USPatent applicationPatented

Measurement circuit for capacitor

Granted 4 Jun 2013 · no office action yet

Life of the application

6 dated events
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Abstract

A measurement circuit includes a switch unit with a number of keys selectively pressed to output different resistance regulating signals. A resistance setting circuit receives the resistance regulating signals and connects different resistances to a voltage circuit and a current circuit. The voltage circuit outputs different voltages. The current voltage receives a voltage from the voltage circuit and outputs a current to a capacitor. A detecting circuit measures a temperature of the capacitor and outputs the temperature to the resistance setting circuit. The resistance setting circuit compares the received temperature with a preset temperature. If the received temperature is equal to or greater than the preset temperature, the resistance setting circuit outputs short-circuit information of the capacitor. If the received temperature is less than the preset temperature, the resistance setting circuit outputs normal information of the capacitor. A display unit displays the information of the capacitor.

Description

4 parts
›BACKGROUND

1. Field of the Invention

The present disclosure relates to measurement circuits, and particularly to a measurement circuit for measuring short-circuit of a capacitor.

2. Description of Related Art

At present, capacitors as energy storage, filtering, and decoupling components are widely used. Thus, capacitors are indispensable electronic components of electronic devices. However, during testing of the electronic devices, due to human or design errors, some of the capacitors may short-circuit. A way of determining which capacitors were short-circuited is to remove the capacitors, and then test the removed capacitors, however the leads of some of the removed capacitors may be damaged during removal and some of the good capacitors cannot be reused. Therefore, it is wasteful and costly.

›BRIEF DESCRIPTION OF THE DRAWINGS

Many aspects of the embodiments can be better understood with reference to the following drawing. The components in the drawing are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present embodiments. Moreover, in the drawing, like reference numerals designate corresponding parts throughout the several views.

FIG. 1 to FIG. 4 are circuit diagrams of a measurement circuit for measuring short-circuit of a capacitor in accordance with an exemplary embodiment of the present disclosure.

›DETAILED DESCRIPTION · 1 of 2

The disclosure, including the drawings, is illustrated by way of example and not by limitation. 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.

Referring to FIG. 1 to FIG. 4 , a measurement circuit 100 is configured to measure short-circuit of a capacitor 200 . The measurement circuit 100 in accordance with an exemplary embodiment includes a switch unit 110 , a resistance setting circuit 120 , a voltage circuit 130 , a current circuit 140 , a detecting circuit 150 , and a display unit 160 . The switch unit 110 is configured to output resistance regulating signals to the resistance setting circuit 120 . The resistance setting circuit 120 is configured to connect different resistances to the voltage circuit 130 and the current circuit 140 according to the resistance regulating signals received from the switch unit 110 . The voltage circuit 130 is configured to output different voltages to the current circuit 140 according to the connected resistances. The current circuit 140 is configured to receive the voltages from the voltage circuit 130 and output current to the capacitor 200 according to the voltage from the voltage circuit 130 . The detecting circuit 150 is configured to measure a temperature of the capacitor 200 and output the temperature to the resistance setting circuit 120 . The resistance setting circuit 120 compares the received temperature with a preset temperature, to determine whether the capacitor 200 is short-circuited. The display unit 160 displays the information of the capacitor 200 .

The resistance setting circuit 120 includes a microcontroller U 1 , a digital regulation resistance U 2 , a resistor R 1 , capacitors C 1 -C 5 , and a crystal oscillator X 1 . A voltage pin VDD of the microcontroller U 1 is connected to a power source 5V and also grounded through the resistor R 1 and the capacitor C 2 connected in series. A voltage pin MP of the microcontroller U 1 is connected to a node between the resistor R 1 and the capacitor C 2 . The capacitor C 1 is connected between the power source 5V and ground. A clock pin OCS 1 of the microcontroller U 1 is grounded through the capacitor C 3 . A clock pin OCS 2 of the microcontroller U 1 is grounded through the capacitor C 4 . The crystal oscillator X 1 is connected between the clock pins OCS 1 and OCS 2 of the microcontroller U 1 . Output pins RC 0 -RC 3 of the microcontroller U 1 are respectively connected to input pins A 0 -A 3 of the digital regulation resistance U 2 . An output pin RA 4 of the microcontroller U 1 is connected to a clock pin SCL of the digital regulation resistance U 2 . An output pin RA 5 of the microcontroller U 1 is connected to a data pin SDA of the digital regulation resistance U 2 . A voltage pin VCC of the digital regulation resistance U 2 is connected to the power source 5V and also grounded through the capacitor C 5 . Output pins VW 1 and VL 1 of the digital regulation resistance U 2 are connected to the voltage circuit 130 . Output pins VW 0 and VL 0 of the digital regulation resistance U 2 are connected to the current circuit 140 . Output pins RB 0 -RB 3 of the microcontroller U 1 are connected to the display unit 160 . In one embodiment, the microcontroller U 1 is a PIC16F73 microcontroller, and the digital regulation resistance U 2 is an X9241 digital regulation resistance.

The voltage circuit 130 includes a converting chip U 3 , capacitors C 6 -C 22 , inductances L 1 and L 2 , a voltage output terminal Vout, and resistors R 2 -R 8 . An input pin Vin of the converting chip U 3 is connected to the power source 5V through the inductance L 2 . The capacitors C 12 -C 17 are connected in parallel between the input pin Vin of the converting chip U 3 and ground. An input/output (I/O) pin Boot of the converting chip U 3 is connected to an I/O pin SW of the converting chip U 3 through the capacitor C 11 . The I/O pin SW of the converting chip U 3 is also connected to the voltage output terminal Vout through the inductance L 1 . The capacitors C 18 -C 22 are connected in parallel between the voltage output terminal Vout and ground. An I/O pin SE of the converting chip U 3 is connected to the power source 5V through the resistor R 2 . An I/O pin FB of the converting chip U 3 is connected to a node between the inductance L 1 and the capacitor C 18 through the resistor R 3 and the capacitor C 6 connected in series. The resistor R 4 is connected in parallel to the resistor R 3 and the capacitor C 6 connected in series. A first terminal of the resistor R 6 is connected to a node between the resistor R 3 and the resistor R 4 , and a second terminal of the resistor R 6 is grounded. An I/O pin COMP of the converting chip U 3 is connected to a node between the resistors R 4 and R 6 through the capacitor C 7 . The capacitor C 7 is connected in parallel to the resistor R 5 and the capacitor C 8 are connected in series. An I/O pin Rt of the converting chip U 3 is grounded through the resistor R 7 . An I/O pin SS of the converting chip U 3 is grounded through the capacitor C 9 . An I/O pin OCset of the converting chip U 3 is connected to the I/O pin SW of the converting chip U 3 through the resistor R 8 . A voltage pin VCC of the converting chip U 3 is connected to the power source 5V and also grounded through the capacitor C 10 . Ground pins GND 1 , GND 2 , and PGND of the converting chip U 3 are grounded. The output pin VW 1 of the digital regulating resistance U 2 is connected to a node between the inductance L 1 and the capacitor C 18 . The output pin VL 1 of the digital regulation resistance U 2 is connected to a node between the resistors R 5 and R 6 . In one embodiment, the converting chip U 3 is an IR3840WMTRPBF converting chip.

The current circuit 140 includes a current driving chip U 4 , a light emitting diode (LED) D 1 , and capacitors C 23 and C 24 . A control pin REXT of the current driving chip U 4 is connected to the output pin VL 0 of the digital regulation resistance U 2 . An enable pin EN of the current driving chip U 4 is connected to an output pin RB 4 of the microcontroller U 1 . An output pin OUT of the current driving chip U 4 is connected to a first end of the capacitor 200 . A second end of the capacitor 200 is connected to a cathode of the LED D 1 . An anode of the LED D 1 is connected to the voltage output terminal Vout and the output pin VW 0 of the digital regulation resistance U 2 . The capacitors C 23 and C 24 are connected in parallel between the voltage output terminal Vout and ground. In one embodiment, the current driving chip U 4 is a DD311 current driving chip.

›DETAILED DESCRIPTION · 2 of 2

The detecting circuit 150 includes a sensor U 5 and capacitors C 25 and C 26 . A select pin CS, an input pin SO, and a clock pin SCK of the sensor U 5 are respectively connected to the output pins RC 6 , RC 4 , and RC 5 of the microcontroller U 1 . Detecting pins T+ and T− of the sensor U 5 are respectively connected to first and second ends of the capacitor 200 . A voltage pin VCC of the sensor U 5 is connected to the power source 5V. The capacitors C 25 and C 26 are connected in parallel between the voltage pin VCC of the sensor U 5 and ground. A ground pin GND of the sensor U 5 is grounded. In one embodiment, the sensor U 5 is an MAX6675 sensor.

The switch unit 110 includes a plurality of keys, such as keys K 1 -K 12 , and resistors R 9 -R 11 . The keys K 1 -K 12 are arranged in a 4*3 matrix. The keys K 1 -K 8 are configured to output resistance regulating signals to the microcontroller U 1 . The keys K 10 -K 12 are configured to be used to setting functions, such as “enter”, “delete”, and “start”. The key K 9 is inactive. The resistance setting circuit 120 receives the resistance regulating signals when the key K 10 is pressed. The key K 11 can be pressed to cancel operation after the keys K 1 -K 8 are pressed. The switch unit 110 can be started when the key K 12 is pressed.

The resistors R 9 -R 11 are respectively connected between input pins RB 5 -RB 7 of the microcontroller U 1 and the power source 5V. First terminals of the keys K 1 -K 3 are connected to an input pin RA 0 of the microcontroller U 1 . Second terminals of the key K 1 -K 3 are respectively connected to the input pins RB 5 , RB 6 , and RB 7 of the microcontroller U 1 . First terminals of the keys K 4 -K 6 are connected to an input pin RA 1 of the microcontroller U 1 . Second terminals of the key K 4 -K 6 are respectively connected to the input pins RB 5 , RB 6 , and RB 7 of the microcontroller U 1 . First terminals of the keys K 7 -K 9 are connected to an input pin RA 2 of the microcontroller U 1 . Second terminals of the key K 7 -K 9 are respectively connected to the input pins RB 5 , RB 6 , and RB 7 of the microcontroller U 1 . First terminals of the keys K 10 -K 12 are connected to an input pin RA 3 of the microcontroller U 1 . Second terminals of the keys K 10 -K 12 are respectively connected to the input terminals RB 5 , RB 6 , and RB 7 of the microcontroller U 1 .

In use, the switch unit 110 is started when the key K 12 is pressed, and then the keys K 1 -K 8 are selectively pressed, to provide an eight-bit binary signal to the microcontroller U 1 . For example, if a voltage of the capacitor 200 is set with 1.5 volt (V), “11110000” is input to the microcontroller U 1 when the keys K 1 -K 4 are pressed and the keys K 5 -K 8 are not pressed. The microcontroller U 1 receives the signal “11110000” through pressing the key K 10 . The microcontroller U 1 controls the digital regulation resistance U 2 to connect a resistance to the converting chip U 3 through the output pins VW 1 and VL 1 of the digital regulation resistance U 2 . The converting chip U 3 converts a 5V to a 1.5V required by the capacitor 200 according to the connected resistance by the digital regulation resistance U 2 , and provides the 1.5V to the current circuit 140 . The microcontroller U 1 outputs an enable signal to the enable pin EN of the current driving chip U 4 to make the current driving chip U 4 work, and controls the digital regulation resistance U 2 to connect a resistance to the current circuit 140 . The output pin OUT of the current driving chip U 4 outputs a high level signal to the first end of the capacitor 200 . The voltage output terminal Vout outputs a high level signal to the second end of the capacitor 200 through the LED D 1 . If the capacitor 200 is short-circuited, the LED D 1 is lit. At the same time, the sensor U 5 measures a temperature of the capacitor 200 and outputs the temperature to the microcontroller U 1 . The microcontroller U 1 compares the received temperature with a preset temperature, if the received temperature is equal to or greater than the preset temperature, the microcontroller U 1 controls the display unit 160 to display a short-circuit information of the capacitor 200 . If the received temperature is less than the preset temperature, the microcontroller U 1 controls the display unit 160 to display a normal information of the capacitor 200 . When a voltage of the capacitor 200 is changed, the resistance regulating signals are changed by selectively pressing the keys K 1 -K 8 , to make the microcontroller U 1 control the digital regulation resistance U 2 to connect other resistances to the voltage circuit 130 through the output pins VW 1 and VL 1 , to make the converting chip U 3 convert the 5V to a voltage required by the capacitor 200 , the theory is same as above.

The measurement circuit 100 can automatically connect different resistances to the voltage circuit 130 , to make the voltage circuit 130 output different voltages according to a requirement of the capacitor 200 , and the measurement circuit 100 can also connect different resistances to the current circuit 140 , to control the current circuit 140 to output current to the capacitor 200 . The detecting circuit 150 measures a temperature of the capacitor 200 and outputs the temperature to the microcontroller U 1 . The microcontroller U 1 compares the received temperature with a preset temperature and controls the display unit 160 to display a result. The measurement circuit 100 is simple and time-saving.

It is to be understood, however, that even though numerous characteristics and advantages of the disclosure have been set forth in the foregoing description, together with details of the structure and function of the invention, the disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.

Claims as granted

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Classifications

4 codes
IPC · International Patent Classification
Section G — Physics
  • G01R31/50
  • G01R31/12
USPC · US Patent Classification
324/548324/685

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File wrapper

⤢ drag to zoomJan 2011Apr 2011Jul 2011Oct 2011Jan 2012Apr 2012Jul 2012Oct 2012Jan 2013Apr 2013Jul 2013USPTOApplicantNotice of allowance
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Pendency
2.4 y
887 days filing → grant
Office actions
0
none on record
Examiner
Vincent Q Nguyen
art unit 2858 · TC 2800
Citations: 1 back · 0 forward

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