Apparatus for measuring residual amount of fuel in fuel tank using ultrasonic sensor
11181414 · 2021-11-23
Assignee
Inventors
Cpc classification
International classification
Abstract
Provided is an apparatus for measuring a residual amount of fuel in a fuel tank using an ultrasonic sensor that may simplify wirings, may simplify an assembly method, and may respond to contraction or expansion of the tank according to a change in temperature as compared to the conventional apparatus for measuring a residual amount of fuel in a fuel tank using an ultrasonic sensor.
Claims
1. An apparatus for measuring a residual amount of fuel in a fuel tank using an ultrasonic sensor, the apparatus comprising: a measurement pipe installed in the fuel tank so that the fuel is introduced into an internal space of the measurement pipe; a measurement sensor installed on an inner upper surface of the fuel tank to emit ultrasonic waves toward a liquid level of fuel accommodated in the internal space of the measurement pipe and to measure the time that the ultrasonic waves are reflected from the liquid level and returned; a fixed reflection plate installed above fuel accommodated in the fuel tank and having a fixed height to a lower surface of the fuel tank; a reference sensor installed above the fuel accommodated in the fuel tank to emit the ultrasonic waves toward the fixed reflection plate and to measure the time that the ultrasonic waves are reflected from the fixed reflection plate and returned; and a calculation unit calculating the residual amount of the fuel tank using the time measured by the measurement sensor, the time measured by the reference sensor, a height of the fixed reflection plate, and an area of a cross section of the fuel tank.
2. The apparatus of claim 1, wherein the fixed reflection plate is coupled to a member extending upwardly from the lower surface of the fuel tank, or is coupled to the measurement pipe.
3. The apparatus of claim 2, wherein the fuel tank is formed of a synthetic resin, and the member or the measurement pipe is formed of a material having a thermal expansion coefficient smaller than that of the synthetic resin forming the fuel tank.
4. The apparatus of claim 1, wherein the fixed reflection plate and the measurement pipe are located at the center of cross section of the fuel tank.
5. The apparatus of claim 1, wherein the calculation unit calculates an interval between the reference sensor and the fixed reflection plate by using the time measured by the reference sensor, and calculates the degree of expansion or contraction of the fuel tank by comparing the interval with a reference interval between the reference sensor and the fixed reflection plate when the fuel tank does not expand or contract.
6. The apparatus of claim 5, wherein the calculation unit calculates the residual amount of the fuel tank using the calculated degree of expansion or contraction of the fuel tank, a speed of the ultrasonic wave calculated by the time measured by the reference sensor, the height of the liquid level calculated by the time measured by the measurement sensor, and the area of the cross section of the fuel tank.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF MAIN ELEMENTS
(6) 10: ultrasonic sensor 11, 400: reference sensor 12, 200: measurement sensor 20: fuel tank 21: fuel 22: flange 23: PCB 100: measurement pipe 300: fixed reflection plate 310: supporting member
DETAILED DESCRIPTION OF EMBODIMENTS
(7) Hereinafter, an apparatus for measuring a residual amount of fuel in a fuel tank using an ultrasonic sensor according to various embodiments of the present invention will be described in detail with reference to the accompanying drawings, and after configurations included in the respective embodiments are briefly described, an organic operation between the configurations included in the embodiments of the present invention will be described in detail.
First Embodiment
(8)
(9) A fuel pump is installed in the fuel tank 20, but since the fuel pump installed in the fuel tank in the present invention is not greatly important, the fuel pump is omitted in the drawings and the first embodiment of the present invention will be described.
(10) The fuel tank 20 illustrated in
(11) The fuel tank 20 is generally made of a synthetic resin material in consideration of easiness of manufacturing a fuel tank and manufacturing cost of the fuel tank. In a case in which the fuel tank 20 is made of the synthetic resin material, the fuel tank 20 may expand or contract according to a change in temperature due to various factors.
(12) The measurement pipe 100 illustrated in
(13) It is preferable that the measurement pipe 100 is formed of a material having a small thermal deformation, that is, a material having a small thermal expansion coefficient depending on a change in temperature. In particular, the measurement pipe 100 may be formed of a material having a thermal expansion coefficient smaller than that of the synthetic resin, which is the material of the fuel tank 20.
(14) Since the measurement pipe 100 is in the shape of a pipe or tube whose upper side and lower side are opened, a pressure inside the measurement pipe 100 is equal to an internal pressure of the fuel tank 20. Therefore, a height of the fuel introduced into the measurement pipe 100 becomes equal to a height of the fuel 21 accommodated in the fuel tank 20.
(15) As illustrated in
(16) As illustrated in
(17) As illustrated in
(18) The calculation unit calculates a residual amount of the fuel tank by using the time measured by the measurement sensor, the time measured by the reference sensor, the height of the fixed reflection plate, and an area of a cross section of the fuel tank.
(19) Hereinafter, a process of calculating the residual amount of the fuel tank using the apparatus for measuring the residual amount of the fuel in the fuel tank according to the first embodiment of the present invention will be described in detail with reference to the accompanying drawings.
(20) The fuel tank 20 illustrated in
(21)
(22) Since a height H.sub.2 of the fixed reflection plate 300 and a height (in more detail, a height from the lower surface of the fuel tank 20 to the measurement sensor 200) H.sub.3 of the fuel tank 20 are numeric values known to a user as initial design values, an error value Err is calculated by the following Equation.
Err=H.sub.3−(H.sub.1+H.sub.2) [Equation 2]
(23) The error value Err is a value indicating whether the fuel tank 20 has contracted or expanded in a vertical direction when compared with the initial design value of the fuel tank 20. When the error value Err is 0 or is within a tolerance range, the fuel tank 20 is in a state in which the fuel tank 20 does not expand or contract. When the error value Err is a negative number and deviates from the tolerance range, the fuel tank 20 is in an expanded state. When the error value Err is a positive number and deviates from the tolerance range, the fuel tank 20 is in a contracted state.
(24) When the fuel tank 20 does not expand as illustrated in
(25) After calculating the error value Err by Equation 2, the measurement sensor 200 emits the ultrasonic waves toward the liquid level of the fuel accommodated in the measurement pipe 100, measures the time t.sub.2 until the emitted ultrasonic waves are reflected from the liquid level of the fuel and are incident on the measurement sensor 200, calculates H.sub.4, which is a distance between the measurement sensor 200 and the liquid level of the fuel by multiplying a half of t.sub.2 by the speed of the ultrasonic waves in the same manner as Equation 1, and then calculates a height H.sub.level of the liquid level by the following Equation.
H.sub.level=H.sub.3−H.sub.4−Err [Equation 3]
(26) The calculation unit may calculate the residual amount of the fuel accommodated in the fuel tank 20 by multiplying the height H.sub.level of the liquid level by a cross section of the fuel tank 20 in a horizontal direction. However, a method of calculating the residual amount of the fuel by multiplying the height H.sub.level of the liquid level by the cross section of the fuel tank 20 in the horizontal direction describes a case in which the state in which the fuel tank 20 is expanded or contracted as illustrated in
(27) In the above-mentioned process, the propagation speed of the ultrasonic waves in the air may be changed depending on the temperature, but since the distance between the fixed reflection plate 300 and the reference sensor 400 is relatively as short as 1 m or less, the propagation speed of the ultrasonic waves in the calculation unit may be determined as a constant of 340 m per second and the above-mentioned process may be calculated. However, in order to more accurately perform the calculation, a separate temperature sensor is provided in the fuel tank. The calculation unit may calculate the residual amount of the fuel by using different propagation speeds of the ultrasonic waves depending on the temperature measured by the temperature sensor. In addition to this, an ultrasonic sensor is installed on the upper portion of the fuel tank to emit ultrasonic waves in the horizontal direction and a reflection plate for reflecting the ultrasonic waves emitted from the ultrasonic sensor is additionally provided. Thus, the propagation speed of the ultrasonic waves in the air in the fuel tank is calculated in real time, thereby making it possible to more accurately calculate the height of the liquid level.
(28) Hereinafter, a process of measuring the height of the liquid level of the fuel through Equations 1 to 3 when the fuel tank 20 has expanded or contracted will be described in detail.
(29)
(30) In
(31) In the state of
(32) Thereafter, the measurement sensor 200 emits the ultrasonic waves toward the liquid level of the fuel accommodated in the measurement pipe 100, measures the time t.sub.2′ until the emitted ultrasonic waves are reflected from the liquid level of the fuel and are incident on the measurement sensor 200, calculates H.sub.4′, which is a distance between the measurement sensor 200 and the liquid level of the fuel by multiplying a half of the time that the ultrasonic waves emitted from the measurement sensor 200 propagate by the speed of the ultrasonic waves in the same manner as Equation 1, and then calculates the height H.sub.level of the liquid level of the fuel by Equation 3. Since H.sub.4′ is greater than H.sub.4, but the error value Err, which is the negative number, compensates for a difference between H.sub.4′ and H.sub.4, the calculation unit may accurately calculate the height H.sub.level of the liquid level of the fuel.
(33) The process described above may also be applied to a case in which the fuel tank 20 illustrated in
Second Embodiment
(34) Hereinafter, an apparatus for measuring a residual amount of fuel in a fuel tank using an ultrasonic sensor according to a second embodiment of the present invention will be described in detail with reference to the accompanying drawings.
(35)
(36) As illustrated in
(37) A height of the supporting member 310 illustrated in
(38) The reason why the supporting member 310 is installed is that when the measurement pipe 100 itself is formed of a tube material to increase sensitivity of the ultrasonic sensor (the measurement sensor 200 of the present invention), if the fixed reflection plate 300 is connected to a middle end of the measurement pipe 100, the fixed reflection plate 300 itself may not have sufficient strength to be fixed.
(39) The measurement pipe 100 to which the fixed reflection plate 300 is connected in the first embodiment as described above and the supporting member 310 in the second embodiment may be located at the center of the fuel tank. This is because the center portion of the fuel tank is most deformed when the fuel tank 20 is thermally deformed, and it is necessary to reflect the error of the most deformed portion in the measurement of the residual amount of the fuel.
(40) According to the apparatus for measuring the residual amount of the fuel in the fuel tank using the ultrasonic sensor according to various embodiments as described above, since the measurement sensor that measures the level of the fuel accommodated in the fuel tank and the reference sensor serving as the reference of the measurement sensor are located at the upper portion of the fuel tank, the wirings may be formed at the upper portion of the fuel tank, the wirings may be simplified, and the assembly method of the fuel tank may be simplified.
(41) In addition, according to the present invention, since the calculating unit determines whether the fuel tank has expanded or contracted through the height of the fixed reflection plate measured by the reference sensor and reflects the determination result in the calculation of the residual amount of fuel accommodated in the fuel tank, the residual amount of the fuel may be more accurately calculated.
(42) The present invention is not limited to the above-mentioned embodiments, and may be variously applied, and may be variously modified without departing from the gist of the present invention claimed in the claims.