The present invention relates to a connector.
As shown in
The first connector housing 110 includes a hood portion 111 and a lock arm 112. The hood portion 111 which is substantially shaped like a cylinder is fitted to an outer circumference of a cylindrical portion 121 of the second connector housing 120 serving as a connection counterpart. The lock arm 112 is formed integrally with the first connector housing 110.
The lock arm 112 includes an erect portion 113 and an arm body 114. The erect portion 113 rises from a position close to a base end (right end in
In addition, the arm body 114 includes a cavity 114b engaged with the lock protrusion 122 of the second connector housing 120 which will be described later, in a position close to the free end.
A release arm 115 is formed integrally with the lock arm 112. The release arm 115 includes arm portions 115a and an operating portion 115b. The arm portions 115a extend toward the base end side of the first connector housing 110 from both end portions of the distal end 114a of the lock arm 112. Distal ends of the pair of arm portions 115a are connected to each other through the operating portion 115b.
When the operating portion 115b of the release arm 115 is pushed down in a direction of an arrow Z1 as shown in
The second connector housing 120 includes the cylindrical portion 121 and the lock protrusion 122. The aforementioned hood portion 111 is fitted to the outer circumference of the cylindrical portion 121. The lock protrusion 122 is provided to protrude from an outer surface of the cylindrical portion 121. When a fitting length between the cylindrical portion 121 and the hood portion 111 reaches a predetermined value as shown in
The first connector housing 110 or the second connector housing 120 constituting the connector 100 according to Patent Document 1 is normally formed integrally by injection molding of a synthetic resin such as PBT (polybutylene terephthalate resin).
However, when the first connector housing 110 or the second connector housing 120 formed of the PBT is used for a long term, for example, in a high temperature high humid environment such as an engine room of a vehicle, there is a fear that mechanical strength may be lowered by degradation of the PBT due to hydrolysis.
Therefore, when connection or disconnection between the connector housings is repeated, there is a fear that the lock arm undergoing a bending load when the connector housings are connected to or disconnected from each other may be damaged due to the degradation of the material.
Therefore, in order to solve the foregoing problem, an object of the invention is to provide a connector in which a lock arm undergoing a bending load when connector housings are connected to or disconnected from each other can be suppressed from being damaged due to degradation of the material even in long-term use under a high temperature high humid environment so that the lock arm can be used satisfactorily for a long term.
The above-described object of the present invention is achieved by the configurations described below.
(1) A connector including:
a first connector housing including: a hood portion having a substantially cylinder shape to be fitted to an outer circumference of a cylindrical portion of a connection counterpart connector housing; a terminal storing portion which stores a terminal metal fitting; and a lock arm formed integrally with the terminal storing portion such that a free end side of the lock arm is deflected and deformed in a direction perpendicular to a surface of the cylindrical portion; and
a second connector housing including: the cylindrical portion; and a lock protrusion which is provided to protrude from an outer surface of the cylindrical portion and which engages the lock arm when a fitting length between the cylindrical portion and the terminal storing portion reaches a predetermined value,
wherein the first connector housing is formed of a hydrolysis-resistant material.
(2) The connector according to the configuration (1), wherein a base end portion of the lock arm rising from the terminal storing portion is formed into a smooth curved shape with which a bending load is difficult to be concentrated.
(3) The connector according to the configuration (2),
wherein the lock arm includes: a plate spring portion having a flat plate shape extending in a fitting direction between the connector housings from a distal end of the base end portion; and a protrusion engagement portion which has an engagement hole with which the lock protrusion is engaged and which is provided in a distal end of the plate spring portion, and
wherein the protrusion engagement portion is formed to be thicker than the plate spring portion.
According to the aforementioned configuration (1), even when the first connector housing formed of the hydrolysis-resistant material is used for a long term under a high temperature high humid environment such as an engine room, material properties are hardly degraded. Even when connection/disconnection between the connector housings is repeated, the lock arm undergoing a bending load can be suppressed from being damaged due to the degradation of the material. Accordingly, the lock arm can be used satisfactorily for a long term.
According to the aforementioned configuration (2), the base end portion of the lock arm rising from the terminal storing portion is formed into the smooth curved shape with which the bending load is difficult to be concentrated. Therefore, when the lock arm is deflected and deformed to be engaged with or disengaged from the lock protrusion of the second connector housing, the bending load can be prevented from concentratively acting on a part of the base end portion of the lock arm. Accordingly, durability of the lock arm can be improved.
According to the aforementioned configuration (3), the engagement hole with which the lock protrusion is engaged is formed in the protrusion engagement portion of the lock arm. The formation of the engagement hole is unfavorable for the strength of the protrusion engagement portion. However, since the protrusion engagement portion is formed to be thicker than the plate spring portion, the strength of the protrusion engagement portion can be improved. Accordingly, the strength of the protrusion engagement portion of the lock arm can be prevented from being lower than that of the plate spring portion so that durability of the lock arm can be improved.
According to the connector according to the invention, the lock arm undergoing a bending load when the connector housings are connected to or disconnected from each other can be suppressed from being damaged due to degradation of the material even in long-term use under a high temperature high humid environment. Accordingly, the lock arm can be used satisfactorily for a long term.
The invention has been described above briefly. When an undermentioned mode (hereinafter referred to as “embodiment”) for carrying out the invention is read through with reference to the accompanying drawings, details of the invention can be made further clear.
A preferable embodiment of a connector according to the invention will be described below in detail with reference to the drawings.
A connector 4 in an embodiment according to the invention is a waterproof connector. As shown in
The first connector housing 5 is integrally formed of a hydrolysis-resistant resin material. The first connector housing 5 includes the terminal storing portion 51, a hood portion 52, and a lock arm 53. The terminal storing portion 51 stores not-shown first terminal metal fittings. The hood portion 52 is formed into a cylindrical structure surrounding the terminal storing portion 51. The lock arm 53 is formed integrally with the terminal storing portion 51.
For example, PBT-GF15 may be used as the hydrolysis-resistant resin material for forming the first connector housing 5. PBT-GF15 is a PBT (polybutylene terephthalate resin) product added with a glass fiber content of 15% to reinforce hydrolysis resistance. Incidentally, in design, permissible strain of the material caused by molding is not higher than 3%. In the embodiment, the permissible strain is designed to be not higher than 2.5% so that there is no portion where stress is concentrated to cause permissible strain higher than 2.5%.
The terminal storing portion 51 is a region which is substantially formed into a columnar shape extending in a fitting direction (direction of an arrow X2 in
As shown in
When the first connector housing 5 and the second connector housing 8 are operated to be fitted to each other, the horizontal guide ribs 84 and the vertical guide ribs 85 of the second connector housing 8 which will be described later are fitted into the horizontal guide grooves 521 and the vertical guide grooves 522 provided in the hood portion 52. In this manner, a direction of moving the first connector housing 5 and the second connector housing 8 relatively to each other is restricted to prevent one of the connector housings from being inclined. Thus, torsion is prevented from occurring.
In the first connector housing 5 according to the embodiment, a retainer inserting port 524 is formed to pierce one side surface 523 of the hood portion 52, as shown in
As shown in
When the retainer 7 is inserted into the first connector housing 5, the retainer 7 can be positioned in a temporary lock position and a regular lock position. The terminal metal fittings can be inserted into the terminal storing portion 51 in the temporary lock position. The terminal metal fittings inserted into the terminal storing portion 51 are prevented from dropping off in the regular lock position.
Assume that a fitting length between the cylindrical portion 82 of the second connector housing 8 and the terminal storing portion 51 reaches a predetermined value so that fitting between the first connector housing 5 and the second connector housing 8 is completed, as shown in
The lock arm 53 according to the embodiment is formed integrally with the terminal storing portion 51 so that when the cylindrical portion 82 of the second connector housing 8 is fitted to an inner side of the hood portion 52, a free end side of the lock arm 53 can be deflected and deformed in a direction perpendicular to the surface of the cylindrical portion 82 of the second connector housing 8.
Specifically, as shown in
As shown in
In the case of the lock arm 53 according to the embodiment, the plate spring portion 532 is deflected and deformed in a direction of an arrow Z2 (see
Assume that the coupling arm portions 534 swing due to pushing down of the operating portion 535 to thereby result in upward movement of the protrusion engagement portion 533 connected to front ends of the coupling arm portions 534 in the direction of the arrow Z2 (see
The stoppers 536 (see
In the lock arm 53 according to the embodiment, the base end portion 531 rising from the terminal storing portion 51 is formed into a smooth curved shape with which a bending load is difficult to be concentrated. Therefore, when the plate spring portion 532 is deflected and deformed in the middle of fitting between the connector housings or during pushing down of the operating portion 535, shear stress is not concentrated on the base end portion 531 but can be dispersed in a wide range on the plate spring portion 532. A region L1 on the plate spring portion 532 designated by a one-dot chain line in
In addition, in the case of the embodiment, as shown in
The packing 6 is shaped like a cylinder outer-fitted to the terminal storing portion 51 of the first connector housing 5. The packing 6 is integrally molded of synthetic rubber or natural rubber having moderate elasticity.
As shown in
The second connector housing 8 is a housing fixedly provided in a housing 9 of an apparatus etc. In addition, the second connector housing 8 is an integrally molded article made of PBT (polybutylene terephthalate resin) whose strength is improved by adding glass fiber to the resin. As shown in
Incidentally, the second connector housing 8 has no region which has to be deflected and deformed like the lock arm 53 of the first connector housing 5. Accordingly, a material lower in strength than that of the first connector housing 5 may be used.
The terminal array space 81 is a space in which the distal end portions of the second terminal metal fittings (not shown) protrude so that the second terminal metal fittings can be fitted to the first terminal metal fittings inside the terminal storing portion 51.
The cylindrical portion 82 is shaped like a cylinder surrounding the terminal array space 81 so as to define the terminal array space 81. The cylindrical portion 82 is inserted into the gap 54 of the first connector housing 5 to be fitted to the outer circumference of the terminal storing portion 51. On this occasion, the cylindrical portion 82 is fitted to the inner circumference of the hood portion 52. As shown in
The lock protrusion 83 is a protrusion provided to protrude from the outer surface of the cylindrical portion 82. When the fitting length between the cylindrical portion 82 and the terminal storing portion 51 reaches the predetermined value, the lock protrusion 83 is engaged with the lock arm 53 to thereby lock the connection state between the first connector housing 5 and the second connector housing 8, as shown in
When the first connector housing 5 and the second connector housing 8 are fitted to each other, the horizontal guide ribs 84 are engaged with the horizontal guide grooves 521 of the first connector housing 5 slidably. Thus, occurrence of inclination between the housings is prevented.
When the first connector housing 5 and the second connector housing 8 are fitted to each other, the vertical guide ribs 85 are engaged with the vertical guide grooves 522 of the first connector housing 5 slidably. Thus, occurrence of inclination between the housings is prevented.
That is, in the first connector housing 5 and the second connector housing 8 according to the embodiment, the horizontal guide ribs 84 and the vertical guide ribs 85 of the second connector housing 8 are engaged with the horizontal guide grooves 521 and the vertical guide grooves 522 provided in the first connector housing 5. In this manner, a direction of moving the connector housings relatively to each other is restricted to thereby prevent occurrence of inclination from the fitting direction.
In the case of the configuration of the connector 4 according to the aforementioned embodiment, degradation of material properties can hardly occur even when the first connector housing 5 which is formed of a hydrolysis-resistant material is used for a long term under a high temperature high humid environment such as an engine room. Therefore, even when connection/disconnection between the connector housings is repeated, the lock arm 53 undergoing a bending load can be suppressed from being damaged due to the degradation of the material. Accordingly, the lock arm 53 can be used satisfactorily for a long term.
In addition, in the case of the configuration of the connector 4 according to the embodiment, the base end portion 531 of the lock arm 53 rising from the terminal storing portion 51 is formed into a smooth curved shape with which a bending load is difficult to be concentrated. Therefore, when the lock arm 53 is deflected and deformed in order to be engaged with or disengaged from the lock protrusion 83 of the second connector housing 8, the bending load can be prevented from concentratively acting on a part of the base end portion 531 of the lock arm 53. Thus, durability of the lock arm 53 can be improved.
In addition, in the case of the configuration of the connector 4 according to the embodiment, the engagement hole 533a with which the lock protrusion 83 is engaged is formed in the protrusion engagement portion 533 of the lock arm 53. The formation of the engagement hole 533a is unfavorable for the strength of the protrusion engagement portion 533. However, the protrusion engagement portion 533 is formed to be thicker than the plate spring portion 532 so that the strength of the protrusion engagement portion 533 can be improved. Accordingly, the strength of the protrusion engagement portion 533 of the lock arm 53 can be prevented from being lower than that of the plate spring portion 532 so that durability of the lock arm 53 can be improved.
In addition, in the case of the configuration of the connector 4 according to the embodiment, the gap is secured under the coupling arm portions 534. Accordingly, even when some force is applied to the operating portion 535, the protrusion engagement portion 533 is not lifted up so that unprepared disengagement between the engagement hole 533a and the lock protrusion 83 can be prevented.
Incidentally, the invention is not limited to the aforementioned embodiment. However, modification, improvement, etc. may be made on the invention suitably. In addition thereto, the material, shape, dimensions, number, arrangement place, etc. of each constituent member in the aforementioned embodiment are not limited but may be set desirably as long as the invention can be achieved.
For example, the material of the first connector housing having the lock arm is not limited to PBT-GF15. Another resin material having hydrolysis resistance may be used. In addition, the retainer or the second connector housing may be formed of the same resin material as that of the first connector housing.
Incidentally, a resin material with enhanced hydrolysis resistance is more expensive than an ordinary resin material with inferior hydrolysis resistance. Accordingly, the second connector housing having no region which has to be deflected and deformed when the connector housings are connected to or disconnected from each other is formed of a resin material more inexpensive than that of the first connector housing. Thus, reduction of cost can be achieved.
Here, the aforementioned characteristics of the embodiment of the connector according to the invention will be summarized and listed briefly in the following items [1] to [3] respectively.
[1] A connector (4) including: a first connector housing (5) including a hood portion (52) having a substantially cylinder shape to be fitted to an outer circumference of a cylindrical portion (82) of a connection counterpart connector housing (a second connector housing 8), a terminal storing portion (51) which stores a terminal metal fitting, and a lock arm (53) formed integrally with the terminal storing portion (51) such that a free end side of the lock arm (53) is deflected and deformed in a direction perpendicular to a surface of the cylindrical portion (82); and a second connector housing (8) including the cylindrical portion (82), and a lock protrusion (83) which is provided to protrude from an outer surface of the cylindrical portion (82) and which engages the lock arm (53) when a fitting length between the cylindrical portion (82) and the terminal storing portion (51) reaches a predetermined value,
wherein the first connector housing (5) is formed of a hydrolysis-resistant material.
[2] The connector (4) according to the aforementioned item [1], wherein a base end portion (531) of the lock arm (53) rising from the terminal storing portion (51) is formed into a smooth curved shape with which a bending load is difficult to be concentrated.
[3] The connector (4) according to the aforementioned item [2],
wherein the lock arm (53) includes a plate spring portion (532) having a flat plate shape extending in a fitting direction (X2) between the connector housings from a distal end of the base end portion (531), and a protrusion engagement portion (533) which has an engagement hole (533a) with which the lock protrusion (83) is engaged and which is provided in a distal end of the plate spring portion (532), and
wherein the protrusion engagement portion (533) is formed to be thicker than the plate spring portion (532).
The present application is based on a Japanese patent application (Patent Application No. 2014-072817) filed on Mar. 31, 2014, the contents of which are incorporated herein by reference.
In the connector according to the invention, the lock arm undergoing a bending load acts when the connector housings are connected to or disconnected from each other can be suppressed from being damaged due to degradation of the material even in long-term use under a high temperature high humid environment. Thus, the lock arm can be used satisfactorily for a long term.
Number | Date | Country | Kind |
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2014-072817 | Mar 2014 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2015/058632 | 3/20/2015 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2015/151889 | 10/8/2015 | WO | A |
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Number | Date | Country | |
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20170018874 A1 | Jan 2017 | US |