Title of Invention

FAULT DIAGNOSIS METHOD AND DEVICE FOR DIAGNOSING A FAULT OF A SENSOR FUNCTION

Abstract A fault diagnosis device of sensor function in an output control apparatus including a sensor for converting a physical quantity into an electric signal and issuing, and a 1-chip microcomputer (14) for controlling the output by receiving the electric signal, comprising drive circuit & interface circuit; a drive circuit (11) for driving the sensor (12), as being controlled by a control signal issued from the 1-chip microcomputer (14), which stops driving of the drive circuit (11) and detects whether the sensor output is a specific value or not, thereby diagnosing fault of sensor function.
Full Text FORM 2
THE PATENTS ACT 1970 [39 OF 1970]
COMPLETE SPECIFICATION
[See Section 10 and Rule 13]
"FAULT DIAGNOSIS METHOD AND DEVICE FOR DIAGNOSING A FAULT OF A SENSOR FUNCTION"
HONDA GIKEN KOGYO KABUSHIKI KAISHA, of 1-1, Minamiaoyama 2-chome, Minato-ku, Tokyo 107-8556, Japan,
The following specification particularly describes the nature of the invention and the manner in which it is to be performed:-





DESCRIPTION Technical Field
The present invention relates to a fault diagnosis method and device of sensor function in an apparatus for output control with a 1-chip microcomputer into, which an electric signal issued from a sensor for converting a physical quantity into an electric signal is fed.
Background Art
A conventional example of fault diagnosis system of sensor function is explained by referring to Fig. 7. An output signal SI from a drive circuit 1 is input into a sensor 2, and the sensor 2 is driven. The sensor 2 converts a physical quantity into an electric signal, and sends out a sensor output signal S2. The sensor output signal S2 is input into an interface circuit 3. The interface circuit 3 processes the sensor output signal S2 into a signal to be recognized by a 1-chip microcomputer 4, and issues an electric signal (digital signal) S3.
The 1-chip microcomputer 4 converts t'he electric signal S3 received from the interface circuit 3 into a control signal S4 having a specified function by a program stored in a memory 4A in advance, and issues to an output circuit



5. The output circuit 5 drives a load 6 depending on the drive signal S4.
The sensor output signal S2 usually settles, within a certain output range of the sensor output. However, if a function trouble occurs in the sensor 2, and the sensor output signal S2 does not settle within the output range, the electric signal S3 from the interface circuit 3 goes out of the input range of the 1-chip microcomputer 4. Accordingly, the 1-chip microcomputer 4 issues a fail signal S5. When receiving the fail signal S5, the output circuit 5 lights up a fail lamp 7. As a result, if the sensor output signal S2 does not settle within the output range, such trouble of the sensor function can be detected.
However, in spite of the trouble in the sensor function, if the sensor output signal S2 settles within the output range, it is not known what signal is produced when the electric signal S3 is issued from the interface circuit 3, and it is hard to detect fault of the sensor function.
It is hence an object of the invention.to present a method and.device for fault diagnosis of sensor function capable of detecting trouble of sensor function even if a sensor output signal issued from a sensor settles within a certain output range.
Disclosure of Invention
In order to achieve the object, the invention is



characterized in a fault diagnosis method of sensor function in an apparatus for controlling an output by using a 1-chip microcomputer which receives an electric signal from a sensor for converting a physical quantity into the electric signal, wherein a drive circuit for driving the sensor is driven by a drive signal issued from the 1-chip microcomputer.
The invention is also characterized in that a fault diagnosis device of sensor function in an output control apparatus including a sensor for converting a physical quantity into an electric signal and issuing, and a 1-chip microcomputer for controlling the output by receiving the electric signal, comprises a drive circuit for driving the sensor, as being controlled by a control signal issued from the 1-chip microcomputer, wherein the 1-chip microcomputer diagnoses the fault of sensor function by controlling an operation of the drive circuit.
According to the invention, it is possible to detect trouble of sensor function even if the sensor output range settles within an output range.
Brief Description of accompaying Drawings
Fig. 1 is a block diagram showing a fault diagnosis system of sensor function in an embodiment of the invention;
Fig. 2 is a flowchart showing an outline of operation



of 1-chip microcomputer;
Fig. 3 is a block diagram showing a fault diagnosis system of a slant sensor in a specific example of the invention;
Fig. 4A to Fig. 4C are diagrams showing the relation between the electrode of the slant sensor and liquid level of dielectric solution;
Fig. 5 is an output voltage characteristic diagram corresponding to the angle of the slant sensor in Fig. 3;
Fig. 6 is an output voltage characteristic diagram corresponding to the angle of the slant sensor in Fig. 3, showing the frequency dependence; and
Fig. 7 is a block diagram showing a fault diagnosis system "of sensor function in a prior art.
Best Mode for Embodying the Invention
Referring now to the drawings, the invention is specifically described below. Fig. 1 is a block diagram of a fault diagnosis system of sensor function in an embodiment of the invention.
In the drawing, a 1-chip microcomputer 14 issues a drive signal S16 (for example, a clock signal) according to a program stored in a memory 14A in advance, and the drive signal S16 is input into a drive circuit 11. An output signal Sll from the drive circuit 11 is input into a sensor 12, and the sensor 12 is driven. The sensor 12 converts


the physical quantity into an electric signal, and issues a sensor output signal S12. The sensor output signal S12 is input into an interface circuit 13. The interface circuit 13 processes the sensor output signal 12 into a signal to be recognized in the 1-chip microcomputer 14, and an electric signal (digital signal) S13 is issued.
The 1-chip microcomputer 14 converts the electric signal S13 received from the interface circuit 13 into a control signal S14 having a specified function by the program stored in the memory 14A,and issues to an output circuit 15. The output circuit 15 drives a load 16 depending on the control signal S14.
When the 1-chip microcomputer 14 stops the drive circuit 11 by the drive signal S16, the sensor 12 issues a predetermined specific sensor output signal S12. The interface circuit 13, receiving the specific sensor output signal S12, issues a corresponding specific electric signal (digital signal)' S13.
Suppose, in spite of trouble in the sensor 12, a sensor output signal S12 within a certain output range is being issued from the sensor 12. In this case, when the drive circuit 11 is stopped by stopping the drive signal S16 from the 1-chip microcomputer 14, the predetermined specific sensor output signal S12 is not issued from the sensor 12, and then the specific sensor output signal S13 is not issued from the interface circuit 13. As a result, the 1-chip


microcomputer 14 judges that the sensor 12 is defective, and issues a fail signal S15 to the output circuit 15. Consequently, the output circuit 15 lights up a fail lamp 17.
Due to trouble in the sensor 12,. meanwhile, if the sensor output signal S12 does not settle within the output range, the electric signal S13 from the interface circuit 13 goes out of the input range of the 1-chip microcomputer 14. Accordingly, the 1-chip microcomputer 14 issues a fail signal S15 to light up the fail lamp 17, thereby realizing fault diagnosis, which is same as in the prior art.
Fig. 2 is a flowchart explaining the operation of the 1-chip microcomputer 14. At step Sl, fault diagnosis mode is judged, and if judged negatively (execution mode) , going to step S2, the drive circuit ,11 is driven. At step S3, the electric signal S13' from the interface circuit 13 is judged to be within specified output range or not. If judged affirmatively, going to step S4, the sensor 12 is judged to be normal. At step S5, the load 16 is driven, and at step S6, it is judged if the drive terminating command of the sensor 12 is received or not. If judged affirmatively, the operation is terminated, but if judged negatively, the process returns to step Sl. Thus, in normal operation, steps Sl to S6 are repeated, but if judged negatively at step S3, the 1-chip microcomputer 14 judges that the sensor 12 has a function trouble, and goes to step

S12 to light up the fail lamp 17.
If judged affirmatively at step SI to get into fault diagnosis mode, going to step S8, the 1-chip microcomputer 14 stops the operation of the drive circuit 11. At step S9, it is judged if the electric signal S13 from the interface circuit 13 is a predetermined specific value or not, and if judged affirmatively, the process goes to step S10, and the sensor 12 is judged to be normal. If judged negatively at step S9, going to step Sll, the sensor 12 is judged to be abnormal. The process goes to step S12 and the fail lamp 17 is lit up.
In this manner, the 1-chip microcomputer 14 detects failure of the sensor 12.
A specific example of the invention is described. Fig. 3 is a block diagram of a device for output control using a slant sensor for detecting the inclination of liquid level of dielectric solution as change in the electrostatic capacity, in which the inclination angle of the slant sensor controlled by the drive signal issued from a 1-chip microcomputer is converted into an electric signal, and this electric signal is input into the 1-chip microcomputer.
The 1-chip microcomputer 24 generates a clock signal S26 by a program stored in a memory 24A in advance, and supplies the clock signal S26 into a buffer circuit (for example, C-MOS inverter) 21 as a drive circuit. The buffer circuit



21 shapes the waveform of the clock signal S26, and corrects,
for example, dullness of the waveform. The shaped clock
signal S21 is supplied into a slant sensor 22.
The slant sensor 22 detects the inclination of the dielectric solution as. a change in the electrostatic capacity. The slant sensor 22 is composed of electrostatic capacities 22C, 22D changing depending on the inclination, and C-V (capacity-voltage) converters 22A, 22B for converting the two electrostatic capacities into voltages, and output voltages VI, V2 are respectively produced from the C-V converters 22A, 22B~. In this manner, the inclination angle is converted into (V2-V1). The principle and structure of the slant sensor 22 are known, and are explained only briefly herein.
Fig. 4A, Fig. 4B, and Fig. 4C are schematic diagrams of the slant sensor 22 and inclination 6. The slant sensor
22 comprises a common electrode 30, semicircular first
electrode 31a and second electrode 31b having the both ends
cut off, and a dielectric solution 34 contained in the space
formed by the common electrode 30 and first and second
electrodes 31a, 31b. The common electrode 30 and first and
second electrodes 31a, 31b are disposed parallel to each
other at specific intervals.
At the inclination 8 = 0, as shown in Fig. 4A, the liquid level 34a of the dielectric solution 34 does not reach the first electrode 31a, while the second electrode 31b is


completely immersed. Accordingly, the difference between the electrostatic capacity "CI of the first electrode 31a and the electrostatic capacity C2 of the second electrode 31b is the largest, and the absolute value o-f (V2-V1) is the maximum. Next, at 9 > 0 or 9 On the other hand, as the inclination 9 increases in the positive or negative direction, the absolute value of (V2-V1) decreases according to a quadratic function.
An amplifier circuit 23 as the interface circuit is composed of two operational amplifiers 23A, 23B, a reference voltage (Vref) 23C, and resistances 23D to 23G (Rl to R4), and output voltages VI, V2 of the slant sensor 22 are fed into the operational amplifiers 23A, 23B, respectively. The output signal S23 of the amplifier circuit 23 is expressed in the following formula (1).
S23 = - [ (Rl + 1/R2] x |V2 - Vl| + Vref ... (1) where Rl = R2 and R2 = R3.
Herein, the output signal S23 is adjusted and issued as a gain that can be recognized by the 1-chip microcomputer 24 according to the ratio of Rl and R2. For example, it is set in a voltage range of 1 V to 4 V. The absolute value


of (V2-V1) changes according to a quadratic function.
The 1-chip microcomputer 24 recognizes the inclination angle by putting the output signal S23 in the program stored in the memory 24A in advance and issues an output signal S24 to the output circuit 25. The output circuit 25 drivers the load 26 depending on the output signal S24.
The output signal S23 is set so as to be issued within a certain voltage range (for example, 1 V to 4 V) . If the slant sensor 22 issues abnormal voltages VI, V2 and the output voltage of the output signal S23 is out of the preset voltage range, the 1-chip microcomputer 24 judges that the slant sensor 22 is defective by the program stored in the memory 24A. As a result, a fail signal S25 is issued, and the fail lamp 27 is lit up through the output circuit 25.
While the slant sensor 22 is driven by the clock signal S21, when the clock signal S21 is stopped (fixed at H or L), the output voltage (V1-V2) of the slant sensor 22 becomes 0 V, and the output signal S23 becomes S23 = Vref according to formula (1) . That is, while the slant sensor 22 is normal, if the clock signal S21 is stopped, a specific voltage Vref is input into the 1-chip microcomputer 24.
In other words, if the voltage of the output signal S23 when the-1-chip microcomputer 24 stops the clock signal S2 6 is an expected value of Vref, the sensor function is normal, and if not expected value, that is, other voltage than Vref, the sensor function is abnormal, and trouble is judged.

The sensitivity of the slant sensor for detecting the inclination of the dielectric solution as the change in the electrostatic capacity depends on the clock frequency. Accordingly, in other method of fault diagnosis, by varying the frequency without stopping the clock, the sensitivity of the slant sensor is changed, and an expected value may be obtained.
Fig. 5 is a diagram showing the output voltage corresponding to a typical angle when the output of the slant sensor for detecting the inclination of the dielectric solution as the change in the electrostatic capacity is amplified in a differential amplifier circuit. In the diagram, line (a) shows the characteristic when the 1-chip microcomputer 24 stops sending of clock signal S21 (fault diagnosis mode), and curve (b) shows the characteristic when the 1-chip microcomputer 24 is sending out the clock signal S21 (execution mode) . As shown in the diagram/ in the execution mode, if the inclination angle 0=0, the output voltage is the lowest, and as the inclination angle 6 increases in the positive or negative direction, it increases according to a quadratic function.
Fig. 6 is a diagram showing the frequency dependence when the output of the .slant sensor for detecting the inclination of the dielectric solution as the change in the electrostatic capacity is amplified in a differential amplifier circuit. As shown in the diagram, as the clock

frequency becomes lower, the characteristic of the output voltage is shifted upward. Industrial Applicability
As described herein, according to the invention, the sensor function can be checked by the program stored in the 1-chip microcomputer in advance, and early fault diagnosis of sensor function and fault notice to outside are realized and malfunction is prevented and safety is enhanced.
The invention is not limited to the illustrated embodiment alone, but may be changed and modified in various forms according to the principle of the invention, and hence these changes and modifications are also included in the scope of the invention.
According to the invention, since the sensor function can be checked by the program stored in the 1-chip microcomputer in advance, early fault diagnosis of sensor function and fault notice to outside are realized.


WE CLAIM:-
1. A fault diagnosis device of sensor function in an output control
apparatus including a sensor for converting a physical quantity into an
electric signal and issuing, and a 1-chip microcomputer (14) for
controlling the output by receiving the electric signal, comprising drive
circuit & interface circuit;
a drive circuit (11) for driving the sensor (12), as being controlled by a control signal issued from the 1-chip microcomputer (14), which
stops driving of the drive circuit (11) and detects whether the sensor output is a specific value or not, thereby diagnosing fault of sensor function.
2. The fault diagnosis device of sensor function as claimed in claim 1, wherein the drive circuit (11) is composed of a buffer circuit for shaping a waveform of the signal from the 1-chip microcomputer.
3. The fault diagnosis device of sensor function as claimed in claim 1, comprising an interface circuit for amplifying the signal from the sensor and then sending it to the 1-chip microcomputer (14).
4. A fault diagnosis method of sensor function carried out by the device as claimed in claim 1 in an apparatus for controlling an output by using a 1-chip microcomputer (14) which receives an electric signal from a sensor (12) for converting a physical quantity into the electric signal,
wherein a drive circuit (11) for driving the sensor is driven by a drive signal issued from the 1-chip microcomputer (14); and
said 1-chip microcomputer (14) receives an electric signal on the basis of the sensor (12) during normal operation by issuing a drive signal, said method being characterized in that said 1-chip microcomputer receives an electric signal on the basis of the sensor (12) at a predetermined specific value during stopping the drive signal; and fault of sensor function is diagnosed when the electric signal of specific value is not received during stopping the drive signal.


signal on the basis of the sensor during normal operation by issuing a drive signal, and receives a preliminarily expected electric signal from the sensor by varying the frequency of the drive signal, and fault of sensor function is diagnosed when the expected electric signal is not received when varying the frequency of the drive signal.
5. A fault diagnosis device of sensor function in an
output control apparatus including a sensor for converting
a physical quantity into an electric signal and issuing,
and a 1-chip microcomputer for controlling the output by
receiving the electric signal, comprising:
a drive circuit for driving the sensor, as being controlled by a control signal issued from the 1-chip microcomputer,
wherein the 1-chip microcomputer diagnoses the fault of sensor function by controlling an operation of the drive circuit.
6. The fault diagnosis device of sensor function of
claim 5,
wherein said 1-chip microcomputer stops driving of the drive circuit and detects whether the sensor output is a specific value or not, thereby diagnosing fault of sensor function.
7. The fault diagnosis device of sensor function of
claim 5,
wherein said 1-chip microcomputer changes the frequency

a drive circuit for driving the sensor being controlled by a control signal issued from the 1-chip microcomputer,
wherein said 1-chip microcomputer changes a frequency of the drive signal supplied to the drive circuit and detects whether the sensor output is the electric signal with an expected characteristic, thereby diagnosing the fault of the sensor function and thereby detecting fault of sensor function even if the sensor output settles within an output range of the sensor.
9. The fault diagnosis device for diagnosing a fault of a sensor function as claimed in claim 8, wherein the drive circuit comprises a buffer circuit for shaping a waveform of the signal from the 1-chip microcomputer.
10. The fault diagnosis device for diagnosing a fault of a sensor function as claimed in claim 8, further comprising:
an interface circuit for amplifying the signal from the sensor and then sending it to the 1-chip microcomputer.
Dated this 12th day of February, 2002.
(ANTA PAL)
Y 8B SAGAR
ATTORNEY FOR THE APPLICANTS




Documents:

abstract1.jpg

in-pct-2002-00176-mum-cancelled pages(30-12-2004).pdf

in-pct-2002-00176-mum-claims (granted)(13-01-2005).pdf

in-pct-2002-00176-mum-claims(granted)-(13-01-2005).doc

in-pct-2002-00176-mum-correspondence(12-01-2005).pdf

in-pct-2002-00176-mum-correspondence(ipo)-(07-01-2005).pdf

in-pct-2002-00176-mum-drawing(13-01-2005).pdf

in-pct-2002-00176-mum-form 1(11-04-2002).pdf

in-pct-2002-00176-mum-form 1(12-02-2002).pdf

in-pct-2002-00176-mum-form 13(30-12-2004).pdf

in-pct-2002-00176-mum-form 19(23-10-2003).pdf

in-pct-2002-00176-mum-form 2(granted)-(13-01-2005).doc

in-pct-2002-00176-mum-form 2(granted)-(13-01-2005).pdf

in-pct-2002-00176-mum-form 3(12-02-2002).pdf

in-pct-2002-00176-mum-form 3(30-12-2004).pdf

in-pct-2002-00176-mum-form 5(12-02-2002).pdf

in-pct-2002-00176-mum-other documents(21-02-2002).pdf

in-pct-2002-00176-mum-petition under rule 137(30-12-2004).pdf

in-pct-2002-00176-mum-petition under rule 138(30-12-2004).pdf

in-pct-2002-00176-mum-power of authority(12-02-2002).pdf

in-pct-2002-00176-mum-power of authority(30-12-2004).pdf


Patent Number 213524
Indian Patent Application Number IN/PCT/2002/00176/MUM
PG Journal Number 09/2008
Publication Date 29-Feb-2008
Grant Date 07-Jan-2008
Date of Filing 12-Feb-2002
Name of Patentee HONDA GIKEN KOGYO KABUSHIKI KAISHA
Applicant Address 1-1, MINAMIAOYAMA 2-CHOME, MINATO-KU, TOKYO 107-8556, JAPAN
Inventors:
# Inventor's Name Inventor's Address
1 SHIGEO NOMURA C/O. OKI ELECTRIC INDUSTRY CO. LTD., 7-12, TORANOMON 1-CHOME, MINATO-KU, TOKYO, JAPAN
2 TOMOYUKI SAKAI C/O. OKI ELECTRIC INDUSTRY CO. LTD., 7-12, TORANOMON 1-CHOME, MINATO-KU, TOKYO, JAPAN
3 SUMITAKA OGAWA KABUSHIKI KAISHA HONDA GIJUTSU KENKYUSHO, 4-1, CHUO 1-CHOME, WAKO-SHI, SAITAMA, JAPAN.
4 YOSHIAKI TAKEUCHI KABUSHIKI KAISHA HONDA GIJUTSU KENKYUSHO, 4-1, CHUO 1-CHOME, WAKO-SHI, SAITAMA, JAPAN.
PCT International Classification Number G01C 9/00
PCT International Application Number PCT/JP01/05247
PCT International Filing date 2001-06-20
PCT Conventions:
# PCT Application Number Date of Convention Priority Country
1 2000-202503 2000-07-04 Japan