Oxygen sensor heater control system and method thereof
09765718 ยท 2017-09-19
Assignee
Inventors
Cpc classification
F02D41/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/1494
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A method of oxygen sensor heater control includes: exhausting an exhaust gas by operating an internal combustion engine; and stopping operation of the engine such that the exhaust gas is not discharged. The stopping operation of the engine includes heating a sensor element by operating a heater that is positioned adjacent to the sensor element, and the sensor element is configured to detect a characteristic of the exhaust gas.
Claims
1. An oxygen sensor heater control system comprising: an engine which generates torque by a combustion operation with injected fuel; a sensor unit which includes a sensor element which detects a characteristic of exhaust gas exhausted from the engine; and a control portion which controls the engine, wherein the control portion stops the engine and operates a heater that is positioned adjacent to the sensor element so as to heat the sensor element, when the temperature of the exhaust gas is lower than a determined value in an engine-stop state, the control portion controls power applied to the heater to be cut off, and in the engine-stop state, the control portion controls operation of the heater to heat inside of a protection tube so as to prevent external exhaust gas from flowing into the protection tube through a passage; wherein the control portion controls a heating temperature of the heater to be selectively varied according to a temperature difference between a temperature of the sensor element and a temperature of the exhaust gas.
2. The oxygen sensor heater control system of claim 1, wherein a temperature of the sensor element and a temperature of the exhaust gas are detected by a temperature detecting sensor.
3. The oxygen sensor heater control system of claim 1, wherein a temperature of the sensor element and a temperature of the exhaust gas are selected from a map table which is predetermined according to a condition of the engine.
4. An oxygen sensor heater control system comprising: an engine which generates torque by a combustion operation with injected fuel; a sensor unit which includes a sensor element which detects a characteristic of exhaust gas exhausted from the engine; and a control portion which controls the engine according to a characteristic signal which is detected at the sensor element, wherein the control portion stops the engine such that the exhaust gas is not discharged and operates a heater that is positioned adjacent to the sensor element so as to heat the sensor element, the control portion controls a heating temperature of the heater to be selectively varied according to a temperature difference between a temperature of the sensor element and a temperature of the exhaust gas, and in the engine-stop state, the control portion controls operation of the heater to heat inside of a protection tube so as to prevent external exhaust gas from flowing into the protection tube through a passage.
Description
DRAWINGS
(1) In order that the disclosure may be well understood, there will now be described various forms thereof, given by way of example, reference being made to the accompanying drawings, in which:
(2)
(3)
(4)
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(8) The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way.
DETAILED DESCRIPTION
(9) The following description is merely exemplary in nature and is not intended to limit the present disclosure, application or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.
(10)
(11) Referring to
(12) The engine 600 may combust a fuel in a cylinder thereof, and converts movement of a piston into torque. Combusted exhaust gas is exhausted through an exhaust manifold and an exhaust line.
(13) The exhaust gas temperature sensor 620 may sense a temperature of the exhaust gas flowing in the exhaust line or the exhaust manifold, or a map table of a predetermined exhaust gas temperature may be applied instead of the exhaust gas temperature sensor 620. The predetermined exhaust gas temperature map table may include temperature information of exhaust gas according to an operation condition of the engine 600.
(14) The sensor unit 180 includes the sensor element 162 and the heater 164. The sensor element 162 may generate a voltage through an oxygen concentration included in the exhaust gas, and the heater 164 may perform a function of heating the sensor element 162.
(15) The control portion 610 is electrically connected to the exhaust gas temperature sensor 620 and the sensor element 162, and controls an operation of the heater 164. In addition, the sensor element 162 may generate the voltage by comparing the exhaust gas and an atmospheric oxygen concentration.
(16) The control portion 610 may include one or more microprocessors operating with a predetermined program including instructions for a method for controlling an exemplary form of the present disclosure as described hereinafter.
(17)
(18) Referring to
(19) A space is formed in the protection tube 170, and the sensor element/heater 160 may be disposed at a center of the space. The engaging portion 150 may be fittings and be formed as a thread structure of which screw threads are formed at an exterior circumference thereof, and the engaging portion 150 may be screw-coupled to the exhaust manifold or the exhaust line.
(20) The sealing portion 140 which forms a sealing structure may be interposed between an interior circumference of the engaging portion 150 and the sensor element/heater 160, and an upper end portion of the sensor element/heater 160 may be inserted into the wire connection portion 120.
(21) The wire connection portion 120 is electrically connected to the wire 100 through the ring portion 110. The sensor element 162 and the heater 164 may be disposed on one body to be spaced apart from each other, and positions of the sensor element 162 and the heater 164 are well-known technology and therefore a detailed description thereof will be omitted.
(22) Moreover, a passage 172 is formed in a center and a lower end portion of the protection tube 170, and the exhaust gas may flow in and be exhausted through the passage 172.
(23)
(24) Referring to
(25) When it is determined that the engine 600 is operated, the control portion 610 calculates a temperature difference in step S220. The exhaust gas temperature subtracted from the sensor element 162 temperature is the temperature difference. Further, when it is determined that the temperature difference is a predetermined value or less in step S230, the control portion 610 turns on or increases power which is supplied to the heater 164 in order to increase the temperature in the protection tube 170 and the sensor element 162 in step S240.
(26) Thereafter, when it is determined that the temperature difference is greater than the predetermined value in step S250, then the control portion 610 turns off or decreases power which is applied to the heater 164 such that the temperature in the protection tube 170 and the temperature of the sensor element 162 are decreased in step S260.
(27) After step S210, when it is determined that the engine 600 is turned off, step S300 is performed as described in
(28)
(29) Referring to
(30) According to one form of the present disclosure, temperature of the exhaust gas is detected by the exhaust gas temperature sensor 620 or it may be selected from a predetermined map table.
(31) Moreover, the temperature of the sensor element 162 is also detected by an additional temperature detecting sensor or it may be selected from a predetermined map table.
(32) In step S310, when it is determined that the temperature difference is a predetermined value or less, the control portion 610 turns on or increases power which is supplied to the heater 164 in step S320, and when it is determined that the temperature difference is greater than the predetermined value in step S330, then the control portion 610 turns off or decreases power which is applied to the heater 164 in step S340.
(33) In step S350, when it is determined that the exhaust gas temperature is lower than a predetermined low temperature, the control portion 610 determines that the heater 164 is sufficiently operated. Thus, the heater 164 is completely turned off in step S360, finishing the control of the heater 164 in step S370.
(34)
(35) Referring to
(36) During operation of the engine 600, active operative control is performed in order to control the heater 164, and during non-operation of the engine 600, inoperative heating control is performed in order to control the heater 164.
(37) As shown, during operation of the engine 600, the power supplied to the heater is controlled, and thereby the temperature of the sensor element 162 (or the temperature in the protection tube 170) is controlled to be greater than the exhaust gas temperature.
(38) Further, during non-operation of the engine 600, the power supplied to the heater 164 is controlled, and thereby the temperature of the sensor element 162 (or the temperature in the protection tube 170) is controlled to be greater than the exhaust gas temperature.
(39) As discussed above, in a state in which the engine 600 is on or off, the temperature of the sensor element 162 (or the temperature in the protection tube 170) is at least controlled to be greater than that of the exhaust gas.
(40)
(41) Referring to
(42) In step S520, when the engine 600 is turned off, the heater 164 is controlled such that the temperature of the sensor element 162 (or the temperature in the protection tube 170) is greater than the temperature of the exhaust gas (or the exhaust line or an inside of the exhaust manifold) in step S530. Thereafter, when a predetermined time has elapsed or the temperature of the exhaust gas is lower than the predetermined low temperature, the heater 164 is turned off and the control of the heater 164 is finished.
(43) The description of the disclosure is merely exemplary in nature and, thus, variations that do not depart from the substance of the disclosure are intended to be within the scope of the disclosure. Such variations are not to be regarded as a departure from the spirit and scope of the disclosure.
DESCRIPTION OF SYMBOLS
(44) 100: wire 110: ring portion
(45) 120: wire connection portion 130: outer shell
(46) 140: sealing portion 150: engaging portion
(47) 160: sensor element/heater 162: sensor element
(48) 164: heater 170: protection tube
(49) 172: passage 600: engine
(50) 610: control portion 620: temperature sensor
(51) 180: sensor unit