Communication device, on-vehicle communication system, and inspection method
09762431 · 2017-09-12
Assignee
- Sumitomo Electric Industries, Ltd. (Osaka, JP)
- Sumitomo Wiring Systems, Ltd. (Mie, JP)
- Autonetworks Technologies, Ltd. (Mie, JP)
- TOYOTA JIDOSHA KABUSHIKI KAISHIA (Aichi, JP)
Inventors
Cpc classification
Y02T90/16
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H04L41/0631
ELECTRICITY
H01L2221/00
ELECTRICITY
G02F2201/00
PHYSICS
Y02T90/14
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01L21/00
ELECTRICITY
Y02T10/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B60L50/00
PERFORMING OPERATIONS; TRANSPORTING
B60L3/00
PERFORMING OPERATIONS; TRANSPORTING
B60L53/66
PERFORMING OPERATIONS; TRANSPORTING
Y02T90/12
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
G02F1/00
PHYSICS
B60R16/023
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/7072
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
A communication device includes a first resistance connected between a first reference potential and a midway point of one of a pair communication lines connected to a coil, a second resistance and a third resistance arranged in series so as to be connected between a second reference potential different from the first reference potential and a midway point of the other one of the pair communication lines, and a switch configured to open or close a path between the first resistance and the first reference potential.
Claims
1. A communication device comprising: a first resistance connected between a first reference potential and a midway point of one of a pair of communication lines connected to a coil; a second resistance and a third resistance arranged in series between a second reference potential different from the first reference potential and a branch point branching from the other one of the pair of communication lines to the second reference potential; and a switch configured to open or close a path between the first resistance and the first reference potential.
2. The communication device according to claim 1, further comprising: a detection part that detects a potential between the second resistance and the third resistance when the switch is closed; and an inspection part that inspects abnormality based on the potential detected by the detection part, the first reference potential and the second reference potential, as well as resistance values of the first resistance, the second resistance and the third resistance.
3. The communication device according to claim 1, further comprising: a fourth resistance connected to the second reference potential from a point between the first resistance and the switch.
4. The communication device according to claim 3, wherein a sum of resistance values of the first resistance and the fourth resistance is approximately equal to a sum of resistance values of the second resistance and the third resistance.
5. The communication device according to claim 3, further comprising: a terminal resistance connected to the pair of communication lines, wherein a sum of resistance values of the first resistance, the second resistance, the third resistance and the fourth resistance is larger than a resistance value of the terminal resistance.
6. An on-vehicle communication system performing communication with a device outside a vehicle through in-vehicle wiring used to feed electric power to a storage mounted on the vehicle, comprising: the communication device according to claim 1, configured to input and output communication signals concerning communication; and a superimposition/separation unit that superimposes/separates the communication signals through the in-vehicle wiring, including a primary coil connected to the in-vehicle wiring, and a secondary coil electromagnetically coupled to the primary coil, wherein the coil to which the pair of communication lines are connected is the secondary coil included in the superimposition/separation unit.
7. The on-vehicle communication system according to claim 6, wherein the communication device further including: a detection part that detects a potential between the second resistance and the third resistance when the switch is closed; and an inspection part that inspects abnormality based on the potential detected by the detection part, the first reference potential and the second reference potential, as well as resistance values of the first resistance, the second resistance and the third resistance.
8. The on-vehicle communication system according to claim 6, wherein the communication device further including: a fourth resistance connected to the second reference potential from a point between the first resistance and the switch.
9. The on-vehicle communication system according to claim 8, wherein a sum of resistance values of the first resistance and the fourth resistance is approximately equal to a sum of resistance values of the second resistance and the third resistance.
10. The on-vehicle communication system according to claim 6, wherein the communication device further including: a terminal resistance connected to the pair of communication lines, wherein a sum of resistance values of the first resistance, the second resistance, the third resistance and the fourth resistance is larger than a resistance value of the terminal resistance.
11. An inspection method for inspecting abnormality in a pair of communication lines connectable to a coil in a communication device, comprising: detecting a potential between the second resistance and the third resistance when the switch is closed in the communication device according to claim 1; inspecting abnormality based on the detected potential, the reference potentials, and resistance values of the first resistance, the second resistance and the third resistance; and recording and/or outputting a result of inspection.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION
(8) The present application will be described below with reference to the drawings illustrating the embodiments thereof.
(9)
(10) The vehicle 1 and the power feeding device 2 may be connected with each other through a charge cable 3. The charge cable 3 encloses therein two feed lines 31 and 32 used as power supply lines, a ground line 33 which is conductive wire for grounding, and a control line 34 transmitting control signals such as a control pilot signal (CPLT) used for charge control. One end of the charge cable 3 is connected to the power feeding device 2 side, while the other end thereof may be connected to a receiving connector 11 disposed as an on-vehicle feed port on the vehicle 1 side. By connecting the other end of the charge cable 3 to the receiving connector 11, the circuit configuration illustrated in
(11) The feed lines 31 and 32 are AC lines to which alternating voltage is applied. The control line 34 is a signal line transmitting and receiving control signals such as a control pilot signal. The feed lines 31 and 32 may also be used as media for transmitting management information such as vehicle authentication, charging management and billing management as well as various other information. In other words, the vehicle 1 is able to communicate with the power feeding device 2 by superimposing and separating communication signals onto/from the feed lines 31 and 32.
(12) The power feeding device 2 includes a power supply part 20 supplying alternating power, a charge control part 21 performing communication concerning charge control, a communication part 22 performing input/output of communication signals, and a superimposition/separation part 23 superimposing and separating communication signals, which are input and output to/from the communication part 22, onto/from the feed lines 31 and 32.
(13) The power supply part 20 is connected to one end of each of the feed lines 31 and 32. The charge control part 21 is connected to one end of the control line 34. The wiring in the power feeding device 2 corresponds to internal conductive wire serving as extended lines connected to the feed lines 31, 32, ground line 33 and control line 34 enclosed in the charge cable 3 outside the power feeding device 2. In the description below, however, the part of the extended lines disposed as the internal conductive wire will also be described as feed lines 31, 32, ground line 33 and control line 34 for convenience.
(14) The charge control part 21 is, for example, a circuit on the output side which conforms to the International Standard related to charge control, and performs charge control in various states, such as confirmation of connection and start of energization, by transmitting and receiving control signals such as a control pilot signal.
(15) The superimposition/separation part 23 is connected to branch lines branched from the feed lines 31 and 32, and is configured with a circuit such as a capacitor or a coupling transformer (circuit such as a signal transformer of the electromagnetic induction type), which is connected to the branch lines. The superimposition/separation part 23 superimposes various communication signals output from the communication part 22 onto the feed lines 31 and 32, and inputs various communication signals separated from the feed lines 31 and 32, so as to perform power line communication using the feed lines 31 and 32 as media.
(16) The capacitor has high impedance for alternating-current (AC) power supplied through the feed lines 31 and 32, whereas it has low impedance for communication signals using a band for low-speed communication of several tens to several hundreds of kHz or a band for high-speed communication of several MHz to several tens of MHz. In other words, the capacitor passes the signals in the frequency band used for communication signals while blocking off the signals in the frequency band used for AC power in the transmission path branched from the feed lines 31 and 32.
(17) The vehicle 1 includes, in addition to the battery 10 and the receiving connector 11, a charging device 12 for charging the battery 10, a charge control device 13 performing communication concerning charge control, a communication device 14 performing transmission and reception of communication signals, and a superimposition/separation unit 15 performing superimposition and separation of communication signals onto/from the pair of feed lines 31 and 32.
(18) In the vehicle 1, in-vehicle wiring is disposed which is connected to the feed lines 31, 32, ground line 33 and control line 34. The in-vehicle wiring connected to the feed lines 31 and 32 are AC lines connected to the charging device 12, which charges the battery 10. The in-vehicle wiring connected to the ground line 33 is body-earthed. The in-vehicle wiring connected to the control line 34 is connected to the charge control device 13 through an extended line. In the description below, each in-vehicle wiring, AC lines and extended lines are also described as the feed lines 31, 32, ground line 33 and control line 34 for convenience, unless they need to be specifically identified.
(19) The superimposition/separation unit 15 is connected to a pair of branch lines branched from the in-vehicle wiring connected to the feed lines 31 and 32.
(20) The charge control device 13 is, for example, a circuit on the input side which conforms to the International Standard related to charge control, and performs charge control in various states, such as confirmation of connection and start of communication, by transmitting and receiving control signals such as a control pilot signal.
(21) The communication device 14 includes a function for transmitting and receiving various communication signals to/from the power feeding device 2, and is connected to the superimposition/separation unit 15 through a pair of communication lines.
(22) The superimposition/separation unit 15 is a circuit such as a coupling transformer (signal transformer of the electromagnetic induction type) provided with a primary coil 150, both ends of which are connected to the feed lines 31 and 32 through a capacitor, and a secondary coil 151 electromagnetically coupled to the primary coil 150. It is noted that both ends of the secondary coil 151 are connected to a pair of communication lines in the communication device 14.
(23) The capacitor has high impedance for AC power supplied through the feed lines 31 and 32, whereas it has low impedance for communication signals using a band for low-speed communication of several tens to several hundreds of kHz or a band for high-speed communication of several MHz to several tens of MHz. In other words, the capacitor passes the signals in the frequency band used for communication signals while blocking off the signals in the frequency band used for AC power in the transmission path branched from the feed lines 31 and 32.
(24) The superimposition/separation unit 15 superimposes various communication signals onto the feed lines 31 and 32, and separates the superimposed various communication signals. The superimposition/separation unit 15 superimposes various communication signals output from the communication device 14 onto the feed lines 31 and 32, and inputs various communication signals separated from the feed lines 31 and 32, so as to perform power line communication using the feed lines 31 and 32 as media.
(25) In the example illustrated in
(26)
(27) In the example shown in
(28) The superimposition/separation unit 15 included in the vehicle 1 is connected to branch lines branched from the ground line 33 and control line 34. The superimposition/separation unit 15 is a circuit such as a coupling transformer provided with a primary coil 150, both ends of which are connected to the ground line 33 and control line 34, and a secondary coil 151 electromagnetically coupled to the primary coil 150. It is noted that both ends of the secondary coil 151 are connected to a pair of communication lines in the communication device 14.
(29) The superimposition/separation unit 15 superimposes various communication signals onto the ground line 33 and control line 34, and separates the superimposed various communication signals therefrom. The superimposition/separation unit 15 superimposes various communication signals output from the communication device 14 onto the ground line 33 and control line 34, and inputs various communication signals separated from the ground line 33 and control line 34 to the communication device 14, so as to perform in-band communication using the ground line 33 and control line 34 as media.
(30) In the example illustrated in
(31)
(32) Moreover, the communication device 14 includes a pair of OFDM (Orthogonal Frequency Division Multiplexing) lines connected to both ends of the secondary coil 151 of the superimposition/separation unit 15, and a pair of internal writing connected to the OFDM lines. The internal wiring is connected to a Tx protection circuit 143 functioning as a transmission part outputting various signals such as communication signals and to an Rx filter 144 functioning as a reception part to which various signals are input. The Rx filter 144 is provided with a terminal resistance Rr connected to the pair of internal wiring. Furthermore, an AFE (Analog Front End) circuit 145 is disposed in the Tx protection circuit 143 and Rx filter 144, to perform A/D conversion of communication signals. In the description below, the pair of OFDM lines and internal wiring are also indicated as a pair of communication lines 14a and 14b.
(33) Furthermore, the communication device 14 includes a CAN (Controller Area Network) transceiver circuit 146 connected to an in-vehicle communication network NW such as a CAN bus based on the communication standard like CAN disposed in the vehicle 1. The communication device 14 is able to communicate with an output part 16 such as various ECUs disposed in the vehicle 1 through the in-vehicle communication network NW, and makes the output part 16 output, for example, the display of cautions, lighting of various LEDs and ringing of alarming sound.
(34) The first branch line is connected to the midway of one communication line 14a among the pair of communication lines 14a and 14b, and is connected to the first reference potential through the first resistance R1 and switch element Q1 connected in series. The switch element Q1 is a semiconductor switch such as a MOSFET and a bipolar transistor, and is opened and closed upon control by the CPU 141. It is assumed here that a reference voltage V.sub.ref which is equal to or less than a power supply voltage V.sub.+B is set as the first reference potential (V.sub.ref≦V.sub.+B). The CPU 141 closes the switch element Q1 and applies the reference voltage V.sub.ref when inspection is performed for abnormality concerning the communication lines 14a and 14b.
(35) Furthermore, the fourth resistance Ra is connected between the first resistance R1 and the switch element Q1 as a pull-down resistance connected to the second reference potential. The second reference potential is a potential different from the first reference potential. It is assumed here that a ground voltage V.sub.GND is set as the second reference potential. It is also possible to appropriately apply a bias voltage as the second reference potential, not limited to the ground voltage V.sub.GND. Though the example where open/close switch for connecting and disconnecting the circuit is used as the switch element Q1 here, another switch may also be used, which is normally connected to the fourth resistance R and which comes to be connected to the reference voltage V.sub.ref at the abnormality inspection.
(36) Moreover, in the midway of the other communication line 14b, the second branch line different from the first branch line is connected. The second branch line is connected to the second reference potential through the second resistance R2 and the third resistance R3 connected in series.
(37) It is noted that the CPU 141 includes an ADC (Analog to Digital Converter) 141a as a detection means for detecting the potential between the second resistance R2 and the third resistance R3. When the switch element Q1 is closed for abnormality inspection, the potential between the second resistance R2 and the third resistance R3 is detected.
(38) Description is now made for the resistance value of each resistance. It is preferable to set the sum (R1+Ra) of the resistance value (R1) of the first resistance R1 and the resistance value (Ra) of the fourth resistance Ra disposed in series between one communication line 14a and the ground voltage to be approximately equal to the sum (R2+R3) of the resistance value (R2) of the second resistance R2 and the resistance value (R3) of the third resistance R3 disposed in series between the other communication line 14b and the ground voltage. For example, the values are preferably set to satisfy the equation R1+Ra=R2+R3≧1 kΩ. This can eliminate the adverse effect on transmission using communication lines 14a and 14b as media, i.e. transmission of high-frequency communication signals, due to disruption of balance between electric elements such as the potential between the pair of communication lines 14a and 14b as well as the resistance values.
(39) Furthermore, the sum of the respective resistance values of the first resistance R1, second resistance R2, third resistance R3 and fourth resistance Ra (R1+R2+R3+Ra) is preferably set as larger than the resistance value (Rr) of the terminal resistance Rr of the Rx filter 144. It is preferable to employ the multiplying rate of 50-100 times, for example, R1+R2+R3+Ra=20 kΩ if Rr=100-200Ω, or an even higher multiplying rate. By making the sum of the resistance values of the first resistance, second resistance, third resistance and fourth resistance (R1+R2+R3+Ra) larger than the resistance value (Rx) of the terminal resistance, it is possible to prevent communication signals from leaking to the first to fourth resistance side. This effect will be significant by further making the multiplying rate larger.
(40) Though, in
(41)
(42) According to the modification illustrated in
(43) The configuration realizes in-band communication, in which communication signals are superimposed onto the ground line 33 and control line 34, between the communication device 14 in the vehicle 1 and the communication part 22 in the power feeding device 2.
(44)
(45) The communication device 14 includes a CPU 141 as a control part controlling the entire device, and a memory 142 is connected to the CPU 141 as a storage part storing various information using execution of the processing performed by the CPU 141. Furthermore, the communication device 14 includes a CAN transceiver circuit 146 connected to the in-vehicle communication network NW such as a CAN bus based on the communication standard such as the CAN disposed in the vehicle 1.
(46) One of the characteristics of the configuration example shown in
(47) The pair of communication lines 14a and 14b that are internal wiring of the communication device 14 are respectively connected to a Tx protection circuit 143 functioning as a transmission part outputting various signals such as communication signals and to an Rx filter 144 functioning as a reception part to which various signals are input. The Rx filter 144 is provided with a terminal resistance Rr to which the pair of communication lines 14a and 14b are connected. Furthermore, in the Tx protection circuit 143 and Rx filter 144, an AFE circuit 145 is disposed to perform A/D conversion of communication signals.
(48) The first branch line is connected to the midway of one communication line 14a among the pair of communication lines 14a and 14b, the first branch line being connected to the first reference potential (reference potential V.sub.ref) through the first resistance R1 and switching element Q1 connected in series. Moreover, the fourth resistance Ra is connected between the first resistance R1 and the switching element Q1 as a pull-down resistance connected to the second reference potential.
(49) The second branch line different from the first branch line is connected to the midway of the other communication line 14b, the second branch line being connected to the second reference potential (ground voltage V.sub.GND or an appropriate bias voltage) through the second resistance R2 and the third resistance R3 connected in series.
(50) The resistance value of each resistance shown in
(51) The configuration in
(52) Furthermore, though
(53) It is noted that, in the on-vehicle communication system of the in-band communication illustrated in
(54) Next, processing of abnormality inspection for the communication device 14 is described.
(55) The CPU 141 in the communication device 14 closes the switch element Q1 as the processing of abnormality inspection (step S1). By step S1, one communication line 14a is connected to the reference voltage V.sub.ref through the first resistance R1.
(56) The CPU 141 detects the potential between the second resistance R2 and the third resistance R3 at the ADC circuit 141a while the switch element Q1 is closed (step S2).
(57) The CPU 141 inspects abnormality based on the detected potential, power supply voltage V.sub.+B, reference voltage V.sub.ref, ground voltage V.sub.GND as well as the resistance values (R1, R2, R3) of the first resistance R1, second resistance R2 and third resistance R3 (step S3). At step S3, the power supply voltage V.sub.+B, reference voltage V.sub.ref, ground voltage V.sub.GND as well as the resistance values (R1, R2, R3) of the first resistance R1, second resistance R2 and third resistance R3 may be used for inspection by reading information pre-stored in the memory 142.
(58) The CPU 141 then records the result of inspection (step S4) and outputs the recorded inspection result (step S5). At step S4, the inspection result is recorded in the memory 142. The recorded inspection result can appropriately be read out as, for example, a maintenance. Moreover, at step S5, the output of the inspection result is performed by, for example, outputting a predetermined command to the output part 16. Based on the input command, the output part 16 executes the output by, for example, displaying caution, lighting various LEDs and ringing alarm sound for the user's recognition. It is also possible to execute the output when the result of inspection is abnormal. Accordingly, the processing of abnormality inspection for the communication device 14 is executed. Furthermore, the result of inspection may also be output, as an abnormality signal, to various other devices and circuits inside and outside the vehicle 1, not only to the output unit 16.
(59) Next, the abnormality inspection performed at step S3 in the processing of abnormality inspection will be described.
(60) As illustrated in
(61) The embodiment described above is a mere disclosure of a part of countless examples of the present application, and may appropriately be designed by considering various factors such as purposes and specifications. For example, the inspection method of the present invention may also be applied to the communication device on the power feeding device side, not on the vehicle side. It can further be applied to various fields, for example, to a system other than the system related to a vehicle.