Electrical junction box

The electrical junction box addresses the weakness of split case structures by using bus bars to support bending loads across the dividing surface, enhancing the strength of the divided structure.

JP7816396B2Active Publication Date: 2026-02-18SUMITOMO WIRING SYSTEMS LTD
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Patent Information

Application Number
JP2024016287
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-02-06
Publication Date
2026-02-18
Estimated Expiration
2044-02-06

AI Technical Summary

Technical Problem

The increasing currents and number of electrical elements in electrical junction boxes have led to larger cases, necessitating split case structures, which are prone to separation at the split surface under bending loads, compromising the strength of the dividing surface.

Method used

An electrical junction box with a divided structure that includes a first case, a second case integrated by an engagement mechanism, and a pair of bus bars housed inside an annular noise-resistant core, arranged to cross the cases, supporting bending loads and enhancing the strength of the dividing surface.

Benefits of technology

The configuration improves the strength of the dividing surface by distributing bending loads across the bus bars, reducing the likelihood of case separation, even with a divided structure.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide an electric connection box capable of improving strength of a parting face even if a case has a parted structure.SOLUTION: An electric connection box 1 has a first case 6, a second case 7, and a pair of bus bars 22. The second case 7 is formed separately from the first case 6, and is integrated with the first case 6 by assembling the first case 6. The pair of bus bars 22 are accommodated in an annular noise resistance core 23, and electrically connect an electric path. The pair of bus bars 22 are arranged so as to traverse the first case 6 and the second case 7.SELECTED DRAWING: Figure 6
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Description

[Technical Field]

[0001] The present invention relates to an electrical junction box. [Background technology]

[0002] Conventionally, an electrical junction box that relays electrical paths of electrical components mounted on a vehicle has been well known, as disclosed in Patent Document 1. The electrical junction box is equipped with various electrical elements, such as a relay, a fuse, and a current sensor. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Publication No. 2023-33995 Summary of the Invention [Problem to be solved by the invention]

[0004] In recent years, the cases of electrical junction boxes have tended to become larger due to the increasing currents flowing through them and the increasing number of electrical elements. For this reason, split case structures have been considered to make the cases easier to manufacture and handle. However, with split case structures, there is a risk that the case will separate at the split surface where the split cases are assembled when a bending load is applied to the case. Therefore, ensuring the strength of the split surface has been an issue when split case structures are used.

[0005] An object of the present disclosure is to provide an electrical junction box that can improve the strength of the divided surfaces even when the case has a divided structure. [Means for solving the problem]

[0006] The electrical connection box that solves the above problem is configured to be interposed in the middle of an electrical path and includes a first case, a second case that is formed separately from the first case and is integrated with the first case by assembling the first case, and a pair of bus bars that are housed inside an annular noise-resistant core and electrically connect the electrical path, the pair of bus bars being arranged to cross the first case and the second case. [Effects of the Invention]

[0007] The present disclosure can improve the strength of the dividing surface even when the case has a divided structure. [Brief explanation of the drawings]

[0008] [Figure 1] FIG. 1 is a perspective view of an electrical junction box. [Figure 2] FIG. 2 is a perspective view of the divided cases before they are assembled. [Figure 3] FIG. 3 is an enlarged perspective view of a portion of the first case. [Figure 4] FIG. 4 is an enlarged perspective view of a portion of the second case. [Figure 5] 5(a) and 5(b) are explanatory diagrams showing how the engagement mechanism is locked. [Figure 6] FIG. 6 is a perspective view of a structure in which the split case is supported by bus bars. [Figure 7] FIG. 7 is an exploded perspective view of a structure in which the split case is supported by bus bars. [Figure 8] FIG. 8 is a perspective view of the holder. [Figure 9] FIG. 9 is a cross-sectional view taken along line IX-IX shown in FIG. [Figure 10] FIG. 10 is a perspective view of the bus bar held by the holder. [Figure 11] FIG. 11 is a plan view of the bus bar held by the holder. [Figure 12] FIG. 12 is a perspective view showing the configuration of the heat sink. [Figure 13]FIG. 13 is a diagram showing how the bus bars support the split case. DETAILED DESCRIPTION OF THE INVENTION

[0009] First, embodiments of the present disclosure will be listed and described. [1] The electrical connection box of the present disclosure is configured to be interposed in the middle of an electrical path, and includes a first case, a second case formed separately from the first case and integrated with the first case by assembling the first case, and a pair of bus bars housed inside an annular noise-resistant core and electrically connecting the electrical path, the pair of bus bars being arranged to cross the first case and the second case.

[0010] With this configuration, even if a bending load is applied to a case having a first case and a second case, the bending load can be supported by a pair of bus bars arranged across the first case and the second case. As a result, the bending load is not directly applied to the dividing surface between the first case and the second case. Therefore, even if the case has a divided structure, the strength of the dividing surface can be improved.

[0011] [2] In the above [1], one of the pair of bus bars is a positive electrode bus bar and the other is a negative electrode bus bar. With this configuration, by using the pair of positive electrode bus bar and negative electrode bus bar, it is possible to improve the strength of the dividing surface in the split-structure case.

[0012] [3] In the above [1] or [2], the pair of bus bars are formed in a plate shape and are arranged to overlap in the thickness direction. With this configuration, the pair of plate-shaped bus bars are arranged to overlap, so that the pair of bus bars, which have high bending strength, can support a bending load. This further contributes to ensuring the strength of the dividing surface.

[0013] [4] In any of the above [1] to [3], the electrical junction box includes an engagement mechanism that integrates the first case and the second case by engaging a locking piece formed on one of the first case and the second case with a protrusion formed on the other of the first case and the second case. With this configuration, the engagement mechanism is provided on the dividing surface between the first case and the second case, making it possible to firmly assemble the first case and the second case. This further contributes to ensuring the strength of the dividing surface.

[0014] [5] In any one of [1] to [4] above, the electrical junction box includes a holder that holds the pair of bus bars while insulating them. With this configuration, the bus bars are held by the holder, which makes it easier to position the bus bars and makes it less likely for them to shift from their specified positions.

[0015] [6] In any of the above [1] to [5], the electrical junction box includes a heat sink disposed across the first case and the second case to dissipate heat generated in the electrical path. This configuration allows the heat sink to also support the bending load applied to the cases, further contributing to improving the strength of the dividing surface.

[0016] [Details of the embodiments of the present disclosure] Specific examples of the present disclosure will be described below with reference to the drawings. Note that the present invention is not limited to these examples, but is defined by the claims, and is intended to include all modifications within the meaning and scope equivalent to the claims. In each drawing, for the convenience of explanation, some components may be exaggerated or simplified. Furthermore, the dimensional proportions of each part may differ from the actual ones.

[0017] (Electrical junction box 1) As shown in FIG. 1, the electrical junction box 1 includes a housing 2 to which electrical components of the electrical junction box 1 are attached. The housing 2 includes a case 3 (an upper case in this example) and a lower case 4. The case 3 and the lower case 4 are integrally assembled, for example, by a known attachment structure. Examples of this attachment structure include a claw-fitting structure, a screw-fastening structure, and a bolt-fastening structure. The electrical junction box 1 is interposed in the middle of an electrical path, and thereby performs, for example, coupling, relaying, or branching of the electrical path, or a combination thereof.

[0018] The electrical junction box 1 is used, for example, in a vehicle battery. The electrical junction box 1 is housed, for example, inside a battery pack (not shown). The vehicle may be, for example, an electric vehicle, a plug-in hybrid vehicle, or a fuel cell vehicle.

[0019] (Case 3) As shown in Figure 2, the case 3 has a first case 6 and a second case 7 that is assembled to the first case 6. The second case 7 is formed separately from the first case 6, and is integrated with the first case 6 by assembling the first case 6. In this way, the case 3 has a split structure in which the case portion is split. The first case 6 and the second case 7 are assembled together by an engagement mechanism 8 provided between the first case 6 and the second case 7.

[0020] (Engagement mechanism 8) 2, the engagement mechanism 8 has a first locking portion 10 provided on the first case 6 and a second locking portion 11 provided on the second case 7. A plurality of pairs of first locking portions 10 and second locking portions 11 (three pairs, including pairs not shown in the figure, are provided between the first case 6 and the second case 7) are provided between the first case 6 and the second case 7. The plurality of pairs of first locking portions 10 and second locking portions 11 are arranged in a direction (Y-axis direction in FIG. 2, etc.: hereinafter referred to as the case short-side direction) perpendicular to the direction in which the first case 6 and the second case 7 are lined up (X-axis direction in FIG. 2, etc.: hereinafter referred to as the case long-side direction) on the contact surface between the first case 6 and the second case 7 when assembled.

[0021] 3 and 4, engagement mechanism 8 has a locking structure in which a claw portion engages with a mating part. As shown in Fig. 3, first locking part 10 has a protrusion 13 that protrudes toward second case 7, and a pair of first case support parts 14 arranged on both sides of protrusion 13 in the short side direction of the case. Each of first case support parts 14 has a hole 15 that opens on the rear side of first case 6, a slit 16 that extends in the height direction of first case 6 (the Z-axis direction in Fig. 3, etc.) and communicates with hole 15, and a pair of wall parts 17 arranged on both sides of slit 16 in the short side direction of the case.

[0022] 4, the second locking portion 11 has a locking piece 18 that engages with the protrusion 13 of the first locking portion 10, and a pair of second case side support portions 19 that are arranged on both sides of the locking piece 18 in the case short direction. Each of the second case side support portions 19 is formed in a shape that extends in the height direction of the second case 7 (the Z-axis direction in FIG. 4, etc.), and is formed in a substantially T-shape in plan view.

[0023] (Assembly of the first case 6 and the second case 7) As shown in Figures 3 and 4, when assembling the first case 6 and the second case 7, the second case side support part 19 is inserted into the hole 15 of the first case side support part 14, and the second case side support part 19 is inserted into the inside of the hole 15 along the slit 16 of the first case side support part 14.

[0024] As shown in Fig. 5(a), while second case side support part 19 is being inserted into hole 15, locking piece 18 of second locking part 11 is pushed by protrusion 13 of first locking part 10 and bends, thereby continuing insertion of second case side support part 19 into hole 15. As shown in Fig. 5(b), when second case side support part 19 enters deep into hole 15, protrusion 13 of first locking part 10 and locking piece 18 of second locking part 11 engage with each other.

[0025] (Busbar 22) 6 is a perspective view showing the structure of the inner surface of the case 3. The electrical junction box 1 includes a pair of bus bars 22 that electrically connect electrical paths in the electrical junction box 1. In this example, the bus bars 22 are housed inside an annular noise-resistant core 23. Of the pair of bus bars 22, for example, one is a bus bar 22 with a positive electrode (referred to as a first bus bar 24) and the other is a bus bar 22 with a negative electrode (referred to as a second bus bar 25). The pair of bus bars 22 are formed in a plate shape and are arranged so as to overlap in the thickness direction.

[0026] As shown in FIG. 7, the first bus bar 24 has a three-dimensional shape. Specifically, the first bus bar 24 has a first piece 28 extending in the arrangement direction of the first case 6 and the second case 7 (the X-axis direction in FIG. 7), a second piece 29 bent approximately 90 degrees from the edge of the first piece 28 closer to the second case 7 in the height direction of the case 3, and a third piece 30 bent approximately 90 degrees from the edge (bottom end in the figure) of the second piece 29 to run along the first piece 28. The first piece 28 and the third piece 30 are arranged, for example, on a plane along the component mounting surface of the case 3, specifically, on the XY-axis plane in the figure. The second piece 29 extends, for example, on a plane along the height direction of the case 3.

[0027] First bus bar 24 has a plurality of holes 32 through which shafts of fastening portions 31 that secure first bus bar 24 to case 3 pass. Holes 32 include a first insertion hole 32a located at one end of first piece 28 and a second insertion hole 32b located at the other end of first piece 28. In this example, second insertion hole 32b is located in a protruding piece 33 that protrudes laterally from the end of first piece 28.

[0028] The fastening portion 31 is, for example, a screw. The part of the fastening portion 31 (fastening portion 31a) inserted into the first insertion hole 32a is fastened to the fastened portion 34a of the first case 6, and the part of the fastening portion 31 (fastening portion 31b) inserted into the second insertion hole 32b is fastened to the fastened portion 34b of the second case 7. The fastened portions 34a and 34b are, for example, seats having holes into which screws are threaded.

[0029] The second bus bar 25 has a three-dimensional shape. Specifically, the second bus bar 25 has a first piece 35 extending in the arrangement direction of the first case 6 and the second case 7 (the X-axis direction in FIG. 7 ), a second piece 36 bent approximately 90 degrees from the side end of the first piece 35 closer to the first case 6 in the height direction of the case 3, and a third piece 37 bent approximately 90 degrees from the edge (bottom end in the figure) of the second piece 36 to run along the first piece 35. The first piece 35 and the third piece 37 are arranged, for example, on a plane along the component mounting surface of the case 3, specifically, on the XY-axis plane in the figure. The second piece 36 extends, for example, on a plane along the height direction of the case 3.

[0030] The second bus bar 25 has a plurality of holes 39 through which shafts of fastening portions 38 that secure the second bus bar 25 to the case 3 pass. In this example, the holes 39 include a first insertion hole 39a disposed at one end of the first piece 35 and a second insertion hole 39b disposed at the other end of the first piece 35. In this example, the first insertion hole 39a is disposed in a protruding piece 40 that protrudes laterally from the end of the first piece 35.

[0031] The fastening portion 38 is, for example, a screw. The fastening portion 38 is inserted into the first insertion hole 39a (fastening portion 38a) and fastened to the fastened portion 34a of the first case 6, and the fastening portion 38 is inserted into the second insertion hole 39b (fastening portion 38b) and fastened to the fastened portion 34b of the second case 7.

[0032] (Core 23) 7, the core 23 has an annular core body 42 and a cover member 43 that covers the surface of the core body 42. The core body 42 has an opening 42a that accommodates the bus bar 22. The core 23 is, for example, a ferrite core.

[0033] (Holder 46) As shown in Figures 7 and 8, the electrical junction box 1 includes a holder 46 that holds the bus bars 22 and the cores 23. The holder 46 holds the pair of bus bars 22 while insulating them. The holder 46 is made of, for example, resin. The holder 46 includes, for example, a main frame 47 that extends in the longitudinal direction of the bus bars 22 and an annular frame 48 that is formed to surround the main frame 47. The main frame 47 is arranged to divide the interior of the annular frame 48 into two sections. The cores 23 are attached to the outer periphery of the annular frame 48. A flange 49 is formed on the edge of the annular frame 48 to prevent the cores 23 from falling off in the insertion direction.

[0034] 9 , the holder 46 has the second bus bar 25 disposed on the upper surface of the main body frame 47. The holder 46 has the first bus bar 24 disposed on the inner surface of the bottom wall 50 of the annular frame 48. The first bus bar 24 and the second bus bar 25 are insulated from each other by the main body frame 47 of the holder 46 being interposed therebetween. In this way, the holder 46 insulates the first bus bar 24 and the second bus bar 25 from each other.

[0035] 8 and 9, the holder 46 has a core removal prevention portion 51 that prevents the core 23 from coming out. The core removal prevention portion 51 is, for example, a flexible claw piece. The core removal prevention portion 51 is, for example, arranged on the opposite side of the annular frame 48 from the flange 49. The core 23 is positioned in the holder 46 by having one axial end supported by the flange 49 and the other axial end supported by the core removal prevention portion 51.

[0036] 10 , the holder 46 has first busbar engaging portions 52 that engage with the first busbar 24 attached to the holder 46. The first busbar engaging portions 52 are, for example, flexible tabs that position the first busbar 24. In this example, the first busbar engaging portions 52 include an engaging protrusion 52a that engages with a notch 53 formed in the first busbar 24, and an engaging protrusion 52b that engages with the end surface of the first busbar 24. In this way, a pair of first busbar engaging portions 52 are arranged in the width direction of the holder 46.

[0037] As shown in FIG. 11 , the holder 46 has second busbar engaging portions 54 that engage with the second busbar 25 attached to the holder 46. The second busbar engaging portions 54 are, for example, flexible tabs that position the second busbar 25. The second busbar engaging portions 54 are formed in a shape that extends from the edge of the annular frame 48 in the longitudinal direction of the holder 46. In this example, a pair of second busbar engaging portions 54 are arranged in the width direction of the holder 46. The second busbar engaging portions 54 engage with cutout portions 55 formed in the second busbar 25, thereby positioning the second busbar 25 in the holder 46.

[0038] (Arrangement of bus bars 22) 6 and 7, a pair of bus bars 22 are arranged to cross between the first case 6 and the second case 7. In this example, the first bus bar 24 is fixed to the first case 6 by fastening portion 31a and to the second case 7 by fastening portion 31b. The second bus bar 25 is fixed to the first case 6 by fastening portion 38a and to the second case 7 by fastening portion 38b.

[0039] 9, first bus bar 24 is fixed to first case 6 by fastening portion 31a in a state where it overlaps plate-like wiring 57 that forms an electrical path at a portion where it is fixed to first case 6. Plate-like wiring 57 is electrically connected to relay 58 (see FIG. 6, etc.) that cuts off the electrical path in the event of an overload. Second bus bar 25 is fixed to first case 6 by fastening portion 38b in a state where it overlaps plate-like wiring 59 that forms an electrical path at a portion where it is fixed to second case 7.

[0040] (heat sink 61) As shown in FIG. 12 , the electrical junction box 1 includes a heat sink 61 that dissipates heat generated in the electrical paths inside the electrical junction box 1. The heat sink 61 is arranged to cross the first case 6 and the second case 7. The heat sink 61 has a main body piece 62 that crosses the first case 6 and the second case 7, a first attachment piece 63 arranged at one end of the main body piece 62, and a second attachment piece 64 arranged at the other end of the main body piece 62. The heat sink 61 is made of, for example, metal. In this example, the heat sink 61 is attached in contact with plate-like wiring 65 that is electrically connected to the relay 58, thereby dissipating heat generated in the plate-like wiring 65.

[0041] The heat sink 61 has a first mounting piece 63 fixed to the first case 6 together with the plate-like wiring 65 by a fastening portion 67a. The fastening portion 67a is inserted into an insertion hole 66a formed in the first mounting piece 63 and fastened to a fastened portion 68a of the first case 6. The heat sink 61 has a second mounting piece 64 fixed to the second case 7 by a fastening portion 67b. The fastening portion 67b is inserted into an insertion hole 66b formed in the second mounting piece 64 and fastened to a fastened portion 68b of the second case 7. The fastening portions 67a and 67b are, for example, screws.

[0042] (Operation of the embodiment) Next, the operation of the electrical junction box 1 of this embodiment will be described. As shown in Fig. 13, the case 3 of the electrical junction box 1 has been divided into a first case 6 and a second case 7 in order to accommodate an increase in size. When the case 3 has a divided structure, a dividing surface exists between the first case 6 and the second case 7. In this case, if a bending load is applied to the case 3 as indicated by the arrow in Fig. 13, for example, and the bending load is large, the first case 6 and the second case 7 may separate into two at the dividing surface.

[0043] In this example, a pair of bus bars 22 attached to case 3 are arranged to traverse first case 6 and second case 7. Therefore, even if a bending load is applied to first case 6 and second case 7, the bending load can be supported by the pair of bus bars 22. This increases the strength of case 3 against bending loads, making it possible to make first case 6 and second case 7 less likely to separate.

[0044] (Effects of the embodiment) According to the configuration of the above embodiment, the following effects can be obtained. (1) The electrical junction box 1 is interposed in the middle of an electrical path. The electrical junction box 1 includes a first case 6, a second case 7, and a pair of bus bars 22. The second case 7 is formed separately from the first case 6 and is integrated with the first case 6 by assembling the first case 6. The pair of bus bars 22 are housed inside an annular noise-resistant core 23 and electrically connect the electrical path. The pair of bus bars 22 are arranged to cross the first case 6 and the second case 7.

[0045] With this configuration, even if a bending load is applied to the case 3 having the first case 6 and the second case 7, the bending load can be supported by a pair of bus bars 22 arranged across the first case 6 and the second case 7. As a result, the bending load is not directly applied to the dividing surface between the first case 6 and the second case 7. Therefore, even if the case 3 has a divided structure, the strength of the dividing surface can be improved.

[0046] (2) One of the pair of bus bars 22 is a positive electrode bus bar 22, and the other is a negative electrode bus bar 22. With this configuration, by using the positive electrode bus bar 22 and the negative electrode bus bar 22 arranged as a pair, the strength of the dividing surface of the split case 3 can be improved.

[0047] (3) The pair of bus bars 22 are formed in a plate shape and are arranged to overlap in the thickness direction. With this configuration, the pair of plate-shaped bus bars 22 are arranged to overlap, and therefore the pair of bus bars 22, which have high bending strength, can support a bending load. This further contributes to ensuring the strength of the dividing surface.

[0048] (4) The engagement mechanism 8 provided on the electrical junction box 1 integrates the first case 6 and the second case 7 by engaging the lock piece 18 formed on one of the first case 6 and the second case 7 with the protrusion 13 formed on the other of the first case 6 and the second case 7. With this configuration, the engagement mechanism 8 is provided on the dividing surface between the first case 6 and the second case 7, making it possible to firmly assemble the first case 6 and the second case 7. This further contributes to ensuring the strength of the dividing surface.

[0049] (5) The electrical junction box 1 includes the holder 46 that holds and insulates the pair of bus bars 22. With this configuration, the bus bars 22 are held by the holder 46, which makes it easier to position the bus bars 22 and makes it less likely that they will deviate from their specified positions.

[0050] (6) The heat sink 61 provided on the electrical junction box 1 is provided to dissipate heat generated in the electrical path and is arranged to cross the first case 6 and the second case 7. With this configuration, the bending load applied to the case 3 can also be supported by the heat sink 61, which further contributes to improving the strength of the dividing surface.

[0051] (Other embodiments) This embodiment can be modified as follows: This embodiment and the following modifications can be combined and implemented within the scope of technical compatibility.

[0052] The pair of bus bars 22 does not have to be arranged so as to overlap each other, but may be arranged, for example, side by side in the horizontal direction. The pair of bus bars 22 is not limited to a pair of a positive electrode and a negative electrode, but may be any that transmit and receive electrical signals.

[0053] The bus bar 22 is not limited to a three-dimensional shape, and may be, for example, a flat plate shape. The structure for fixing the bus bar 22 to the case 3 is not limited to the structure using the fastening portions 31 and 38, but may be a structure in which the bus bar 22 is fixed to a locking member or the like provided on the case 3, for example.

[0054] The electrical junction box 1 is not limited to a configuration in which electrical components are disposed inside the case 3, but may have electrical components attached to the surface of the case 3, for example. The housing 2 may be made up of three or more case parts.

[0055] The engagement mechanism 8 may have the first locking portion 10 provided on the second case 7 and the second locking portion 11 provided on the first case 6 . The engagement mechanism 8 may have any structure as long as it can assemble the case 3 and the lower case 4 together.

[0056] The electrical components mounted on the electrical junction box 1 include a relay 58, a fuse, a sensor, and the like. The electrical junction box 1 may be provided without the engagement mechanism 8 .

[0057] The heat sink 61 of the electrical junction box 1 may be omitted. The electrical junction box 1 may be used in other items as well as in vehicles. While the present disclosure has been described with reference to the embodiments, it is understood that the present disclosure is not limited to those embodiments or structures. The present disclosure also encompasses various modifications and equivalent modifications. In addition, various combinations and forms, including only one element, more than one element, or less than one element, are also within the scope and spirit of the present disclosure. [Explanation of symbols]

[0058] 1 Electrical junction box 2. Housing 3 Cases 4 Lower case 6 Case 1 7. Case 2 8 Engagement mechanism 10 First locking section 11 Second Lock 13 Protrusion 14 First case side support part 15 holes 16 Slit 17 Wall 18 Lock piece 19 Second case side support part 22 Busbar 23 cores 24 No. 1 bus bar 25 Second bus bar 28 1st piece 29 2nd piece 30 3rd piece 31 Fastening part 31a Fastening section 31b Fastening section 32 holes 32a First insertion hole 32b Second insertion hole 33 Projecting piece 34a Fastened part 34b Fastened part 35 1st piece 36 2nd piece 37 3rd piece 38 Fastening part 38a Fastening part 38b Fastening section 39 holes 39a First insertion hole 39b 2nd insertion hole 40 Projecting piece 42 Core body 42a hole 43 Cover member 46 Holder 47 Main frame 48 Annular Frame 49 flange 50 Lower Wall 51 Core retaining part 52 first bus bar engagement portion 52a Engagement protrusion 52b Engagement protrusion 53 Notch 54 Second bus bar engagement portion 55 Notch 57 Plate wiring 58 Relay 59 Plate-shaped wiring 61 Heat sink 62 Body piece 63 First mounting piece 64 Second mounting piece 65 Plate wiring 66a Insertion hole 66b Insertion hole 67a Fastening section 67b Fastening section 68a Fastened part 68b Fastened part

Claims

1. An electrical connection box interposed in the middle of an electrical path, The first case and a second case formed separately from the first case and integrated with the first case by assembling the first case; a pair of bus bars housed inside an annular noise-resistant core and electrically connecting the electrical paths; The pair of bus bars are arranged to cross the first case and the second case.

2. 2. The electrical junction box according to claim 1, wherein one of the pair of bus bars is a positive electrode bus bar and the other is a negative electrode bus bar.

3. 2. The electrical junction box according to claim 1, wherein the pair of bus bars are formed in a plate shape and are arranged so as to overlap each other in a thickness direction.

4. 2. The electrical connection box according to claim 1, further comprising an engagement mechanism that integrates the first case and the second case by engaging a locking piece formed on one of the first case and the second case with a protrusion formed on the other of the first case and the second case.

5. 2. The electrical junction box according to claim 1, further comprising a holder for holding the pair of bus bars while insulating them from each other.

6. 2. The electrical junction box according to claim 1, further comprising a heat sink disposed across said first case and said second case for dissipating heat generated in said electrical path.

Citation Information

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