Flow rate measuring device
10030601 ยท 2018-07-24
Assignee
Inventors
Cpc classification
F02D2200/0418
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10393
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01M15/05
PHYSICS
F02M35/10386
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02D41/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01M15/05
PHYSICS
Abstract
The present disclosure provides a flow rate measuring device including a flow rate detecting body, a humidity detecting body, and a base. The flow rate detecting body protrudes inside of an intake passage. The humidity detecting body protrudes inside of the intake passage at a position away from the flow rate detecting body. The base is connected to the flow rate detecting body and the humidity detecting body. The humidity detecting body holds a sensor chip that includes a humidity detecting element sensitive to the humidity of the intake air. A length, along a flow direction of the intake air, of an exposed portion of the humidity detecting body is defined as a referential length. The humidity detecting element exists within a range from an upstream end of the exposed portion of the humidity detecting body to a position of half the referential length.
Claims
1. A flow rate measuring device comprising: a flow rate detecting body that protrudes inside of an intake passage through which an intake air to be taken in an internal combustion engine flows, the flow rate detecting body detecting a flow rate of the intake air; a humidity detecting body that protrudes inside of the intake passage at a position away from the flow rate detecting body, the humidity detecting body detecting a humidity of the intake air; and a base that is connected to the flow rate detecting body and the humidity detecting body, the base serving as a root portion of the flow rate detecting body and the humidity detecting body, wherein the humidity detecting body holds a sensor chip that includes a humidity detecting element sensitive to the humidity of the intake air, the humidity detecting element is disposed on a surface of the sensor chip and the humidity detecting body holds the sensor chip such that the humidity detecting element is exposed inside of the intake passage, a length, along a flow direction of the intake air, of an exposed portion of the humidity detecting body that is exposed inside of the intake passage is defined as a referential length, and the humidity detecting element exists within a range from an upstream end of the exposed portion of the humidity detecting body to a position of half the referential length.
2. The flow rate measuring device according to claim 1, wherein a length, along the flow direction of the intake air, of an exposed portion of the flow rate detecting body that is exposed inside of the intake passage is defined as a supplemental referential length, and the humidity detecting element exists upstream of a position of half the supplemental referential length.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above and other objects, features and advantages of the present invention will become more apparent from the following detailed description made with reference to the accompanying drawings. In the drawings:
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DETAILED DESCRIPTION
(9) As follows, a plurality of embodiments of the present disclosure will be described in detail. It is needless to say that the embodiments are some examples of the present disclosure, and therefore the present disclosure is not limited to these embodiment. Furthermore, each of the substantially same structures among the embodiments will be assigned to the respective common referential numeral and the description of the substantially same structures will be omitted in the subsequent embodiments
(10) Referring to
(11) The flow rate measuring device 1 is disposed in an intake passage 2 of an internal combustion engine for a vehicle to detect a flow rate and a humidity of an intake air flowing through the intake passage 2.
(12) Hereinafter, a flow direction of the intake air in the intake passage 2 may be referred to as a direction F.
(13) The flow rate measuring device 1 includes a flow rate detecting body 3, a humidity detecting body 5, and a base 6, which will be described later.
(14) The flow rate detecting body 3 holds a flow rate chip 10. The flow rate detecting body 3 protrudes inside of the intake passage 2, through which an intake air to be taken in the internal combustion engine, to detect a flow rate of the intake air.
(15) The flow rate detecting body 3 is formed of rein material and defines a passage therein.
(16) A bypass passage 12 and a sub bypass passage 13 are formed as the passage defined in the flow rate detecting body 3, for example.
(17) The bypass passage 12 is a passage through which a portion of the intake air from the intake passage 2 flows. The bypass passage 12 is formed to extend along the direction F. An inlet 12a is defined at an upstream side of the bypass passage 12, and an outlet 12b is defined at a downstream side of the bypass passage 12.
(18) An outlet throttle 12c is disposed at a downstream side of the bypass passage 12. The outlet throttle 12c narrows the bypass passage 12 to regulate a flow amount of the intake air in the bypass passage 12.
(19) The sub bypass passage 13 defines an inlet opening 13a and an outlet opening 13b. A portion of the intake air flowing through the bypass passage 12 regulated by the outlet throttle 12c flows into the inlet opening 13a. The intake air that passed through the sub bypass passage 13 is returned to the intake passage 2 through the outlet opening 13b. The intake air into the inlet opening 13a is guided to the outlet opening 13b after circulates inside the flow rate detecting body 3.
(20) The flow rate chip 10 includes, e.g., a flow rate detecting element 10a sensitive to a flow rate of the intake air. The flow rate detecting element 10a is a heat transfer type detector that measures a flow rate of the intake air flowing through the sub bypass passage 13 through heat transfer. The flow rate detecting element 10a includes a heat resistant element and a resistance temperature element that are disposed on a surface of the flow rate detecting element 10a. The flow rate chip 10 outputs signals according to a flow rate of the intake air to ECU (not shown) through a connecting terminal in a connector 15.
(21) The connector 15 is integrally formed with the base 6.
(22) The humidity detecting body 5 holds a humidity detecting chip 17. The humidity detecting body 5 protrudes inside of the intake passage 2 at a position away from the flow rate detecting body 3 to detect a humidity of the intake air.
(23) The humidity detecting body 5 extends a direction (hereinafter, referred to as a longitudinal direction) that is perpendicular to the direction F.
(24) The humidity chip 17 includes, e.g., a humidity detecting element 17a sensitive to a humidity of the intake air. The humidity detecting element 17a is disposed on a surface of the humidity chip 17, and the humidity chip 17 is held by the humidity detecting body 5 such that the humidity detecting element 17a is exposed inside the intake passage 2.
(25) Specifically, the humidity chip 17 is held at a side of the humidity detecting body 5 such that a surface of the humidity detecting element 17a extends in a direction parallel to the longitudinal direction and the direction F.
(26) The humidity detecting element 17a is a capacitive sensing type detector that varies its capacitance according to a humidity. The humidity detecting element 17a includes a polymer film on a surface thereof that varies its capacitance according to a humidity. The humidity chip 17 outputs signals according to a humidity of the intake air to the ECU through a connecting terminal of the connector 15.
(27) The humidity detecting body 5 is formed by embedding the humidity chip 17 held by a holding substrate 19, a lead terminal (not shown) electrically connected to the humidity chip 17, and so on, into a resin material.
(28) The holding substrate 19 is formed of a silicon substrate. By fixing the humidity chip 17 having less strength to the holding substrate 19, the humidity chip 17 can be easily handled.
(29) The base 6 is connected to both the flow rate detecting body 3 and the humidity detecting body 5, and serves as a root portion of the flow rate detecting body 3 and the humidity detecting body 5. The base 6 is formed by inserting a molten resin into a mold where ends of both the flow rate detecting body 3 and the humidity detecting body 5 are housed.
(30) The flow rate detecting body 3 includes a first exposed portion 20 that is a protruding portion from the base 6 and is exposed inside the intake passage 2. The humidity detecting body 5 includes a second exposed portion 22 that is a protruding portion from the base 6 and is exposed inside of the intake passage 2.
(31) An attachment hole is defined in the intake passage 2 at a position where the flow rate measuring device 1 is mounted. The attachment hole is open through the intake passage 2. The flow rate measuring device 1 is fixed to the intake passage 2 by fitting the base 6 of the flow rate measuring device 1 into the attachment hole.
(32) Here, a vertical cross-section and a parallel cross-section of the humidity detecting body 5 are defined as following.
(33) The vertical cross-section is a cross-section that is perpendicular to the longitudinal direction. The parallel cross-section is a cross-section that is parallel to the longitudinal direction and the direction F.
(34) A length of the second exposed portion 22 of the humidity detecting body 5 along a flow direction of the intake air is defined as a referential length Lh.
(35) The humidity detecting element 17a exists within a range from an upstream end of the second exposed portion 22 to a position of half the referential length (i.e., *Lh), as shown in
(36) A length of the first exposed portion 20 of the flow rate detecting body 3 along the flow direction of the intake air is defined as a supplemental referential length Lf.
(37) The humidity detecting element 17a exists upstream of a position of half the supplemental referential length Lf (i.e., *Lf), as shown in
(38) The vertical cross-section of the humidity detecting body 5 exhibits a streamlined shape along the flow direction of the intake air (see
(39) Specifically, the vertical cross-section of the humidity detecting body 5 has a width along a direction P perpendicular to the direction F gradually increases from the upstream side to a middle position and then gradually decreases from the middle position to the downstream side.
(40) The humidity detecting element 17a exists at a position where the width along the direction P in the vertical cross-section has a maximum value (see
(41) Furthermore, in the parallel cross-section of the humidity detecting body 5, a protruding end 5a of the humidity detecting body 5 exhibits a streamlined shape along the flow direction of the intake air (see
(42) In the flow rate measuring device 1 according to the present embodiment, the humidity detecting element 17a exists within the range from the upstream end of the second exposed portion 22 of the humidity detecting body 5 to the position of half the referential length Lh.
(43) Therefore, the humidity detecting element 17a is positioned upstream of the center point of the humidity detecting body 5 in the flow direction of the intake air.
(44) Hence, a heat amount transferred to the intake air reaching the humidity detecting element 17a from the humidity detecting body 5 becomes small as compared to a case where the humidity detecting element 17a is positioned downstream of the center point of the humidity detecting body 5.
(45) As a result, an increase in a temperature of the intake air when passing through the humidity detecting element 17a can be suppressed.
(46) Accordingly, an increase in a temperature of the humidity detecting element 17a of the flow rate chip 17 can be suppressed in the flow rate measuring device 1 arranged in the intake passage 2.
(47) According to the flow rate measuring device 1 of the present embodiment, the humidity detecting element 17a exists upstream of the position of half the supplemental referential length Lf in the first exposed portion 20.
(48) Accordingly, the humidity detecting element 17a is positioned upstream of the center point of the flow rate detecting body 3 in the flow direction of the intake air.
(49) As such, a heat amount transferred to the intake air reaching the humidity detecting element 17a from the flow rate detecting body 3 is small as compared to a case where the humidity detecting element 17a is positioned downstream of the center point of the flow rate detecting body 3.
(50) As a result, an increase in a temperature of the intake air when passing through the humidity detecting element 17a can be suppressed.
(51) Accordingly, an increase in a temperature of the humidity detecting element 17a of the flow rate chip 17 can be suppressed in the flow rate measuring device 1 arranged in the intake passage 2.
Modification to the Embodiment
(52) In the above-described embodiment, the vertical cross-section of the humidity detecting body 5 has the same shape regardless of the position in the longitudinal direction where the vertical cross-section is taken. Alternatively, the vertical cross-section of the humidity detecting body 5 may have a different shape with the position where the vertical cross-section is taken. For example, the vertical cross-section taken at a position close to the base 6 may be larger than the vertical cross-section taken at a position away from the base 6, as shown in