The present application claims priority to and incorporates by reference the entire contents of Japanese Patent Application No. 2017-093161 filed in Japan on May 9, 2017.
The present invention relates to an electrical connection box.
In a conventional electrical connection box, a current sensor is provided to measure current flowing through a conductor such as a bus bar accommodated in the electrical connection box (see, for example, Japanese Patent Application Laid-open No. 2016-7101). For example, the current sensor includes various members required for detection of magnetism, such as a magnetic detection element (hall element, and the like), and a case that accommodates these various components, and the current sensor is assembled to a casing of the electrical connection box.
Incidentally, in this type of the electrical connection box, a current sensor is accommodated in an accommodation chamber of the casing, and the case of the current sensor is held in the accommodation chamber. For this reason, there is room for improvement in the conventional electrical connection box from a viewpoint of reduction of the number of parts. Note that Japanese Patent Application Lid-open No. 2006-166528 discloses a technology in which, when various components of a current sensor are disposed in a mold of a casing of an electrical connection box and the casing of the electrical connection box is formed using the mold, the various components of the current sensor are accommodated in the casing by integrating the various components at a predetermined position of the casing.
An object of the present invention is to provide an electrical connection box in which the number of parts can be reduced.
In order to achieve the above mentioned object, an electrical connection box according to one aspect of the present invention includes a conductor that is an object to be energized, a current measurement device that measures current flowing through a current measurement target part of the conductor and outputs an output signal based on the measured current, and a casing in that the conductor and the current measurement device are accommodated, wherein the current measurement device includes a magnetic sensor that measures the current flowing through the current measurement target part, a substrate that outputs the output signal based on an input signal input from the magnetic sensor, and a magnetic shield member in which the magnetic sensors, the substrate, and the current measurement target part are disposed, the magnetic shield member being configured to shield magnetism between inside and outside of the magnetic shield member, and the casing includes a sensor accommodation chamber configured to accommodate the magnetic sensor and the substrate, a position of a magnetic detection element of the magnetic sensor with respect to the current measurement target part being arranged at a magnetic detection enabling position in the sensor accommodation chamber, and the magnetic sensor and the substrate being fixed to the sensor accommodation chamber by a fixing member, a shield insertion port into which the magnetic shield member is inserted, and a shield holding chamber formed at positions where relative displacement with respect to the sensor accommodation chamber is impossible, the shield holding chamber being configured to hold the magnetic shield member inserted from the shield insertion port at an accommodation position.
According to another aspect of the present invention, in the electrical connection box, the magnetic sensor may be a Hall IC having a Hall element as the magnetic detection element.
According to still another aspect of the present invention, in the electrical connection box, the shield holding chamber may be a space into which a held portion of the magnetic shield member is inserted together with insertion of the magnetic shield member into the casing, and the shield holding chamber may include a press-fitting part into which the held portion is press-fitted together with the insertion of the held portions.
According to still another aspect of the present invention, in the electrical connection box, the shield holding chamber may be a space into which a held portion of the magnetic shield member is inserted together with insertion of the magnetic shield member into the casing, a holding structure may be provided between the held portion and the shield holding chamber to hold the held portion and the shield holding chamber relative to each other, and the holding structure may include a projecting first locked part provided on one of the held portion and the shield holding chambers, a first locking part provided on the other of the held portion and the shield holding chamber, the first locking part being configured to lock, by bringing the first locked part into contact with the first locking part, movement in a direction opposite to an advance direction of the held portion at the time of the insertion of the held portion into the shield holding chamber, a projecting second locked part provided on one of the held portion and the shield holding chamber, and a second locking part provided on the other of the held portion and the shield holding chamber, the second locking part being configured to lock, by bringing the second locked part into contact with the second locking part, movement in the advance direction of the held portion at the time of insertion of the held portions into the shield holding chamber.
According to still another aspect of the present invention, in the electrical connection box, the casing may be an assembly of a plurality of casing members having at least a first casing member and a second casing member assembled to the first casing member, the first casing member may have the conductor disposed inside and the shield insertion port, the second casing member may have the sensor accommodation chamber and the shield holding chamber, and the magnetic sensor and the substrate may be fixed to the sensor accommodation chamber by the fixing member.
The above and other objects, features, advantages and technical and industrial significance of this invention will be better understood by reading the following detailed description of presently preferred embodiment of the invention, when considered in connection with the accompanying drawings.
An embodiment of an electrical connection box according to the present invention will be described hereafter in detail with reference to the drawings. Note that the present invention is not limited to this embodiment.
An embodiment of an electrical connection box according to the present invention is described with reference to
Reference numeral 1 in
The conductor 10 is a member made of a conductive material such as metal. The conductor 10 is electrically connected to each of electronic components EC such as a relay and an electric wire (not illustrated), for example, and an energization path through which current flows is provided between a side of the electronic component EC and a side of the electric wire. In the conductor 10, the current flowing through the energization path is measured. Therefore, the conductor 10 includes the current measurement target part 11 as a measurement position of the current on the energization path.
In this example, a plate-shaped bus bar formed by using a conductive metal plate material (for example, a copper plate) as a base material is prepared as the conductor 10. The electrical connection box 1 of this example accommodates a conductor for high voltage (hereinafter referred to as a “high-voltage conductor”) 10A, a conductor for low voltage (hereinafter referred to as a “low-voltage conductor”) 10B (
The current measurement device 20 is disposed close to the current measurement target part 11 in the high-voltage conductor 10A (
The magnetic sensor 21 detects a magnetic field according to the current flowing through the current measurement target part 11 by a magnetic detection element (not illustrated), and outputs an output signal according to the magnetic field. The magnetic detection element is disposed at a magnetic detection enabling position spaced apart from the current measurement target part 11. The magnetic detection enabling position is a position at which the magnetic detection element can detect the magnetic field generated according to the current flowing through the current measurement target part 11.
The magnetic sensor 21 is electrically connected to the substrate 22, and causes the substrate 22 to input the output signal according to the magnetic field. The substrate 22 generates and outputs an output signal based on the input signal from the magnetic sensor 21. For example, the substrate 22 includes a plate-shaped main body 22a on which an electric circuit is formed, and a terminal 22b electrically connected to the electric circuit (
In this example, a Hall integrated circuit (IC) is used as the magnetic sensor 21. Although not illustrated, the Hall IC includes a Hall element serving as the magnetic detection element and an amplifier circuit that amplifies an output signal of the Hall element. For example, the Hall element is disposed at a position (the magnetic detection enabling position) at a predetermined space from an approximate center in the width direction of the current measurement target part 11 in a direction orthogonal to the plane of the current measurement target part 11. The Hall IC is accommodated in the casing 30 such that the Hall element can be disposed as described above. The Hall IC converts a detected magnetic field into a Hall voltage by the Hall element, amplifies a signal based on the Hall voltage by the amplifier circuit, and then outputs an output signal of the Hall voltage. The substrate 22 calculates, for example, a current value based on an input signal of the Hall voltage input from the Hall IC, and outputs an output signal based on the current value from the terminal 22b.
In this current measurement device 20, the magnetic sensor 21 and the substrate 22 are physically and electrically connected and integrated with each other.
The magnetic shield member 23 is made of a plate-shaped highly permeable magnetic material such as a silicon steel plate as a base material. The magnetic shield member 23 of this example is formed in a U-shape, and has a rectangular base wall portion 23a, and standing wall portions 23b protruding in the same direction from two opposed sides of the base wall portion 23a (
The casing 30 is formed of an insulating material such as a synthetic resin. The casing 30 is an assembly of a plurality of casing members at least having a first casing member 40 and a second casing member 50 (
The casing 30 includes a sensor accommodation chamber 31 accommodating the magnetic sensor 21 and the substrate 22 (
The magnetic sensor 21 and the substrate 22 accommodated in the chamber are fixed such that the position of the magnetic detection element of the magnetic sensor 21 in the chamber is at the magnetic detection enabling position. For this purpose, a sensor locking part 31b that locks the inserted sensor assembly 24 is provided in the sensor accommodation chamber 31 (
Here, in the sensor accommodation chamber 31, an end surface on a side of the opening 31a is used as a locking part (hereinafter referred to as a “conductor locking part”) 31c of the current measurement target part 11 (
Furthermore, the casing 30 includes a shield insertion port 32 (
The magnetic shield member 23 inserted from the shield insertion port 32 is guided to the accommodation position through a space 33 (
Here, the magnetic shield member 23 is disposed outside the sensor accommodation chamber 31. Therefore, the shield holding chambers 34 are disposed to face each other so as to cover the sensor accommodation chamber 31 from sides (
In the casing 30, the shield holding chambers 34 are formed at positions where relative displacement with respect to the sensor accommodation chamber 31 is impossible, and the standing walls 35 and the shield locking parts 35a are also disposed at positions where the relative displacement with respect to the sensor accommodation chamber 31 is impossible. With this configuration, when the magnetic shield member 23 is accommodated at the accommodation position in the casing 30, it is possible to suppress the relative displacement of the magnetic shield member 23 with respect to the magnetic sensor 21, the substrate 22, and the current measurement target part 11. Therefore, here, it is possible to suppress deviation in a magnetism collecting effect caused by the magnetic shield member 23.
The shield holding chambers 34 hold the standing wall portions 23b (held portions 23c) so as to hold the magnetic shield member 23 at the accommodation position in the casing 30. The shield holding chambers 34 of this example include press-fitting parts 36 into which the standing wall portions 23b (held portions 23c) are press-fitted together with the insertion of the standing wall portions 23b (held portions 23c) (
For example, the shield holding chamber 34 has first wall surfaces 34a opposed to the first wall surfaces 23b1 of the standing wall portions 23b (held portions 23c) with intervals, and second wall surfaces 34b opposed to the second wall surfaces 23b2 of the standing wall portions 23b (held portions 23c) with spaces (
Note that, as described above, the casing 30 of this example is a divided structure having the first casing member 40 and the second casing member 50. Therefore, the various configurations of the casing 30 described so far are appropriately provided in the first casing member 40 and the second casing member 50. In this example, the first casing member 40 is provided with the conductor 10 (specifically, the first conductive member 10A1 of the high-voltage conductor 10A), and has the shield insertion port 32 and the space 33. In addition, the second casing member 50 has the sensor accommodation chamber 31 (including the sensor locking part 31b and the conductor locking part 31c), the shield holding chambers 34 (including the press-fitting parts 36), and the standing walls 35 (including the shield locking parts 35a).
An installation process of the current measurement device 20 in the electrical connection box 1 will be described as follows.
First, the magnetic sensor 21 and the substrate 22 are fixed to the sensor accommodation chamber 31 of the second casing member 50 by the fixing member 60 (
Next, the first conductive member 10A1 of the high-voltage conductor 10A is installed on the first casing member 40 (
Thereafter, the magnetic shield member 23 is attached to the casing 30. The magnetic shield member 23 is inserted from the shield insertion port 32 (
The current measurement device 20 is installed on the casing 30 in this manner.
As described above, in the electrical connection box 1 of the present embodiment, the current measurement device 20 is formed by accommodating and fixing the magnetic sensor 21 and the substrate 22 in the sensor accommodation chamber 31 of the casing 30, inserting the magnetic shield member 23 from the shield insertion port 32 to the accommodation position in the casing 30, and accommodation the magnetic shield member 23 at the predetermined position with respect to the magnetic sensor 21, the substrate 22, and the current measurement target part 11. In particular, in the electrical connection box 1 of this example, by accommodating and fixing the magnetic sensor 21 and the substrate 22 in the sensor accommodation chamber 31 of the second casing member 50, and installing the conductor 10 on the first casing member 40 and assembling the first casing member 40 and the second casing member 50, the magnetic detection element of the magnetic sensor 21 is disposed at a predetermined position of the electric conductor 10 with respect to the current measurement target part 11. In the electrical connection box 1, the magnetic shield member 23 is accommodated at the predetermined position with respect to the magnetic sensor 21, the substrate 22, and the current measurement target part 11 by inserting the magnetic shield member 23 through the shield insertion port 32 of the first casing member 40, and holding the magnetic shield member 23 by the shield holding chamber 34 of the second casing member 50. In the electrical connection box 1 of this example, the current measurement device 20 is formed in this manner. Therefore, in the electrical connection box 1 of the present embodiment, the number of parts can be reduced as compared with a conventional electrical connection box. Further, with the reduction in the number of parts, it is possible to reduce physical size and weight of the electrical connection box 1, as well as the cost.
Modification
An electrical connection box 2 of the present modification is obtained by replacing the magnetic shield member 23 and the shield holding chamber 34 with a magnetic shield member 123 and a shield holding chamber 134 described below in the electrical connection box 1 of the above-described embodiment, and a holding form between the magnetic shield member and the shield holding chamber is replaced with a holding form described below (
First, in a current measurement device 120 of the present modification, the magnetic shield member 123 is formed in a U-shape similarly to the magnetic shield member 23 of the embodiment, and has a base wall portion 123a and two standing wall portions 123b (
Next, the shield holding chamber 134 of the present modification has a shape and disposition similar to those of the shield holding chamber 34 of the embodiment, and is provided for each magnetic shield member 123. Note that the shield holding chamber 134 is different from the shield holding chamber 34 of the embodiment in that the press-fitting parts 36 are not provided.
In the holding form of the present modification, the standing wall portions 123b (held portions 123c) of the magnetic shield member 123 are held by the shield holding chamber 134. Holding structures 136 are provided between the standing wall portions 123b (held portions 123c) and the shield holding chamber 134 to hold the standing wall portions 123b (held portions 123c) and the shield holding chamber 134 relative to each other. The holding structures 136 include projecting first locked parts 136a which are provided on one of the standing wall portions 123b (held portions 123c) and the shield holding chambers 134, and first locking parts 136b which are provided on the other of the standing wall portions 123b (held portions 123c) and the shield holding chambers 134, and lock, by bringing the first locked parts 136a into contact with the first locking parts 136b, movement in a direction opposite to an advance direction of the standing wall portions 123b (held portions 123c) at the time of the insertion of the standing wall portions 123b (held portions 123c) into the shield holding chambers 134 (
In this example, the first locked parts 136a and the second locked parts 136c are provided in the shield holding chambers 134, and the first locking parts 136b and the second locking parts 136d are provided in the standing wall portions 123b (held portions 123c). Furthermore, in this example, two combinations of the first locked part 136a and the first locking part 136b are provided, and one combination of the second locked part 136c and the second locking part 136d is disposed between the two combinations.
The first locked parts 136a and the second locked parts 136c protrude from wall surfaces 134a on sides opposite to a side of the sensor accommodation chamber 31 of the shield holding chambers 134 toward the standing wall portions 123b (held portions 123c).
The first locked part 136a has a flexible part 136a1 having flexibility and protruding from the wall surface 134a, and a claw 136a2 provided at a tip end in a protruding direction of the flexible part 136a1 (
The second locked part 136c has a flexible part 136c1 having flexibility and protruding from the wall surface 134a, and a claw 136c2 provided at a tip end in a protruding direction of the flexible part 136c1 (
As described above, the holding structures 136 of the present modification lock, in a state where the magnetic shield member 123 is accommodated at the accommodation position in the casing 30, both the movement of the standing wall portions 23b (held portions 23c) in the advance direction at the time of the insertion of the standing wall portions 23b (held portions 23c) and the movement in the direction opposite to the advance direction. Therefore, the holding structures 136 can continue to hold the magnetic shield member 123 at a predetermined position with respect to the magnetic sensor 21, the substrate 22, and the current measurement target part 11. Therefore, the electrical connection box 2 of the present modification can obtain an effect similar to that of the electrical connection box 1 of the embodiment, and at the same time, can enhance an effect of suppressing the displacement of the magnetic shield member 123 with respect to the magnetic sensor 21, the substrate 22, and the current measurement target part 11, as compared with the electrical connection box 1.
In an electrical connection box according to the present embodiment, a current measurement device is formed by accommodating and fixing a magnetic sensor and a substrate in a sensor accommodation chamber of a casing, inserting a magnetic shield member from a shield insertion port to an accommodation position in the casing, and accommodating the magnetic shield member at a predetermined position with respect to the magnetic sensor, the substrate, and a current measurement target part. Therefore, in the electrical connection box, the number of parts can be reduced as compared with a conventional electrical connection box. Further, with the reduction in the number of parts, it is possible to reduce physical size and weight of the electrical connection box, as well as the cost.
Although the invention has been described with respect to the specific embodiment for a complete and clear disclosure, the appended claims are not to be thus limited but are to be construed as embodying all modifications and alternative constructions that may occur to one skilled in the art that fairly fall within the basic teaching herein set forth.
Number | Date | Country | Kind |
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2017-093161 | May 2017 | JP | national |