The present invention relates generally to an electrical contact, and more particularly to the electrical contact with structures meeting impedance requirements. This application relates to two other copending applications with Ser. Nos. 16/355,857 and 16/357,283 both filed Mar. 18, 2019.
U.S. Pat. No. 8,454,373 discloses en electrical contact of an electrical connector for use with a CPU (Central Processing Unit). The contact includes two juxtaposed and mutually angled parts, of which one has the resilient upwardly extending contacting section and the other has the stiff downwardly extending tail section. The feature of such patent is to provide the barbed structure on two lateral outer sides of the these two parts, respectively, for enhancing the retention force thereof compared with the earlier prior art having the barbed structure only on the part having the tail section. Anyhow, some unwelcomed deviation away from the regulated 85+/−15Ω of the contact occurs due to the positions and the dimensions of the contacting section and the tail section disadvantageously. Understandably, the wider the spring arm is, the stiffer the spring arm is that may be unwelcomed; in opposite, the wider the spring is, the lower the impedance of the spring arm is that may be welcomed. Therefore, it is also required to get a balance between the resiliency of the spring arm with the contacting section at the free end thereof and the desired lower impedance thereof during design the configuration of the spring arm and its associated contacting section thereof.
An improvement upon the spring arm and the associated contacting section at the free end thereof, corresponding to the two mutually angled parts, is desired.
An object of the invention is to provide an electrical connector with an insulative housing having opposite top and bottom faces thereof, and therein a plurality of passageways each extending through both the opposite top and bottom faces in the vertical direction. A plurality of contact are received within the corresponding passageways, respectively. Each contact has juxtaposed first body and second body perpendicular to each other via a linking section connected therebetween viewed in the vertical direction. A spring arm extends upwardly from the first body and includes a plate/base section adjacent to the first body, a narrow/curved connecting/middle section, and an enlarged bulged contacting section at a free end thereof. The arrangement of the contacts is to have the neighboring contacts closer to each other either in a front-to-back direction or a transverse direction perpendicular to the front-to-back direction during operation for increasing mutual capacitance effect to lower the impedance.
The electrical connector 100 connects the electronic package 200 to the printed circuit board 300. The connector 100 includes an insulative housing 10 with a plurality of passageways 11 extending therethrough to receive the corresponding contacts 20, respectively. The connector 100 further includes a metallic stiffener 30 surrounding the housing 10, and the load plate 40 and the lever 50 respectively pivotally mounted to two opposite ends of the stiffener 101 wherein the lever 50 is used to fasten the load plate 40 in position. Notably, the housing 10 defines a front-to-back/first direction Y and a transverse/second direction X perpendicular to each other and commonly perpendicular to the vertical direction Z. In this embodiment, the load plate 40 and the lever 50 are located at opposite ends of the stiffener 30 in the front-to-back direction. Alternately, such arrangement made along the transverse direction or even in an oblique manner with respective to those directions is feasible.
The housing 10 forms opposite top face and bottom face. A plurality of standoffs 12 are formed on the top face and respectively located by the corresponding passageways 11. The contacts 20 are arranged in matrix along the front-to-back direction Y and the transverse direction X. Each contact 20 includes a retaining part received within the corresponding passageway 11, a soldering tail 22 around a bottom portion for mounting to the printed circuit board 300 via a solder ball (not labeled), and a contacting section 23 around a top portion for contacting the electronic package 200. The retaining part 21 includes a first body 211 and a second body 212 angled with each other. In this embodiment, the angle between the first body 211 and the second body 212 is right angle. The first body 211 and the second body 212 include barbed structures 210 on corresponding lateral outer edges for engagement with the passageway. A linking section 213 is connected between the first body 211 and the second body 212. The soldering tail 22 is connected to a bottom portion of the second body 212.
The contact 20 further includes a plate/base section 24 extending upwardly from the top of the first body 211 in an oblique manner, and a curved/narrow connecting/middle section 25 linked between the enlarged/widened bugled contacting section 23 and the plate section 24. Understandably, all the plate 24, the connecting section 25 and the contacting section 23 commonly form a spring arm. In this embodiment, the connecting section 25 is originally configured to extend along the centerline of the spring arm. A notch 26 is formed in one side of the connecting section 25 for avoiding interference with the standoff 12 located around another passageway 11 in front of the contact 20. Generally speaking, because of the second body 212, the asymmetrically arranged connecting section 25 still functions well during deflection mechanically. In addition, because of asymmetrical arrangement of the connecting section 25 derived from the sided notch 26, a tapered structure 261 as shown in
As shown in
The invention is to increase the capacitance effect between the neighboring contacts 20 so as to lower the impedance thereof. In this embodiment, the plate section 24 and the contacting section 23 are specifically widened so as to enhance capacitance effect between/among the neighboring contacts 20. Anyhow, as mentioned earlier, the dimension increment of the spring arm may improperly increase its own rigidity so as not to meet the required resiliency thereof.
As shown in
The standoffs 12 are also arranged in matrix respectively corresponding to the contacts 20 so as to separate the plate sections 24 of the contacts from one another. As shown in
As shown in
It is also noted, when the contacting section 23 is downwardly pressed by the electronic package 200, the contacting section 23 of the rear contact 20a is downwardly moved and reaches a lower position which is offset, in the front-to-back direction Y, from the standoff 12b around the passageway 11 receiving the front contact 20b, even though such a contacting section 23 and the standoff 12b are partially aligned with each other in the front-to-tack direction Y. Simultaneously, the connecting section 25 of the rear contact 20a reaches a lower position which is offset, in the transverse direction, from such a standoff 12b in the transverse direction even though such a connecting section 25 and such a standoff 12b are aligned with each other in the transverse direction X. As mentioned before, the notch 26a in the connecting section 25 of the rear contact 20a is to receive the corresponding standoff 12b of the front contact 20b, and the standoff 12 is used to upwardly abut against the electronic package 200 for preventing excessive deflection of the contact 20. As shown in
The invention includes several features and advantages. The widened plate section 24 and the relatively widened contacting section 23, compared with the narrow connecting section 25, may provide the superior capacitance effect with the neighboring contacts. The widened contacting section 23 of the rear contact 20 is located between with the tiny distance S1 and aligned, in the transverse direction X, with the pair of plate sections 24 of the neighboring contacts 20 of the front row may enhance the capacitance effect therebetween. The widened contacting section 23 of the rear contact 20 is closely located, with a tiny distance S2, behind the plate section 24 of another neighboring contact 20 which is aligned with the rear contact in the front-to-back direction Y, thus enhancing the capacitance effect. The standoffs 12 are fully offset from the enlarged/widened contacting section 23 and the narrowed connecting section 25 of the neighboring contact 20 so as to allow the relatively dense arrangement of the contacts in matrix. In this embodiment, the standoff 12 is to separate the sprig arm of the contact received in the passageway 11 in the rear row from the plate section of the contact received in the neighboring passageway in the front row.
Number | Date | Country | Kind |
---|---|---|---|
2018 1 0225930 | Mar 2018 | CN | national |
Number | Name | Date | Kind |
---|---|---|---|
6164978 | McHugh | Dec 2000 | A |
6179624 | McHugh et al. | Jan 2001 | B1 |
6955572 | Howell | Oct 2005 | B1 |
10084252 | Ju | Sep 2018 | B1 |
20060040518 | Ma | Feb 2006 | A1 |
20080160841 | Polnyi | Jul 2008 | A1 |
20100015861 | Zhang | Jan 2010 | A1 |
20110014816 | Fan | Jan 2011 | A1 |
20120028502 | Yeh | Feb 2012 | A1 |
20120202384 | Liaw | Aug 2012 | A1 |
20130237066 | Yeh | Sep 2013 | A1 |
20140134853 | Chang | May 2014 | A1 |
20140154918 | Chang | Jun 2014 | A1 |
20190288431 | Hwang | Sep 2019 | A1 |
20190288432 | Cheng | Sep 2019 | A1 |
20190288454 | Hwang | Sep 2019 | A1 |
Number | Date | Country |
---|---|---|
2706906 | Jun 2005 | CN |
2916984 | Jun 2007 | CN |
Number | Date | Country | |
---|---|---|---|
20190288432 A1 | Sep 2019 | US |