1. Technical Field
The present disclosure relates to signal sources, and particularly to a signal source providing multiple types of signals.
2. Description of Related Art
An electronic device needs to pass an electromagnetic compatibility (EMC) test before it leaves the factory. A testing system executes the EMC test by applying horizontal polarity signals and vertical polarity signals. However, a signal source that executes the EMC test cannot simultaneously emit the horizontal polarity signals and the vertical polarity signals. Therefore, the electronic device needs to be tested twice, which affects efficiency of the EMC test.
Therefore, it is desirable to provide a means which can overcome the above-mentioned problem.
Many aspects of the embodiments can be better understood with references to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the embodiments.
Embodiments of the disclosure are described with reference to the drawings.
Referring to
The enclosure 10 is made of conductive material and employs a hermetically sealed structure to shield the power source 16 and the signal generator 18 from external interference. The enclosure 10 includes at least two outer surfaces 100 perpendicular to each other. In this embodiment, the enclosure 10 is a hollow rectangular metal chamber.
Each of the first antenna 12 and the second antenna 14 is an elongated rod and made of conductive material. An impedance of the first antenna 12 is equal to an impedance of the second antenna 14. The first antenna 12 and the second antenna 14 are set on the two outer surfaces 100 perpendicular to each other. The first antenna 12 and the second antenna 14 are also perpendicular to the outer surface 100 supporting them. In use, one of the first antenna 12 and the second antenna 14 is extended horizontally, parallel to the floor, the other is extended vertically, in a direction perpendicular to the floor. Thus, the first antenna 12 and the second antenna 14 can transmit both horizontal polarity signals and vertical polarity signals.
The power source 16 includes a charging circuit 160, a rechargeable battery 162, a switch 164, and a voltage stabilizing circuit 166. The charging circuit 160, the rechargeable battery 162, the switch 164, and the voltage stabilizing circuit 166 are connected in order, to form a power loop. The charging circuit 160 is connected to an external power source (not shown) to charge the rechargeable battery 162. The switch 164 includes a mechanical portion that is set on one of the outer surfaces 100 of the enclosure 10 to control the on-off state of the power loop, and then activate or close down the signal source 1. The voltage stabilizing circuit 166 stabilizes a power signal from the rechargeable battery 162 and transforms the power signal into a number of different specified voltages corresponding to different elements in the signal generator 18.
The signal generator 18 includes a crystal oscillating circuit 180, an amplifying circuit 181, a frequency filter 182, a first wave-shaping circuit 183, a frequency multiplicator 184, a second wave-shaping circuit 185, and a power splitter 186. The crystal oscillating circuit 180, the amplifying circuit 181, the frequency filter 182, the first wave-shaping circuit 183, the frequency multiplicator 184, the second wave-shaping circuit 185, and the power splitter 186 are connected in order. The voltage stabilizing circuit 166 provides specified and stabilized voltages to the crystal oscillating circuit 180, the amplifying circuit 181, the frequency filter 182, the first wave-shaping circuit 183, the frequency multiplicator 184, and the second wave-shaping circuit 185.
The crystal oscillating circuit 180 generates an oscillating signal having a predetermined frequency. The amplifying circuit 181 amplifies the oscillating signal generated by the crystal oscillating circuit 180. The frequency filter 182 filters out impulses and noise in the amplified oscillating signal. The first wave-shaping circuit 183 shapes the filtered oscillating signal, and then transmits the oscillating signal to the frequency multiplicator 184. The frequency multiplicator 184 outputs a frequency multiplication of the oscillating signal to form the comb-shaped signal. The second wave-shaping circuit 185 regulates the comb-shaped signal outputted from the frequency multiplicator 184. The power splitter 186 splits the regulated comb-shaped signal into the two sub-signals of equal power and transmits the sub-signals via the first antenna 12 and the second antenna 14.
The impedance matcher 19 is set on the outer surface 100 of the enclosure 10 to replace one of the first antenna 12 and the second antenna 14 when only one antenna is being utilized. An impedance of the impedance matcher 19 is the same as the impedance of the first antenna 12 and the second antenna 14. Thus, the impedance matcher 19 balances the overall impedance of the signal source 1. In this embodiment, the impedance matcher 19 is a circular block.
The signal source 1 integrates two antennas 12, 14 perpendicular to each other to simultaneously transmit horizontal polarity signals and vertical polarity signals. Therefore, test efficiency of the EMC test for the electronic device is improved.
While various exemplary and preferred embodiments have been described, it is to be understood that the present disclosure is not limited thereto. On the contrary, various modifications and similar arrangements (as would be apparent to those skilled in the art) are intended to also be covered. Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.
Number | Date | Country | Kind |
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2012102938489 | Aug 2012 | CN | national |