1. Field of the Invention
The invention relates to a connector having a sealing ring.
2. Description of the Related Art
Patent document 1 discloses a connector for supplying electric power to devices, such as a motor, of an electric car. The motor is accommodated inside a case made of a metal. The connector has a device-side connector with a housing mounted in a mounting hole that horizontally penetrates the case and a harness-side connector with a housing mounted on terminals of electric wires. The housing of the harness-side connector has a tubular fit-on portion that is fit in a tubular hood of the device-side housing.
A sealing ring is mounted in an annular holding groove formed on the peripheral surface of the fit-on tubular portion of the harness-side connector. The sealing ring is comparatively flexible and annular, and therefore is apt to deviate and rotate. Accordingly, a rotation-stopping groove is formed in the peripheral surface of the fit-on tubular portion of the harness-side connector and extends continuously from the annular holding groove in a direction orthogonal to the annular holding groove. A rotation-stopping projection is formed on the sealing ring and is fit into the rotation-stopping groove to prevent the sealing ring from dislocating and rotating.
The bottom surfaces of the annular holding groove and the rotation-stopping groove of the housing of the above-described conventional connector have an equal depth, have no irregularities formed thereon, and are continuous with each other. Similarly, there are no radial steps or irregularities where the rotation-stopping projection projects continuously from the sealing ring.
A comparatively large force can be applied to the sealing ring as a result of inadvertent touching by an operator when handling a wire harness where the above-described connector has been mounted. This force can be applied in a direction that causes the rotation-stopping projection to float from the rotation-stopping groove, and hence the sealing ring may rotate along the annular holding groove.
The invention has been made in view of the above-described situation. Therefore it is an object of the invention to provide a connector in which a sealing ring will not rotate inadvertently on a fit-on tubular portion.
The invention relates to a connector with a housing that has a fit-on tubular portion that can be fit in a tubular hood of a mating connector. Terminal fittings are fixed to ends of electric wires and are held by the housing. The fit-on tubular portion has an annular holding groove and a sealing ring is mounted on the annular holding groove. The sealing ring is dimensioned to seal a gap between the peripheral surface of the fit-on tubular portion and the inner peripheral surface of the tubular hood. Engaging grooves are formed in the peripheral surface of the fit-on tubular portion and extend continuously from the annular holding groove in a direction to intersect the annular holding groove. The engaging grooves subside deeper than a bottom surface of the annular holding groove. Rotation-stopping projections project from the sealing ring and extend along a direction in which the engaging grooves extend. Each rotation-stopping projection has a distal end with an engaging claw configured for fitting on a bottom of one of the engaging grooves.
The above-described annular holding groove and the engaging groove are formed in the peripheral surface of the fit-on tubular portion. However, the engaging groove is deeper than the annular holding groove. The rotation-stopping projection projects continuously from the sealing ring and the engaging claw is formed continuously with the distal end of the rotation-stopping projection. The sealing ring is mounted to the annular holding groove so that the engaging claw engages the relatively deep engaging groove. A force may be applied to the sealing ring in a direction along the annular holding groove. However, the engaging claw does not disengage easily from the engaging groove and securely holds the sealing ring in the annular holding groove.
The fit-on tubular portion preferably is oblong in a section crossing an axis thereof. Two rotation-stopping projections preferably are formed on longitudinal straight portions of the oblong section of the fit-on tubular portion.
The rotation-stopping projection conceivably could be formed at a circular-arc portion of the oblong section of the fit-on tubular portion. However, in this situation, a force inadvertently applied to the sealing ring would be liable to cause the circular-arc portion of the sealing ring to float from the annular holding groove and similarly would be liable to cause the rotation-stopping projection to float from the engaging groove. However, the rotation-stopping projection preferably is formed on the longitudinal straight portions of the oblong section of the fit-on tubular portion. Accordingly, the sealing ring is less likely to float from the annular holding groove when a force is applied to the sealing ring. Therefore, the rotation-stopping projection sufficiently displays its rotation-stopping function.
The rotation-stopping projections are formed as a pair on each of the longitudinal straight portions of the oblong section of the fit-on tubular portion. Therefore, a force applied to the sealing ring is received almost equally by the rotation-stopping projections to securely prevent the sealing ring from dislocating from the annular holding groove.
As described herein the invention securely stops the sealing ring from being rotated.
A connector in accordance with the invention is identified by the numeral 10 in
Fit-on sides of both housings 20, 60 are set as the front side of each member. The devices are accommodated inside a case C made of a metal and having a shielding function. A mounting hole H horizontally penetrates through the case C.
The device-side housing 60 has an electric wire-side projection 65 with a long tubular hood 66. An electric wire-side connection portion 67 is formed at a side of each bus bar 61 opposite the device-side connection portion 63 of the bus bar 61 and projects into the long tubular hood 66.
A connector-mounting plate 70 is formed by aluminum die casting and is fixed to a periphery of the device-side housing 60 with a screw, as shown in
The electric wire-side housing 20 is made of synthetic resin and accommodates the three electric wire-side terminals 21 fixed to ends of electric wires 23, as shown in
An electric wire-side shielding shell 30 is mounted on the electric wire-side housing 20 and includes a press steel plate that covers the electric wire-side housing 20, as shown in
As shown in
Two engaging grooves 28 are formed continuously with the annular holding groove 26 on each of vertically opposed flat surfaces (see
As shown in
An engaging claw 42 is formed at a distal end of each rotation-stopping projection 41 by projecting the engaging claw 42 toward the inner peripheral side of the sealing ring 40. The engaging claw 42 is prism-shaped and can be fitted on a bottom of the engaging groove 28. The thickness (dimension in a direction vertical to the bottom surface of the annular holding groove 26) of the rotation-stopping projection 41 including the engaging claw 42 is set to, for example, 2.5 mm.
As shown in
In the above-described construction, the engaging claw 42 is engaged by the engaging groove 28. Therefore even though a force is inadvertently applied to the sealing ring 40 in a direction along the annular holding groove 26, the rotation-stopping projection 41 including the engaging claw 42 remains inside the engaging groove 28, and the sealing ring 40 continuous with the rotation-stopping projection 41 is fixed, with the sealing ring 40 being fitted in the annular holding groove 26. Thereby it is possible to prevent the sealing ring 40 from rotating along the annular holding groove 26.
Let it be supposed that the rotation-stopping projection 41 is formed at a circular-arc portion of the sealing ring 40. When a force is inadvertently applied to the sealing ring 40, at the circular-arc portion of the sealing ring 40, the force is applied to the sealing ring 40 and the rotation-stopping projection 41 outwardly from the center of the circular-arc portion. Therefore there is a possibility that the rotation-stopping projection 41 easily floats from the engaging groove 28 and separates therefrom.
The rotation-stopping projections 41 are formed on the longitudinal straight portions of the oblong section of the fit-on tubular portion 24. Therefore, the rotation-stopping projections 41 contact the side surface of the engaging grooves 28 and remain in the engaging grooves 28 if a force is applied to the sealing ring 40. In contrast, the sealing ring 40 would be likely to rotate along the annular holding groove 26 if the rotation-stopping projections 41 were formed on the circular-arc portion of the sealing ring 40.
Further, two rotation-stopping projections 41 are formed on each longitudinal straight portion of the oblong section of the fit-on tubular portion 24. Therefore, a force applied to the sealing ring 40 is received almost equally by the rotation-stopping projections 41 for further preventing the sealing ring 40 from rotating along the annular holding groove 26.
The invention is not limited to the embodiments described above with reference to the drawings. For example, the following embodiments are also included in the technical scope of the present invention.
Although the rotation-stopping projection 41 is formed at four positions in the above-described embodiment, the present invention is not limited to this form. The rotation-stopping projection may be formed at one position or at odd positions.
Although the engaging grooves 28 are formed by extending them rearward along the direction orthogonal to the annular holding groove 26 in the above-described embodiment, the present invention is not limited to this form. It is possible to form the engaging grooves 28 by extending them forward along a direction in which the engaging grooves 28 intersect with the annular holding groove 26 or form the engaging grooves 28 by extending them forward and rearward along the direction in which the engaging grooves 28 intersect with the annular holding groove 26.
The rotation-stopping projections 41 may project forward and rearward along a direction in which the rotation-stopping projections 41 intersect the sealing ring 40.
Number | Date | Country | Kind |
---|---|---|---|
2009-094930 | Apr 2009 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
5158391 | Fujitani et al. | Oct 1992 | A |
6953357 | Fukushima et al. | Oct 2005 | B2 |
7011539 | Nagy et al. | Mar 2006 | B1 |
7329145 | Yagome et al. | Feb 2008 | B2 |
7572150 | Matsuoka | Aug 2009 | B2 |
Number | Date | Country | |
---|---|---|---|
20100261363 A1 | Oct 2010 | US |