1. Field of the Invention
The invention relates to an electrical connector, and more particularly to a USB3.0 connector and the method of making thereof.
2. Description of the Related Art
USB (universal series bus) connectors have a functionality to transmit simultaneously both signals and power. Because the USB3.0 connectors can provide a transmission speed larger than that of USB2.0 connectors, they are increasingly replacing the USB2.0 connectors.
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The conventional method of making the USB3.0 connector 10 has the following disadvantages:
1) The plastic positioning block 14 is needed to space the first legs 124 apart from the second legs 134. In order to assemble the plastic positioning block 14 to the second legs 134, in steps 22 to 25, the second legs 134 have to extend rearwardly. Because the first terminal unit 12 is not well positioned, during assembly, the plastic positioning block 14 tends to press and cause the first terminal unit 12 to become twisted.
2) The need to use the plastic positioning block 14 increases the number of component parts of the connector 10, thereby increasing the manufacturing steps and cost.
3) The rear cover 157 merely improves an aesthetic effect of the USB3.0 connector 10. Because the rear cover 157 is directly formed on the shell top wall 152, the connector 10 provides no option to remove the rear cover 157 and to reduce costs.
4) Because no interlocking means is provided between the outer shell 15 and the insulative body 11 to prevent the outer shell 15 from escaping from the insulative body 11, the quality of the products is relatively low.
An object of the present invention is to provide a USB3.0 connector with a reduced number of component parts, which can be manufactured at a reduced cost and with an increased quality.
Another object of the present invention is to provide a method for making a USB3.0 connector in which the number of component parts and manufacturing steps are reduced and the production efficiency is increased.
According to one aspect of the invention, a USB3.0 connector comprises an insulative body, a plurality of first terminals, a plurality of second terminals and an outer shell covering the insulative body.
The insulative body includes a base that has a base upper wall, a base lower wall, two base sidewalls interconnecting the base upper and lower walls, a tongue plate projecting forwardly from a front side of the base, a clamp plate projecting forwardly from a bottom side of the base lower wall, and a rear recess that is formed in a rear part of the base and that is surrounded by the base upper and lower walls and the base sidewalls. The base lower wall has a rear end notched in a frontward direction to form a plurality of alternating shallow and deep notches. Each of the base sidewalls has a guide groove extending in a front-rear direction.
Each of the first terminals has a first contact plate fitted in a bottom side of the tongue plate, and a first leg bending downwardly from the first contact plate and extending through one of the deep notches.
Each of the second terminals has a second contact plate fitted in a top side of the tongue plate, and a second leg bending downwardly from the second contact plate and extending through one of the shallow notches.
The outer shell includes a shell top wall, a shell bottom wall, and two shell sidewalls. The shell top wall is longer than and extends beyond a rear end of the shell bottom wall. Each of the shell sidewalls has a guide tab engaging the guide groove of one of the base sidewalls.
According to another aspect of the invention, a method of making a USB 3.0 connector comprises the steps of:
preparing the insulative body and the first terminals;
fitting the first contact plates of the first terminals in the bottom side of the tongue plate, and extending the first legs respectively through the deep notches;
forming the second terminals and a connection plate which interconnects the second terminals;
assembling the second terminals with the tongue plate by pushing forwardly and fitting the second contact plates of the second terminals in the top side of the tongue plate, by extending the second legs of the second terminals through the shallow notches, respectively, and by engaging the second legs of two of the second terminals, which are respectively proximate to the base sidewalls, with the base lower wall, in such a manner that each of the two second terminals has the projecting outer edge abutting against an edge of the base lower wall proximate to the respective one of the shallow notches, and has the indented inner edge receiving and engaging an edge of the base lower wall proximate to the respective one of the shallow notches;
cutting off the connection plate of the second terminals;
preparing the outer shell; and
assembling the outer shell with the insulative body by moving forwardly and inserting the insulative body into an interior of the outer shell, wherein the guide tabs are guided into the respective guide grooves and are slid over the respective wedge-shaped protrusions, the engaging lug of the outer shell is inserted into the engaging slot of the base, the clamp plate of the base clamps the bottom side of the shell bottom wall, and the shell bottom wall contacts against the base.
Other features and advantages of the present invention will become apparent in the following detailed description of the preferred embodiment with reference to the accompanying drawings, of which:
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The first terminal unit 40 includes four first terminals 41. Each first terminal 41 has a first contact plate 411 extending in the front-rear direction (X) and fitted in a bottom side 321 of the tongue plate 32, and a first leg 412 bending downwardly from the first contact plate 411 and extending through a respective one of the deep notches 36.
The second terminal units 50 includes five second terminals 51. Each second terminal 51 has a second contact plate 511 extending in the front-rear direction (X) and fitted in a top side 322 of the tongue plate 32, and a second leg 512 bending downwardly from the second contact plate 511 and extending through one of the shallow notches 35. Two of the second terminals 51 are proximate to the base sidewalls 313, 314, respectively, and the second leg 512 each of the two the second terminals 51 has a transversely projecting outer edge 523, and an indented inner edge 524 opposite to the projecting outer edge 523. The projecting outer edge 523 abuts against the base lower wall 312 adjacent a respective one of the shallow notches 35. The indented inner edge 524 receives and engages an edge of the base lower wall 312 adjacent to the respective one of the shallow notches 35.
The first terminals 41 and the second terminals 51 are assembled to the insulative body 30 independently. By extending the first legs 412 through the respective deep notches 36 and by extending the second legs 512 through the respective shallow notches 35, the first and second legs 412, 512 are positioned to the base 31, and are prevented from moving in the directions (X) and (Y) and from contacting each other.
The outer shell 60 is made of metal and includes a shell top wall 62, a shell bottom wall 63, and two shell sidewalls 64, 65 that cooperate to confine an accommodation chamber 61 for receiving the insulative body 30. The shell top wall 62 is longer than and extends beyond a rear end of the shell bottom wall 63. Each of the shell sidewalls 64, 65 has a guide tab 66 engaging the guide groove 37 of one of the base sidewalls 313, 314 and a first positioning hole 67. Moreover, each of the shell sidewalls 64, 65 further has a stop plate 68 in front of the guide tab 66. The shell top wall 62 is formed with a pair of second positioning holes 69 proximate to the rear end. The outer shell 60 further includes an engaging lug 600 projecting rearwardly from the shell bottom wall 63.
When the insulative body 30 is to be inserted into the accommodation chamber 61 of the outer shell 60, the guide tabs 66 are slid over the respective protrusions 38 and are guided into the respective guide grooves 37. Continued forward movement of the insulative body 30 enables the engaging lug 600 to extend into the engaging slot 39 and the clamp plate 33 to clamp the shell bottom wall 63 of the outer shell 60. When the shell bottom wall 63 touches the base 31, assembly of the insulative body 30 and the outer shell 60 is completed. By interengagement between the two stop plates 68 and the two protrusions 38, and between the engaging lug 600 and the engaging slot 39, separation of the insulative body 30 and the outer shell 60 can be effectively prevented.
The rear cover 70 is made of metal and has a rear plate 71 covering the rear recess 34 of the base 31, a top plate 75 projecting forwardly from a top end of the rear plate 71, two outer clamp plates 72 bending forwardly and respectively from two opposite ends of the rear plate 71 and extending over outer sides of the shell sidewalls 64, 65, respectively, two inner clamp plates 73 bending forwardly and respectively from two opposite ends of the rear plate 71 and inserted between the base 31 and the outer shell 60, two first protrusions 74 respectively projecting from outer surfaces of the inner clamp plates 73 and engaging the first positioning holes 67, and two second protrusions 76 projecting downwardly from the top plate 75 and engaging the second positioning holes 69.
For assembly, the rear cover 70 is pushed forward and is fitted around a rear part of the outer shell 60. Accordingly, the top plate 75 extends over the upper side of the shell top wall 62, the two second protrusions 76 engage the respective second positioning holes 69, the outer clamp plates 74 clamp the outer faces of the respective shell sidewalls 74, the two inner clamp plates 73 are inserted between the base and the shell sidewalls 74 to place the two first protrusions 74 in engagement with the first positioning holes 67. The rear cover 70 is optional and may be dispensed with.
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The present invention provides the following advantages:
1) Due to the provision of the deep and shallow notches 36, 35 to space the first legs 412 apart from the second legs 512, the plastic positioning block 14 needed in the conventional USB3.0 connector 10 can be dispensed with, thereby reducing the number of assembling components and the number of the manufacturing steps, lowering the manufacturing costs, and improving the production of quality products. In addition, the first and second terminals 41, 51 may be assembled with the insulative body 30 conveniently using an automatic assembling machine.
2) With the use of the stop plates 68 to stop the two protrusions 38 and the use of the engaging lug 600 to engage the engaging slot 39, the coupling effect of the insulative body 30 and the outer shell 60 is greatly enhanced, and the outer shell 60 is thus prevented from escaping from the insulative body 30.
3) Since the rear cover 70 is an independent component, it can be an optional component, which may be dispensed with. Thus, the number of assembling components is further reduced.
While the present invention has been described in connection with what is considered the most practical and preferred embodiments, it is understood that this invention is not limited to the disclosed embodiments but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.
Number | Date | Country | Kind |
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100126607 | Jul 2011 | TW | national |
This application is a divisional of U.S. patent application Ser. No. 13/487,298 filed on Jun. 4, 2012, which claims priority of Taiwanese Application No. 100126607 filed on Jul. 27, 2011, all of which are incorporated herein by reference.
Number | Date | Country | |
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Parent | 13487298 | Jun 2012 | US |
Child | 14277430 | US |