Method of protecting frictional element of clutch for automatic transmission
10358991 ยท 2019-07-23
Assignee
Inventors
Cpc classification
F02D41/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2061/1276
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H63/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2200/101
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2063/508
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2061/124
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2250/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02D41/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H63/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method of protecting a frictional element of a clutch for an automatic transmission includes calculating an equivalent rotation number X of a frictional element using a trigonometric function equation on the basis of a virtual right triangle, if a rotation number of an engine exceeds a predetermined boundary value during a driving in a constant speed stage over a predetermined shift stage of an automatic transmission, entering a frictional element protection mode, if the equivalent rotation number X of the frictional element exceeds a predetermined critical value in a state in which the control unit enters the frictional element protection mode, reducing the rotation number of the engine by applying a target engine torque limiting value.
Claims
1. A method of protecting a frictional element of a clutch for an automatic transmission, comprising: calculating, by a control unit, an equivalent rotation number X of a frictional element using a trigonometric function equation on the basis of a virtual right triangle; if a rotation number of an engine exceeds a predetermined boundary value during driving in a constant speed stage over a predetermined shift stage of an automatic transmission, entering a frictional element protection mode, by the control unit; if the control unit enters the frictional element protection mode, determining whether the calculated equivalent rotation number X of the frictional element exceeds a predetermined critical value, by the control unit; and if the equivalent rotation number X of the frictional element exceeds the predetermined critical value in a state in which the control unit enters the frictional element protection mode, reducing the rotation number of the engine by applying a target engine torque limiting value, by the control unit, wherein the virtual right triangle is obtained using a rotation number Z of an output shaft, a rotation number Y of a turbine, and an equivalent rotation number X of the frictional element of the automatic transmission as a height, and using a number of teeth corresponding to the turbine, a number of teeth corresponding to the output shaft, and a virtual extension line as a base line.
2. The method of claim 1, further comprising releasing the frictional element protection mode not to apply the target engine torque limiting value, by the control unit, if the automatic transmission is shifted under a predetermined stage, or the rotation number of the engine is below the predetermined critical value.
3. The method of claim 1, wherein the predetermined shift stage is 4.sup.th-stage.
4. The method of claim 1, wherein the virtual right triangle is obtained by: drawing a virtual straight line (a first height) corresponding to the equivalent rotation number of the frictional element X to correspond to the height in a Y-axis direction on the basis of a right point of the virtual right triangle, drawing a virtual straight line to correspond to the base line in an X-axis direction, wherein the virtual straight line corresponds to a sum of a number of teeth corresponding to the turbine, a number of teeth corresponding to the output shaft, and the virtual extension line , drawing a virtual straight line (a second height) corresponding to a rotation number Y of the turbine at an end point of the number of teeth corresponding to the turbine in a Y-axis direction, drawing a virtual straight line (a third height) corresponding to the rotation number Z of the output shaft at an end point of the number of teeth corresponding to the output shaft in the Y-axis direction, connecting end points of the first, second, and third heights to draw a virtual straight line corresponding to a hypotenuse of the virtual triangle, and extending the hypotenuse of the virtual triangle to a point meeting the X-axis to correspond to the base line.
5. The method of claim 4, wherein a distance from the end point of the number of teeth corresponding to the output shaft to a vertex at which the virtual extension line of the hypotenuse meets the base line, becomes a length of the virtual extension line .
6. The method of claim 4, wherein the length of the virtual extension line is calculated using the following equation 1 by the control unit.
7. The method of claim 4, wherein the equivalent rotation number X of the frictional element is calculated using the following equations 2 and 3 by the control unit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Various embodiments of an inventive concept will become more apparent in view of the attached drawings and accompanying detailed description, in which:
(2)
(3)
(4)
DETAILED DESCRIPTION
(5) Embodiments of a method of protecting a frictional element of a clutch for an automatic transmission according to the present disclosure will hereinafter be described in detail with reference to the accompanying drawings.
(6) It should be noted that the drawings are not to precise scale and may be exaggerated in thickness of lines or sizes of components for descriptive convenience and clarity only. Furthermore, the terms as used herein are defined by taking functions of the invention into account and can be changed according to the custom or intention of users or operators. Therefore, definition of the terms should be made according to the overall disclosures set forth herein.
(7)
(8) As illustrated in
(9) The control unit 130, for example, TCU estimates or calculates a rotation number of the frictional element, in a transmission which does not have a speed sensor for measuring the rotation number of the frictional element of the transmission. If the estimated or calculated rotation number of the frictional element exceeds a predetermined burn time, that is a critical rotation number of the frictional element, the control unit 130 reduces the rotation number of the engine through the engine control unit (ECU) 140. Accordingly, the damage of the frictional element can be prevented.
(10) Hereinafter, a method of protecting the frictional element by calculating the rotation number of the frictional element will be described with reference to
(11)
(12) Referring to
(13) More specifically, referring to
(14) Then, a virtual straight line (second height) corresponding to the rotation number Y of the turbine is drawn at an end point of the number of teeth corresponding to the turbine in the Y-axis direction, and a virtual straight line (third height) corresponding to the rotation number Z of the output shaft is drawn at an end point of the number of teeth corresponding to the output shaft in the y-axis direction. Then, end points of the first, second, and third heights are connected and a virtual straight line corresponding to the hypotenuse of the virtual right triangle is drawn. The hypotenuse of the virtual right triangle is extended to correspond to the base line to a point meeting the x-axis, thereby generating the virtual right triangle.
(15) At this time, a distance from an end point of the number of teeth corresponding to the output shaft to a vertex at which an extended line of the hypotenuse and the base line meet becomes a length of the virtual extension line .
(16) As such, the base line and height are determined, and therefore, the virtual right triangle can be generated.
(17) In accordance with this, the control unit 130 calculates the equivalent rotation number X of the frictional element using the trigonometric function equation on the basis of the generated virtual right triangle (S102).
(18) Here, the length of the virtual extension line may be calculated by following equation 1). Also, if the length of the virtual extension line is calculated, the total length of the base line of the virtual right triangle can be obtained, and therefore, the equivalent rotation number X of the frictional element corresponding to the height of the virtual right triangle can be calculated through following equations 2 and 3.
(19)
(20) Next, the control unit 130 determines whether the rotation number of the engine exceeds a predetermined boundary value during driving in a constant speed stage over a predetermined shift stage, for example, 4-stage of the automatic transmission (S103).
(21) According to a result of the determination of operation S103, if the rotation number of the engine exceeds the predetermined boundary value during driving in a constant speed stage over a predetermined shift stage, for example, 4-stage, the control unit 130 enters a frictional element protection mode (S104).
(22) However, according to the result of the determination of operation S103, if the automatic transmission is shifted under the predetermined shift stage, for example, 4-stage, or the rotation number of the engine is below the predetermined boundary value, the control unit 130 checks the current shift stage and the rotation number of the engine again (S107).
(23) If the control unit 130 enters the frictional element protection mode as described above, the control unit 130 determines whether the calculated equivalent rotation number X of the frictional element exceeds the predetermined critical value (S105).
(24) In a state in which the control unit 130 enters the frictional element protection mode, if the equivalent rotation number X of the frictional element exceeds the predetermined critical value, the control unit 130 reduces the rotation number of the engine by applying a target engine torque limiting value through the engine control unit (ECU) 140 (S106).
(25) Meanwhile, the automatic transmission is shifted under the predetermined stage, for example, 4-stage or the rotation number of the engine is below the predetermined critical value, the control unit 130 releases the frictional element protection mode and does not apply the target engine torque limiting value (S108).
(26) If the automatic transmission is not shifted under the predetermined stage, for example, 4-stage, or the rotation number of the engine is maintained an excess state of the predetermined boundary value, the control unit 130 checks the current shift stage and engine rotation number again (S103).
(27) As described above, according to an embodiment of the present disclosure, in an automatic transmission which does not have a speed sensor for measuring the rotation number of the frictional element, the damage of the frictional element can be prevented by calculating the rotation number of the frictional element, and reducing the rotation number of the engine if the rotation number exceeds the burn time of the frictional element.
(28) The embodiments of the inventive concept have been disclosed above for illustrative purposes. Those of ordinary skill in the art will appreciate that various modifications, additions and substitutions are possible, without departing from the scope and spirit of the inventive concept as disclosed in the accompanying claims.