1. Field of the Invention
The present invention relates to an electrical connector assembly for electrically connecting an electronic package such as a central processing unit (CPU) with a circuit substrate such as a printed circuit board (PCB), and particularly to a land grid array connector assembly having a fastening device for securing the CPU therein.
2. Description of Prior Art
In use, the clip 64 is firstly oriented perpendicular to the frame 63, with the securing portions 641 movably disposed in the guiding grooves 65 close to the first walls 651. A central processing unit (CPU) 7 is attached on the socket 61, and a copper plate 8 which functions as a heat dissipation device is attached on the CPU 7. Then the clip 64 is rotated down to a horizontal position, with a pair of pressing arms and a pair of pressing pads of the clip 64 abutting the copper plate 8. The handle portion 622 of the lever 62 is rotated down, and the driving portion 621 of the lever 62 engages in the driving hook 644 of the clip 64. The driving portion 621 drives the driving hook 644 down until the clip 64 is in a final pressing position firmly pressing the copper plate 8 on the CPU 7. However, the handle portion 622 of the lever 62 occupies an extra space outside the frame 63 over the PCB 9. In contemporary miniaturized electronic devices such as notebook computers, this is increasingly regarded as efficient use of the valuable “real estate” of the PCB 9, and is becoming more and more undesirable and even not feasible.
In view of the above, a new LGA connector assembly that overcomes the above-mentioned disadvantages is desired.
Accordingly, an object of the present invention is to provide an electrical connector assembly such as a land grid array (LGA) connector assembly for electrically connecting an electronic package such as a central processing unit (CPU) with a circuit substrate such as a printed circuit board (PCB), whereby the LGA connector assembly has a fastening device for securely and reliably locating the CPU in the LGA connector assembly while the LGA connector occupies minimal space of the PCB.
To achieve the above-mentioned object, an LGA connector assembly in accordance with a preferred embodiment of the present invention is for electrically connecting a CPU with a PCB. The LGA connector assembly comprises a socket and a fastening device surrounding the socket. The fastening device comprises a frame, a metal clip pivotably mounted to a first end of the frame, and a cam actuator pivotably mounted to a second end of the frame. The clip incorporates a post at a free end thereof. The cam actuator comprises a cam defining a spiral groove receiving the post and a driver assembled to the cam. When the cam is driven, it drives the post downwardly, and simultaneously the clip moves slightly toward the second end of the frame. In addition, the driver at all times remains substantially within the confines of the main body of the frame. Thus, the LGA connector assembly efficient uses the estate of the PCB.
Other objects, advantages and novel features of the invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings, in which:
Reference will now be made to the drawings to describe the present invention in detail.
Referring to
The frame 2 comprises a low-profile inner peripheral wall 21 on a top thereof. The peripheral wall 21 cooperates with a main body of the frame 2 to define a receiving recess 211 therebetween. The socket is arranged at a bottom of the receiving recess 211. The CPU is attached on the socket, and a copper plate 5 is attached on the CPU. Thus the CPU and the copper plate 5 are received in the receiving recess 211.
The second end of the frame 2 has an extending portion 22 adjoining a middle thereof. A hook-shaped first lock 23 and a hook-shaped second lock 24 extend upwardly from respective opposite sides of the second end of the frame 2. A first supporting rack 221 is upwardly formed on the second end of the frame 2. A second supporting rack 222 is upwardly formed on the extending portion 22 of the frame 2, and is parallel to the first supporting rack 221. A receiving slot 223 is defined in the second end of the frame 2, between the first and second supporting racks 221, 222.
The clip 3 comprises a first end 31 pivotably mounted to the first end of the frame 2, an opposite second end 32 having an outer extending portion 321, and two spaced and parallel beams (not labeled) respectively interconnecting the first and second ends 31, 32. A plurality of symmetrically arranged pressing pads 33 depends perpendicularly from inner edges of the first and second ends 31, 32 and from the beams. A post, i.e., the engagement device, 3211 is formed at a free end of the extending portion 321. A gap 3212 is defined in the extending portion 321 between the post 3211 and the second end 32.
The cam actuator 4, i.e., the lever, comprises a cam 41, i.e., the pressing member, and a driver 42 for driving the cam 41. The cam 41 is partially received in the receiving slot 223 of the frame 2. A supporting pole sequentially passes through the first supporting rack 221, the cam 41 and the second supporting rack 222, thereby rotatably positioning the cam 41 on the frame 2. The supporting pole comprises a first supporting portion 411 supported on the first supporting rack 221, and a second supporting portion 412 supported on the second supporting rack 222. The first supporting portion 411 is cylindrical, and the second supporting portion 412 has a square cross-section. A spiral groove 413 is defined in the cam 41. The spiral groove 413 spans between a circumferential surface of the cam 41 and a center of the cam 41, and faces the clip 3. The driver 42 comprises a driving portion 421 fixed on the second supporting portion 412, a handle portion 423 for facilitating manual operation, and a connecting portion 422 interconnecting the driving portion 421 and the handle portion 423.
In use, the clip 3 is oriented perpendicular to the frame 2 in an open position. This enables the CPU and the copper plate 5 to be inserted into the receiving recess 211 of the frame 2 and then attached on the socket. The cam actuator 4 is oriented at an open position, in which the handle portion 423 of the driver 42 is locked by the first lock 23, and an outmost portion of the spiral groove 413 of the cam 41 is at a highest position (see
While a preferred embodiment in accordance with the present invention has been shown and described, equivalent modifications and changes known to persons skilled in the art according to the spirit of the present invention are considered within the scope of the present invention as defined in the appended claims.