1. Technical Field
The present disclosure relates to a power supply test system for testing reliability of a power supply.
2. Description of Related Art
Computer power supplies are capable of rectifying alternating current into direct current. The reliability of a power supply is measured by comparing the input and output voltages of the power supplies. Burn in testing is an important test in determining the reliability of the power supply. A typical burn in test uses a test chamber to test a power supply under different temperatures. However, the typical test chamber uses thermal resistors to heat the power supply. The temperature increases slowly and the temperature control may not be precise.
Therefore there is a need for improvement in the art.
Many aspects of the embodiments can be better understood with reference 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. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
The disclosure is illustrated by way of example and not by way of limitation in the figures of the accompanying drawings in which like references indicate similar elements. It should be noted that references to “an” or “one” embodiment in this disclosure are not necessarily to the same embodiment, and such references mean “at least one”.
The refrigerating and heating module 400 includes a plurality of relay control units 410 and refrigerating and heating units 420. Each of the plurality of relay control units 410 includes a first winding unit M1, a second winding unit M2, a first switch unit K1, a second switch unit K2, a third switch unit K3, and a fourth switch unit K4. First terminals of each first winding unit M1 are electrically connected to the first control signal output terminals PA0, PA2, PA4, PA6 to receive the first control signal. Second terminals of each first winding unit M1 receive a first DC voltage. First terminals of the first switch units K1 and the second switch units K2 of the plurality of relay control units 410 are electrically connected to the power module 700 to receive a second DC voltage. First terminals of each first switch unit K1 are electrically connected to an anode of the second DC voltage. First terminals of each second switch unit K2 are electrically connected to a cathode of the second DC voltage. Second terminals of the first switch units K1 and the second switch units K2 of the plurality of relay control units 410 are electrically connected to the refrigerating and heating units 420.
First terminals of each second winding unit M2 are electrically connected to the second control signal output terminals PA1, PA3, PA5, PA7 to receive the second control signal. Second terminals of each second winding unit M2 receive the first DC voltage. First terminals of each third switch unit K3 are electrically connected to the cathode of the second DC voltage. First terminals of each fourth switch unit K4 are electrically connected to the anode of the second DC voltage. Second terminals of the third switch units K3 and the fourth switch units K4 of the plurality of relay control units 410 are electrically connected to the refrigerating and heating units 420. In one embodiment, the first DC voltage is +5V.
The decoding module 500 includes a plurality of registers U0-U3. Each of the plurality of registers U0-U3 includes two serial data input terminals a1, a2, a clock signal input terminal a3 and a plurality of digital signal output terminals b1-b8. The serial data input terminals a1, a2 of the register U0 are electrically connected to the serial data signal output terminal PB0 of the micro controller 310. The serial data input terminals a1, a2 of the register U1 are electrically connected to the digital signal output terminal b8 of the register U0. The serial data input terminals a1, a2 of the register U2 are electrically connected to the digital signal output terminal b8 of the register U1. The serial data input terminals a1, a2 of the register U3 are electrically connected to the digital signal output terminal b8 of the register U2. The clock signal input terminals a3 of the plurality of registers U0-U3 are electrically connected to the clock signal output terminal PB1 of the micro controller 310. The first terminal and the second terminal of the SPDT S10 are electrically connected to the first switch output terminal PB2 and the second switch output terminal PB3 of the micro controller 310. The third terminal of the SPDT S10 is electrically connected to the clock signal input terminals a3 of the plurality of registers U0-U3.
The display module 600 includes a plurality of eight-segment numeral tubes D0-D3. Each of the plurality of eight-segment numeral tubes D0-D3 includes a plurality of digital signal input terminals c1-c8. The plurality of digital signal input terminals c1-c8 of the plurality of eight-segment numeral tubes D0-D3 are electrically connected to the plurality of digital signal output terminals b1-b8 of the plurality of registers U0-U3.
The power module 700 includes a plurality of voltage decreasing circuits 710 and rectification circuits 720. Each of the plurality of voltage decreasing circuits 710 includes a transformer T. Each of the plurality of rectification circuits 720 includes four diodes electrically connected together end to end. Each of the plurality of voltage decreasing circuits 710 receives a 220V AC voltage signal and converts the 220V AC voltage signal to a 16V AC voltage signal. Each of the plurality of rectification circuits 720 receives the 16V AC voltage signal and converts the 16V AC voltage signal to a +16V second DC voltage. The +16V second DC voltage is provided to the refrigerating and heating units 420.
In a working state, the power supply 810 is put in the test chamber 800. The plurality of push buttons S0-S9 is pushed to input the predetermined temperature value in the micro controller 310. The plurality of push buttons S0-S9 represents numbers 0-9 respectively. The temperature detecting unit 200 detects the temperature signals in the test chamber 800, and transmits the temperature signals to the micro controller 310 via the temperature signal input terminal PC0. The micro controller 310 compares the value of the temperature signal with the predetermined temperature value. When the temperature detecting unit 200 detects the value of the temperature signal is less than the predetermined temperature value, the plurality of second control signal output terminals PA1, PA3, PA5, PA7 of the micro controller output low voltage level second control signals to the second winding units M2. The second winding units M2 are powered on to close the third switch units K3 and the fourth switch unit K4. The refrigerating and heating units 420 receive an inverted second DC voltage and generate heat.
The temperature in the test chamber 800 increases as the refrigerating and heating units 420 generate heat. When the temperature detecting unit 200 detects the value of the temperature signal is greater than the predetermined temperature value, the first control signal output terminals PA0, PA2, PA4, PA6 of the micro controller 310 output low voltage level first control signals to the first winding units M1. The first winding units M1 are powered on to close the first switch units K1 and the second switch units K2. The refrigerating and heating units 420 receive the second DC voltage and refrigerate in the test chamber 800 until the value of the temperature signal is equal to the predetermined temperature value. At least one of the first control signal output terminals PA0, PA2, PA4, PA6 and the second control signal output terminals PA1, PA3, PA5, PA7 of the micro controller 310 outputs a high voltage level control signal to the first winding unit M1 and the second winding unit M2. At least one of the first control signal output terminals PA0, PA2, PA4, PA6 and the second control signal output terminals PA1, PA3, PA5, PA7 is powered off to open the switch units K1-K4. The value of the temperature signal keeps the predetermined temperature value in the test chamber 800.
Even though numerous characteristics and advantages of the present disclosure have been set forth in the foregoing description, together with details of the structure and function of the disclosure, the disclosure is illustrative only, and changes may be made in detail, especially in the matters of shape, size, and arrangement of parts within the principles of the disclosure to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
| Number | Date | Country | Kind |
|---|---|---|---|
| 201210134153.6 | May 2012 | CN | national |