The present invention relates to a field of crystal oscillators and, more particularly, to a surfaced mounted oven controlled crystal oscillator.
Quartz crystal oscillator has been used for several decades and played an important role in the electronics industry for its high frequency stability. Especially under a high development of the information technology industry, this quartz crystal oscillator is full of vitality much more. The quartz crystal oscillators served as a standard frequency source or a pulse signal source provide a frequency reference in telecommunications, satellite communications, Mobile Phone System, Global Positioning System, navigation, remote control, aerospace, high-speed computer, precise measuring instrument and consumable electronic products, which can not be replaced by other oscillators. The quartz crystal oscillators generally include non-temperature compensated crystal oscillator, temperature compensated crystal oscillator, voltage-controlled crystal oscillator, oven controlled crystal oscillator, and digital/μp compensated crystal oscillator. Therein the oven controlled crystal oscillator has the highest frequency stability and the highest precision, and the performances of aging rate, temperature stability, long-term stability, and short-term stability are excellent, therefore the oven controlled crystal oscillator is widely used in electronic equipments such as Global Positioning System, communications, measurement, telemetry and remote, spectrum and network analyzer.
A conventional oven controlled crystal oscillator commonly uses a double in-line package, and
For improving the production efficiency and decreasing the cost, the manufacturer of the oven controlled crystal oscillator improved the current oven controlled crystal oscillator with the in-line package. Referring to
Thus, there is a need for an improved surface mounted oven control crystal oscillator with high stability, simple manufacturing process and high-efficiency assembly to overcome the above drawbacks.
One aspect of the present invention is to provide a surface mounted oven controlled crystal oscillator with high stability, simple manufacturing process and high-efficiency assembly.
To achieve above objective, the present invention provides a surface mounted oven controlled crystal oscillator comprising a crystal oscillator shell, a crystal oscillation circuit, several functional pins, and a base plate, the crystal oscillation circuit being accommodated a cavity that is formed by the crystal oscillator shell and the base plated and electrically connecting with the functional pins, the functional pins drilling through the base plate from the cavity, and an insulating layer being formed between each functional pin and the base plate, and the surface mounted oven controlled crystal oscillator further comprises several pads formed at an outer surface of the base plate, the insulating layer is also formed between each pad and the base plate, and the functional pins are electrically connected with the corresponding pads respectively.
In comparison with the prior art, the functional pins of the surface mounted oven controlled crystal oscillator of the present invention drill through the base plate from the cavity to electrically connect with the pads. This oven controlled crystal oscillator is welded to the corresponding client product via the pads by using surface mounted technology. On one hand, a conversion printed circuit board is omitted, thereby increasing the stability of the oven controlled crystal oscillator, simplifying the manufacturing process and decreasing the manufacturing cost thereof; on the other hand, since the pads are connected with the functional pins directly, and then the oven controlled crystal oscillator is connected with the product via the pads, thereby avoiding faulty soldering on the functional pins or deflection on the oven controlled crystal oscillator during the wave soldering process of the client product and, in turn, improving the electric connection performance and the stability of the oven controlled crystal oscillator. Furthermore, the oven controlled crystal oscillator can use the surface mounted technology, which achieves mechanized batch production with high efficiency.
Preferably, the pad is formed by a portion of the functional pin that drills through the base plate. The pad and the functional pin is molded in one piece, thereby ensuring a good performance of electric connection of the oven controlled crystal oscillator, and improving the stability of the oven controlled crystal oscillator.
Preferably, the pad is formed by molding or punching the portion of the functional pin that drills through the base plate, thereby simplifying the manufacturing process and increasing the electric connection performance of the oven controlled crystal oscillator.
Preferably, the area of the pad is larger than the cross section area of the functional pin, thus the pad is hard to disengage.
Preferably, the functional pin has a protrusion portion formed at an inner surface of the base plate corresponding to the pad. With the design of the protrusion portion, the connection between the functional pin and the pad is much firm, thereby increasing the electric connection performance.
Preferably, the pad is circular, oval or polygonal.
Preferably, a height difference between the pad and the outer surface of the base plate is less than 2 mm.
This invention will become much clearer according to the following detailed description in conjunction with the accompanying drawings. These accompanying drawings are used for explaining the embodiments of the present invention.
The accompanying drawings facilitate an understanding of the various embodiments of this invention. In such drawings:
a is a front view of a conventional oven controlled crystal oscillator;
b is a bottom view of the oven controlled crystal oscillator shown in
a is a front view of another conventional oven controlled crystal oscillator;
b is a bottom view of the oven controlled crystal oscillator shown in
a is a front view of the surface mounted oven controlled crystal oscillator according to a first embodiment of the present invention;
b is a bottom view of the surface mounted oven controlled crystal oscillator shown in
c is an enlarged view of the functional pin and pad of the surface mounted oven controlled crystal oscillator shown in
a is a front view of the surface mounted oven controlled crystal oscillator according to a second embodiment of the present invention;
b is a bottom view of the surface mounted oven controlled crystal oscillator shown in
c is an enlarged view of the functional pin and pad of the surface mounted oven controlled crystal oscillator shown in
Various preferred embodiments of the invention will now be described with reference to the figures, wherein like reference numerals designate similar parts throughout the various views. As indicated above, the invention is directed to a surface mounted oven controlled crystal oscillator having pads, which has high stability, simple manufacturing process and achieves high-efficiency assembly.
a-3c show a surface mounted oven controlled crystal oscillator according to a first embodiment of the present invention. Referring to
Referring to
Concretely, referring to
Preferably, the height difference between the pad 34 and the outer surface of the base plate 33 is less than 2 mm.
a-4c show a surface mounted oven controlled crystal oscillator according to a second embodiment of the present invention. Referring to FIGS. 4a-4c, the surface mounted oven controlled crystal oscillator 4 includes a crystal oscillator shell 41, a crystal oscillation circuit (not shown), functional pins 42, a base plate 43, pads 44, and insulating layers 45. The differences compared to the first embodiment include the shape and configuration of the pads 44, and the shape and configuration of the insulating layers 45 of the surface mounted oven controlled crystal oscillator 4. Concretely, the four pads 44 are in a quadrangle shape, and one border of the quadrangle is aligned with a border of the base plate 43. The insulating layer 45 is divided into a first insulating layer 451 and a second insulating layer 452. The second insulating layer 452 is formed nearly the inner surface 432 of the base plate 43, and the first insulating layer 451 is fixedly connected with the second insulating layer 452. Similarly to function of the functional pin 32 in the first embodiment, the functional pin 32 includes a first pin 421, a protrusion portion 422 and a second pin 423. One end of the protrusion portion 422 is fixedly connected with the first pin 421, and the other end thereof is fixedly connected with one end of the second pin 423. The other end of the second pin 423 is connected with the pad 43 which is formed by punching the portion of the functional pin 42 drilling through the base plate 43. In the present embodiment, the second pin 423 and a portion of the protrusion portion 422 are embedded in the second insulating layer 452, and the whole protrusion portion 422 can be embedded in the second insulating layer 452 preferably. A portion of the pad 44 is embedded in the first insulating layer 451, and one end of the second pin 423 is fixedly connected with the center of the protrusion portion 422, the other end is fixedly connected with one border of the pad 44. The first insulating layer 451 covers other areas of the outer surface of the base plate 43, except for the four pads 44.
It should be noted that, the shape of the pad of the surface mounted oven controlled crystal oscillator of the present invention can be oval or other polygons depending on the actual demand, besides the circle and quadrangle mentioned in the above embodiments. Moreover, the amount of the pad is not limited to four; it can be increased or decreased depending on the actual demand. And the size of the pad is also depended on the actual demand of the client product. In addition, the size of the surface mounted oven controlled crystal oscillator of the present invention is also depended on the actual demand of the client product, which is familiar to one person ordinarily skilled in the art, and thus is omitted herefrom.
While the invention has been described in connection with what are presently considered to be the most practical and preferred embodiments, it is to be understood that the invention is not to be limited to the disclosed embodiments, but on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the invention.
Number | Date | Country | Kind |
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2009 1 0042381 | Sep 2009 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN2009/074615 | 10/26/2009 | WO | 00 | 7/13/2011 |
Publishing Document | Publishing Date | Country | Kind |
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WO2011/026277 | 3/10/2011 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
6229249 | Hatanaka et al. | May 2001 | B1 |
7023291 | Kato et al. | Apr 2006 | B2 |
7076870 | Hsieh | Jul 2006 | B2 |
7242258 | Hatanaka et al. | Jul 2007 | B2 |
7936114 | Numata et al. | May 2011 | B2 |
8020265 | Onitsuka et al. | Sep 2011 | B2 |
8032997 | Numata et al. | Oct 2011 | B2 |
8179022 | Murata | May 2012 | B2 |
8278567 | Nakamura et al. | Oct 2012 | B2 |
8278801 | Matsumoto | Oct 2012 | B2 |
20090205183 | Tomiyama et al. | Aug 2009 | A1 |
Number | Date | Country | |
---|---|---|---|
20120146735 A1 | Jun 2012 | US |