DETECTION DEVICE
20170366176 · 2017-12-21
Assignee
Inventors
- Jiangtao ZHU (New Taipei City, TW)
- Yongqiang LI (New Taipei City, TW)
- Lei YANG (New Taipei City, TW)
- Shaobo PENG (New Taipei City, TW)
- Jinchao LI (New Taipei City, TW)
- Meijiao LIANG (New Taipei City, TW)
Cpc classification
H03B5/20
ELECTRICITY
G01R31/14
PHYSICS
G01R31/67
PHYSICS
International classification
H03B5/20
ELECTRICITY
G01R31/14
PHYSICS
Abstract
A detection device has a detecting port, a leakage port, an oscillation circuit and a detection circuit. The detecting port is used for pluggably coupled to an object. The leakage port is electrically coupled to a ground loop. The oscillation circuit is respectively coupled to the detecting port and the leakage port, and used for generating an oscillation signal. When the detecting port is coupled to the object, electrons on the object are transferred to the leakage port via the oscillation circuit. The detection circuit is used for determining whether the detecting port is coupled to the object based on the oscillation characteristic of the oscillation signal.
Claims
1. A detection device, comprising: a detecting port used for pluggably coupled to an object; a leakage port used for electrically coupled to a ground loop; an oscillation circuit electrically coupled to the detecting port and the leakage port respectively, used for generating an oscillation signal, and when the detecting port coupled to the object, charges of the object are transferred to the leakage port via the oscillation circuit; and a detection circuit determining whether the detecting port is coupled to the object based on an oscillation characteristic of the oscillation signal to generate a judgment result.
2. The detection device according to claim 1, wherein the oscillation circuit comprises: an amplifier having a first input, a second input and an output; a divided feedback and bleeder circuit having a first terminal, a second terminal, a first node and a second node, wherein the first terminal of the divided feedback and bleeder circuit is coupled to the output of the amplifier, the second terminal of the divided feedback and bleeder circuit is coupled to the leakage port, the first node of the divided feedback and bleeder circuit is coupled to the detecting port, the second node of the divided feedback and bleeder circuit is coupled to the first input of the amplifier; a resistor device having a first terminal and a second terminal, wherein the first terminal of the resistor is coupled to the leakage port; and a harmonic oscillation unit having a first terminal, a second terminal and a third terminal, wherein the first terminal of the harmonic oscillation unit is coupled to the output of the amplifier, the second terminal of the harmonic oscillation unit is coupled to the second input of the amplifier, the third terminal of the harmonic oscillation unit is coupled to the second terminal of the resistor.
3. The detection device according to claim 2, wherein the resistor comprises a variable resistor.
4. The detection device according to claim 2, wherein the harmonic oscillation unit comprises: a resistor coupled to the first terminal of the harmonic oscillation unit and the second terminal of the harmonic oscillation unit respectively; a first capacitor coupled to the first terminal of the harmonic oscillation unit and the third terminal of the harmonic oscillation unit respectively; and a second capacitor coupled to the third terminal of the harmonic oscillation unit and the second terminal of the harmonic oscillation unit respectively.
5. The detection device according to claim 2, wherein the detection circuit is coupled to the output of the amplifier.
6. The detection device according to claim 1, wherein a voltage level of the oscillation signal with respect to the ground loop is less than or equal to 5 volt.
7. The detection device according to claim 1, further comprising an enabling circuit electrically coupled to the detection circuit, and used to selectively adjust the judgment result.
8. The detection device according to claim 1, further comprising an enabling circuit electrically coupled to the oscillation circuit, and used to selectively enable the oscillation circuit.
9. The detection device according to claim 1, wherein the detection circuit further sends the judgment result to a bus network.
10. The detection device according to claim 9, further comprising a interface circuit electrically coupled to the detection circuit and the bus network respectively, wherein when the detection circuit is failed, the interface circuit blocks the detection circuit from sending the judgment result to the bus network.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0006] The present disclosure will become more fully understood from the detailed description given hereinbelow and the accompanying drawings which are given by way of illustration only and thus are not limitative of the present disclosure and wherein:
[0007]
[0008]
[0009]
[0010]
[0011]
DETAILED DESCRIPTION
[0012] In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawings.
[0013] Please refer to
[0014] The oscillation circuit 1300 is used for generating the oscillation signal Vosc. More specifically, the oscillation circuit 1300 has an amplifier 1310, a divided feedback and bleeder circuit 1320, a resistor device 1330 and a harmonic oscillation unit 1340. The amplifier 1310 has a first input 1311, a second input 1313 and an output 1315. The divided feedback and bleeder circuit 1320 has a first terminal 1321, a second terminal 1323, a first node 1325 and a second node 1327. The first terminal 1321 of the divided feedback and bleeder circuit 1320 is coupled to the output 1315 of the amplifier 1310. The second terminal 1323 of the divided feedback and bleeder circuit 1320 is coupled to the leakage port 1200. The first node 1325 of the divided feedback and bleeder circuit 1320 is coupled to the detecting port 1100. The second node 1327 of the divided feedback and bleeder circuit 1320 is coupled to the first input 1311 of the amplifier 1310. The resistor device 1330 has a first terminal 1331 and a second terminal 1333. The first terminal 1331 of the resistor device 1330 is coupled to the leakage port 1200. The harmonic oscillation unit 1340 has a first terminal 1341, a second terminal 1343 and a third terminal 1345. The first terminal 1341 of the harmonic oscillation unit 1340 is coupled to the output 1315 of the amplifier 1310. The second terminal 1343 of the harmonic oscillation unit 1340 is coupled to the input 1313 of the amplifier 1310. The third terminal 1345 of the harmonic oscillation unit 1340 is coupled to the second terminal 1333 of the resistor device 1330. In an embodiment, the oscillation signal Vosc, generated by the oscillation circuit 1300, is not larger than 5 volt with respect to the voltage of the ground terminal GGND.
[0015] In an embodiment, the divided feedback and bleeder circuit 1320 is made up of a resistor R11, a resistor R12 and a resistor R13, wherein the resistance of the resistor R11 is 470 kilo ohm (kΩ), the resistance of the resistor R12 is 910 kΩ, and the resistance of the resistor R13 is 100 kΩ. Besides, the resistance of resistor device 1330 is no less than 10 kΩ.
[0016] In an embodiment, as shown in
[0017] Please refer to
[0018] More specifically, the inner margin of the electrostatic protection wristband 3000 has an exposed conducting loop. When the electrostatic protection wristband 3000 is plugged in the detecting port 1100, the conducting loop is electrically coupled to the detecting port. Thus, when the personnel 2000 wears the electrostatic protection wristband 3000 correctly, the charges on the hand of the personnel 2000 are transferred to the detecting port 1100 via the exposed conducting loop, and are finally transmitted to the ground terminal GGND. If the electrostatic protection wristband 3000 is plugged in the detecting port 1100 incorrectly or the eversion of the inner margin of the electrostatic protection wristband 3000 makes the conducting loop disconnect with the hand of the personnel 2000, the charges on the hand of the personnel 2000 are not transmitted to the ground terminal GGND.
[0019] Please refer to
[0020] The detection circuit 1400 is electrically coupled to the output 1315 of the amplifier 1310 of the oscillation circuit 1300. Therefore, the detection circuit 1400 can detect the oscillation characteristic of the oscillation signal Vosc to determine whether the personnel 2000 is correctly electrically coupled to the detecting port 1100 of the detection device 1000. More specifically, when the detection circuit 1400 detects no periodic voltage change of the oscillation signal Vosc, based on the theory mentioned before, the detection circuit 1400 determines that the personnel 2000 is correctly electrically coupled to the detecting port 1100. In other words, the personnel 2000 uses a right method to wear the electrostatic protection wristband 3000, and the electrostatic protection wristband 3000 is well plugged in the detecting port 1100 of the detection device 1000. Moreover, according to embodiments in
[0021] If the detection circuit 1400 detects the periodic voltage change of the oscillation signal Vosc, the detection circuit 1400 will determine that the personnel 2000 is incorrectly electrically coupled to the detecting port 1100. In other words, the result is from either the incorrect wearing of the electrostatic protection wristband 3000 of the personnel 2000, or imperfect contact between the electrostatic protection wristband 3000 and the detecting port 1100 of the detection device 1000.
[0022] In an embodiment, due to the differences in body size and gender of each person, the value of the capacitor on a person with respect to the ground terminal GGND of environment varies from person to person. In order to accurately detect whether the personnel 2000 correctly wears the electrostatic protection wristband 3000 or not, the oscillation circuit 1300 needs calibrating appropriately. As shown in
[0023] In an embodiment, please back to
[0024] More specifically, the detection device 1000 further has an interface circuit 1500. The interface circuit 1500 is respectively electrically coupled to the detection circuit 1400 and the bus network 4000. Thus, when the detection circuit 1400 runs normally, the interface circuit 1500 receives the determining result from the detection circuit 1400 and sends to the bus network 4000. When the detection circuit 1400 is failed, in an embodiment, the detection circuit 1400 sends the same determining result repeatedly. If the interface circuit 1500 gets the constant determining result from the detection circuit 1400 continuously, the interface circuit 1500 will not send this repeat determining result to the bus network 4000. In the protocol architecture of the bus network 4000, if one of the multiple detection devices connected by the bus network 4000 malfunctions, the problems, including the defect detection device occupying the bus network 4000 continuously and the signal confliction of the bus network 4000, can be avoided because of the function of the interface circuit 1500.
[0025] In an embodiment, as shown in
[0026] In another embodiment, as shown in
[0027] As set forth above, the detection device provided in this disclosure can detect whether the detecting port is coupled to the object (personnel), and at the same time, transmit the charges on the object to the leakage port via the oscillation circuit. As a result, the detection device provided in this disclosure practically has the function of electrostatic discharge protection.