Water-stop structure for wire harness
09721699 · 2017-08-01
Assignee
Inventors
Cpc classification
H02G15/046
ELECTRICITY
Y02A30/14
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
H01B7/18
ELECTRICITY
H01B7/282
ELECTRICITY
H02G3/04
ELECTRICITY
Abstract
A water-stop structure including a water-stop tube is provided in which the water-stop tube can be brought into intimate contact with a water-stop region in a wire harness having a steep thickness gradient and thus water-stop performance is improved. The wire harness includes a first portion and a second portion that is thinner than the first portion. An inner water-stop tube covers the water-stop region ranging from the first portion to the second portion in a state where the inner water-stop tube is heated and shrunk. An outer water-stop tube covers the inner water-stop tube at a position between a portion on the first portion side and a portion on the second portion side in the water-stop region in a state where the outer water-stop tube is heated and shrunk.
Claims
1. A water-stop structure for a wire harness comprising: a wire harness having a first portion and a second portion that is thinner than the first portion; and an inner water-stop tube and an outer water-stop tube both having a two-layer structure that includes a heat-shrinkable tube and a thermoplastic adhesive layer formed on an inner side surface of the heat-shrinkable tube, wherein the inner water-stop tube covers a water-stop region ranging from the first portion to the second portion in the wire harness in a state where the inner water-stop tube is heated and shrunk, and the outer water-stop tube covers the inner water-stop tube at a position between a portion on the first portion side and a portion on the second portion side in the water-stop region in the wire harness in a state where the outer water-stop tube is heated and shrunk wherein the inner water-stop tube includes a first inner water-stop tube and a second inner water-stop tube that respectively cover a partial region on the first portion side and a partial region on the second portion side in the water-stop region in the wire harness, and the outer water-stop tube covers a portion ranging from a portion of the first inner water-stop tube to a portion of the second inner water-stop tube in the inner water-stop tube, wherein a maximum shrinkage percentage in a radial direction of the heated first inner water-stop tube is smaller than a maximum shrinkage percentage in a radial direction of the heated second inner water-stop tube.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
EMBODIMENTS OF THE INVENTION
(6) Hereinafter, embodiments of the present invention will be described with reference to the attached drawings. The following embodiments are merely specific examples of the present invention, and are not to restrict the technical scope of the present invention. The embodiments and an application example shown below are applied to a wire harness that is mounted in a vehicle such as a car.
First Embodiment
(7) First, the water-stop structure 1 of a wire harness according to a first embodiment will be described with reference to
(8) As shown in
(9) The electric wire bundle 10 with an intermediate joint portion includes a second electric wire 3 and an electric wire bundle 20 including a plurality of first electric wires 2, and has a structure in which the electric wire bundle 20 and the second electric wire 3 are connected to each other. The first electric wires 2 are insulated electric wires having a linear conductor 21 and an insulating coating 22 that covers the circumference of the conductor 21. Similarly, the second electric wire 3 is also an insulated electric wire having a linear conductor 31 and an insulating coating 32 that covers the circumference of the conductor 31.
(10) The end portions of the conductors 21 of the first electric wires 2 are formed to extend from the ends of the insulating coatings 22, and similarly, the end portion of the conductor 31 of the second electric wire 3 is formed to extend from the end of the insulating coating 32. Furthermore, the end portions of the conductors 21 of the first electric wires 2 and the end portion of the conductor 31 of the second electric wire 3 are joined by welding, crimping of metal fittings, or the like to form a joint portion 4. In the example shown in
(11) In the following description, in the electric wire bundle 10 with an intermediate joint portion, a portion in which the end portions of the insulating coatings 22 of the first electric wires 2 are bundled is referred to as “first portion 101”, and the end portion of the insulating coating 32 of the second electric wire 3 is referred to as “second portion 102”.
(12) In the electric wire bundle 10 with an intermediate joint portion, the region ranging from the first portion 101 to the second portion 102 is the water-stop region that is covered with the water-stop tube group 5 and thus is sealed. In the electric wire bundle 10 with an intermediate joint portion, the second portion 102 is thinner than the first portion 101.
(13) In the examples shown in
(14) Both of the inner water-stop tube 51 and the outer water-stop tube 52 that constitute the water-stop tube group 5 have a two-layer structure including a heat-shrinkable tube 501 and a thermoplastic adhesive layer 502 formed on the inner side surface of the heat-shrinkable tube 501.
(15) In the water-stop structure 1, the inner water-stop tube covers the water-stop region ranging from the first portion 101 to the second portion 102 in the electric wire bundle 10 with an intermediate joint portion (wire harness) in a state where the inner water-stop tube is heated and shrunk.
(16) The inner side surface of the inner water-stop tube 51 is in direct contact with the water-stop region. More specifically, the heat-shrinkable tube 501 of the inner water-stop tube 51 is adhered to the water-stop region in the electric wire bundle 10 with an intermediate joint portion by the adhesive layer 502 on the inner side of that heat-shrinkable tube 501. The adhesive layer 502 of the inner water-stop tube 51 fills the gap between the heat-shrinkable tube 501 of the inner water-stop tube 51 and the water-stop region.
(17) On the other hand, the outer water-stop tube 52 covers the inner water-stop tube 51 at the position between a portion on the first portion 101 side and a portion on the second portion 102 side in the water-stop region of the electric wire bundle 10 with an intermediate joint portion (wire harness) in a state where the outer water-stop tube 52 is heated and shrunk.
(18) The heat-shrinkable tube 501 of the outer water-stop tube 52 is adhered to the outer circumferential surface of the inner water-stop tube 51 by the adhesive layer 502 on the inner side of that heat-shrinkable tube 501.
(19) For example, it is conceivable that the maximum shrinkage percentage in a radial direction of the heated outer water-stop tube 52 is greater than the maximum shrinkage percentage in a radial direction of the heated inner water-stop tube 51. Here, a shrinkage percentage is a ratio of the difference between the dimensions before and after shrinkage with respect to the dimension before shrinkage. Moreover, a maximum shrinkage percentage is a shrinkage percentage when the heat-shrinkable tube is heated in a state where nothing is inserted into the inside to have the smallest thickness, that is, the shrinkage percentage of the heat-shrinkable tube in specifications.
(20) Accordingly, if water-stop tubes before shrinkage have the same diameters, the water-stop tubes having a large maximum shrinkage percentage can be shrunk to a thinner state than the water-stop tubes having a small maximum shrinkage percentage.
(21) In the example shown in
(22) However, it is conceivable that the inner water-stop tube 51 is inserted into the inside of the outer water-stop tube 52 without being adhered, and then the inner water-stop tube 51 and the outer water-stop tube 52 are heated in the water-stop region.
Effects
(23) In the water-stop structure 1, when heated, the outer water-stop tube 52 tightens the inner water-stop tube 51 that is in direct contact with the water-stop region in the electric wire bundle 10 with an intermediate joint portion from the outside at the intermediate position in which the gap between the inner water-stop tube 51 and the water-stop region is likely to be formed. Therefore, even if the water-stop region ranging from the first portion 101 to the second portion 102 has a steep thickness gradient, the inner water-stop tube 51 can be brought into intimate contact with the water-stop region. As a result, the water-stop structure 1 has high water-stop performance.
Second Embodiment
(24) Next, a water-stop structure 1A of a wire harness according to a second embodiment will be described with reference to
(25) The water-stop structure 1A has a configuration in which some components are added to the water-stop structure 1 shown in
(26) As shown in
(27) The first inner water-stop tube 51x and the second inner water-stop tube 51y cover the water-stop region in the electric wire bundle 10 with an intermediate joint portion in a state where they are heated and shrunk. The first inner water-stop tube 51x covers a partial region on the first portion 101 side in the water-stop region, and the second inner water-stop tube 51y covers a partial region on the second portion 102 side in the water-stop region.
(28) On the other hand, the outer water-stop tube 52 covers the portion ranging from a portion of the first inner water-stop tube 51x to a portion of the second inner water-stop tube 51y in a state where the outer water-stop tube 52 is heated and shrunk. The outer water-stop tube 52 covers both of a portion of the first inner water-stop tube 51x and a portion of the second inner water-stop tube 51y at a position between a portion on the first portion 101 side and a portion on the second portion 102 side in the water-stop region in the electric wire bundle 10 with an intermediate joint portion (wire harness).
(29) That is, the inner water-stop tube 51 of the water-stop structure 1 is divided into two portions including one portion on the first portion 101 side and the other portion on the second portion 102 side at the intermediate position to form the water-stop structure 1A.
(30) It is conceivable that in the water-stop structure 1A, the maximum shrinkage percentage in a radial direction of the heated first inner water-stop tube 51x is smaller than the maximum shrinkage percentage in a radial direction of the heated second inner water-stop tube 51y. In this case, it is conceivable that the maximum shrinkage percentage in a radial direction of the heated outer water-stop tube 52 is equal to or greater than the maximum shrinkage percentage in a radial direction of the heated second inner water-stop tube 51y.
(31) If the water-stop structure 1A is used, it is possible to attain the same effect as in the case where the water-stop structure 1 is used.
(32) In the water-stop structure 1A, the inner water-stop tube is divided into two portions including the first inner water-stop tube 51x on the thick first portion 101 side and the second inner water-stop tube 51y on the thin second portion 102 side. In this case, the second inner water-stop tube 51y is easily shrunk to a thinner state without the influence of the first inner water-stop tube 51x, which is shrunk to a relatively thick state. Furthermore, the outer water-stop tube 52 tightens the portion ranging from a portion of the first inner water-stop tube 51x to a portion of the second inner water-stop tube 51y from the outside and fills the gap therebetween. As a result, the water-stop structure 1A has high water-stop performance.
(33) Moreover, in the water-stop structure 1A, when the first inner water-stop tube 51x is a water-stop tube that has a thickness corresponding to the thickness of the relatively thick first portion 101 to be covered and has a small maximum shrinkage percentage, it is possible to reduce the cost while securing sufficient water-stop performance. This is because a water-stop tube (heat-shrinkable tube) having a small maximum shrinkage percentage is generally more inexpensive than a water-stop tube having a large maximum shrinkage percentage.
Application Example
(34) Next, a water-stop structure 1B of a wire harness according to an application example will be described with reference to
(35) The water-stop structure 1B differs from the water-stop structure 1A shown in
(36) The water-stop structure 1B includes the electric wire 10x with a terminal, which is an example of a wire harness, and a water-stop tube group 5A. The water-stop tube group 5A includes the inner water-stop tube 51 and the outer water-stop tube 52.
(37) The electric wire 10x with a terminal includes the electric wire 2 and a terminal fitting 6 that is connected to the end portion of the electric wire 2. The electric wire is an insulated electric wire having the linear conductor 21 and the insulating coating 22 that covers the circumference of the conductor.
(38) The terminal fitting 6 has a contact portion 61, a conductor-connecting portion 62, and a coating-crimping portion 63. The contact portion 61 is a portion that is connected to a connecting partner (another member) of the electric wire 10x with a terminal. The conductor-connecting portion 62 is a portion to which the conductor 21 extending from the end of the insulating coating 22 of the electric wire 2 is connected. The conductor 21 is connected to the conductor-connecting portion 62 by welding or crimping, for example.
(39) Moreover, in the terminal fitting 6, the coating-crimping portion 63 is a portion that is crimped to the end portion of the insulating coating 22 of the electric wire 2. It should be noted that it is conceivable that the terminal fitting 6 includes no coating-crimping portion 63.
(40) In the electric wire 10x with a terminal, a portion on the end portion side of the insulating coating 22 of the electric wire 2 is referred to as “first portion 101x”, and a portion between the contact portion 61 and the conductor-connecting portion 62 in the terminal fitting 6 is referred to as “second portion 102x”.
(41) In the electric wire 10x with a terminal, the region ranging from the first portion 101x to the second portion 102x is a water-stop region that is covered with the water-stop tube group 5A and thus is sealed. In the electric wire 10x with a terminal, the second portion 102x is thinner than the first portion 101x.
(42) The steeper the thickness gradient of the region ranging from the first portion 101x to the second portion 102x in the electric wire 10x with a terminal is, the more remarkable the effect by using the water-stop tube group 5A is.
(43) The first inner water-stop tube 51x and the second inner water-stop tube 51y cover the water-stop region in the electric wire 10x with a terminal in a state where they are heated and shrunk. The first inner water-stop tube 51x covers a partial region on the first portion 101x side in the water-stop region, and the second inner water-stop tube 51y covers a partial region on the second portion 102x side in the water-stop region.
(44) On the other hand, the outer water-stop tube 52 covers the portion ranging from a portion of the first inner water-stop tube 51x to a portion of the second inner water-stop tube 51y in a state where the outer water-stop tube 52 is heated and shrunk. The outer water-stop tube 52 covers both of a portion of the first inner water-stop tube 51x and a portion of the second inner water-stop tube 51y at a position between a portion on the first portion 101x side and a portion on the second portion 102x side in the water-stop region in the electric wire 10x with a terminal (wire harness).
(45) It is conceivable that the magnitude relationship between the maximum shrinkage percentages in the radial direction of the heated water-stop tubes in the water-stop structure 1B is also the same as the relationship between the maximum shrinkage percentages of the tubes in the water-stop structure 1A.
(46) If the water-stop structure 1B is used, it is possible to attain the same effect as in the case where the water-stop structure 1A is used. That is, it is conceivable that the water-stop structures 1 and 1A shown in
(47) It should be noted that the water-stop structure for a wire harness according to the present invention can be configured by freely combining the above-described embodiments and application example, or modifying the embodiments and application example or omitting a portion thereof as appropriate, within the scope of the present invention described in claims.
LIST OF REFERENCE NUMERALS
(48) 1, 1A, 1B Water-stop structure
(49) 10 Electric wire bundle with an intermediate joint portion (wire harness)
(50) 10x Electric wire with a terminal (wire harness)
(51) 101, 101x First portion
(52) 102, 102x Second portion
(53) 2 First electric wire (electric wire)
(54) 20 Electric wire bundle
(55) 21 Conductor of first electric wire
(56) 22 Insulating coating of first electric wire
(57) 3 Second electric wire
(58) 31 Conductor of second electric wire
(59) 32 Insulating coating of second electric wire
(60) 4 Joint portion
(61) 5, 5A Water-stop tube group
(62) 501 Heat-shrinkable tube
(63) 502 Adhesive layer
(64) 51 Inner water-stop tube
(65) 51x First inner water-stop tube
(66) 51y Second inner water-stop tube
(67) 52 Outer water-stop tube
(68) 6 Terminal fitting
(69) 61 Contact portion of terminal fitting
(70) 62 Conductor-connecting portion of terminal fitting
(71) 63 Coating-crimping portion of terminal fitting