connecting multiple main unit components using the first busbar 40, the electrical connection box 1 and other electrical connection boxes according to this embodiment can accommodate changes in power supply specifications within the range of installation space available in the height direction along the Z direction.

[0078] Figure 9 is a perspective view of the electrical junction box 2 employing the second configuration example. Depending on the power supply specifications, even if multiple main unit components are connected to each other, it may not be necessary to electrically connect the busbars between the main unit components. In such cases, the electrical junction box 2 may consist only of the second main unit 11 using the first modified busbar 40A.

[0079] Figure 10 illustrates an electrical junction box with four main unit connections.

[0080] Figure 10A is a perspective view of the electrical junction box 3 employing the third configuration example. As with electrical junction box 3, it is also possible to prepare two of the electrical junction boxes 1 exemplified above in advance and further connect them to each other.

[0081] Figure 10B is a perspective view of the electrical junction box 4 employing the fourth configuration example. Depending on the power supply specifications, the heat capacity of the external input wire 80 may be relatively small. In such cases, it is possible to connect all the busbars between the four main units. In the example of the electrical junction box 4, three first main units 10 and one second main unit 11 are connected sequentially along the Y direction.

[0082] As described above, according to this embodiment, it is possible to provide an electrical connection box 1 with a simple structure that can easily accommodate changes in power supply specifications between the same vehicle or different vehicle types.

[0083] Furthermore, in the electrical junction box 1, the vulnerable portion 44 may be formed by a plurality of holes 44a that are aligned along a third direction perpendicular to both the first and second directions and penetrate the connecting plate portion 43 in the first direction.

[0084] In the example above, the third direction corresponds to the X direction.

[0085] This electrical junction box 1 allows for the simple formation of a vulnerable point 44 with respect to the first busbar 40.

[0086] Furthermore, in the electrical junction box 1, the first busbar body 41 may have a main plane along the first direction, and the end edge protruding in the direction opposite to the first direction may be a flat plate portion to which one of the terminal portions of the safety device is connected as a busbar terminal. The first busbar housing portion 21a may be a slit portion into which the first busbar body 41 is inserted while passing through a part of the mounting portion.

[0087] In the above example, the busbar terminal provided on the edge of the first busbar body 41 is the first busbar terminal 41a. Also, a part of the mounting portion that passes through the first busbar body 41 is the first wall slit 25c.

[0088] With this electrical junction box 1, the area occupied by the first busbar housing 21a is only the thickness of the slit shape, so even if the holder 20 is designed to install the first busbar 40 from above, it is unlikely to affect the configuration or shape of the mounting part for attaching the safety device. It is desirable that the slit shape of the first busbar housing 21a be set to dimensions that do not hinder the function of the guide section by the two first partition walls 25b and the two first side walls 25d in the first housing 25a.

[0089] Furthermore, in the electrical connection box 1, the holder 20 may have a terminal housing portion that houses the external terminal to which the other of the pair of terminal portions of the safety device is connected, from a direction opposite to the first direction.

[0090] In the above example, the terminal housing corresponds to the first terminal housing 22a, and the external terminal corresponds to the first external terminal housed in the first terminal housing 22a.

[0091] According to this electrical connection box 1, although there is a first terminal housing section 22a on the back of the holder 20, there is no opening for housing the first bus bar 40, thus preventing terminal deformation due to incorrect insertion of the first external terminal by the worker.

[0092] Although each embodiment has been described above, the embodiments are not limited to these, and various modifications are possible within the scope of the gist of the embodiments. [Explanation of Symbols]

[0093] 1, 2, 3, 4 Electrical junction box 10. First main unit 11. Second main unit 20 holders 21a Bus bar housing 22a First terminal housing 25 First mounting section 25c First wall slit 30 Bolt section 40 First Bus Bar 40A First Modified Busbar 41. First busbar body 41a First busbar terminal 42 First connecting plate section 42a 1st through hole 43 Connecting plate part 43a 2nd through hole 43b Tip 44 Vulnerable parts 44a hole 80 External input wire 90 fuses 90a 1st terminal section L1 1st distance L2 2nd distance

Claims

1. An electrical junction box comprising multiple main units to which safety devices are connected, The main unit is, A busbar comprising a busbar body to which one of the pair of terminal portions of the safety device is connected, and a connecting plate portion that is continuous with the busbar body and has a first through hole, A holder having a mounting portion for attaching the safety device and a busbar housing portion for housing the busbar body from a first direction which is the mounting direction of the safety device, The holder comprises a bolt portion that protrudes from the holder in a direction opposite to the first direction, passes through the first through-hole, and is connected to an external input wire, The holder provided on one of the main body units is adjacent to the holder provided on another of the main body units in a second direction perpendicular to the first direction, The busbar has a connecting plate portion that extends from the connecting plate portion along the second direction, The connecting plate portion has a second through hole at its tip and a weakened portion with a reduced cross-sectional area at the boundary with the connecting plate portion. An electrical junction box in which the first distance between the first through hole and the second through hole is the same as the second distance between one bolt portion and the other bolt portion supported by two adjacent holders.

2. The electrical connection box according to claim 1, wherein the vulnerable portion is formed by a plurality of holes arranged along a third direction perpendicular to both the first and second directions, and penetrating the connecting plate portion in the first direction.

3. The busbar body has a main plane along the first direction, and the edge portion projecting in the direction opposite to the first direction is a flat plate portion which serves as a busbar terminal to which one of the terminal portions of the safety device is connected. The electrical connection box according to claim 1 or 2, wherein the busbar housing portion is a slit portion into which the busbar body is inserted while passing through a part of the mounting portion.

4. The electrical connection box according to claim 1 or 2, wherein the holder has a terminal housing portion that houses an external terminal to which the other of the pair of terminal portions of the safety device is connected, from a direction opposite to the first direction.

Citation Information

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