Temperature sensor
10656022 ยท 2020-05-19
Assignee
Inventors
Cpc classification
G01K2205/00
PHYSICS
B60L58/24
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
G01K1/14
PHYSICS
G01K1/16
PHYSICS
International classification
G01K1/00
PHYSICS
G01K1/14
PHYSICS
G01K1/16
PHYSICS
G01K7/00
PHYSICS
Abstract
The present invention provide a temperature sensor including a sensor main body having a contact surface for contacting with the upper surface of a battery cell, a mounting member holding the sensor main body and attaching it to the battery cell, and a coil spring arranged between the sensor main body and the mounting member. When viewing from an opposite side to the contact surface, the center P1 of the contact surface coincides with the center P2 of a trajectory connecting a pressing point pressed by the coil spring. When the mounting member is inclined due to inclination of a resin member mounted on the upper surface of the battery, the temperature sensor can absorb all inclinations by the coil spring, and prevent the contact surface away from the upper surface of the battery cell.
Claims
1. A temperature sensor comprising: a sensor main body having a contact surface for contacting with a temperature sensing portion; a mounting member holding the sensor main body from an opposite side to the contact surface and attaching the sensor main body to the temperature sensing portion; and an elastic member arranged between the sensor main body and the mounting member and pressing the sensor main body from the opposite side to the contact surface, wherein a convex portion arranged on the sensor main body is configured to control a position gap of the elastic member in a radial direction of one end of the elastic member so that a center of the contact surface is positioned within an area of a trajectory connecting a pressing point pressed by the elastic member when viewing from the opposite side to the contact surface.
2. The temperature sensor according to claim 1, the mounting member is a cover shape for covering the sensor main body and the elastic member.
3. The temperature sensor according to claim 1, wherein the mounting member has an elastic member holding portion that is arranged in a cylindrical shape around the elastic member and extends downward from a ceiling wall of the mounting member.
4. The temperature sensor according to claim 1, wherein the convex portion holds the elastic member with a base portion of the convex portion that is vertically extending from the sensor main body towards a ceiling wall of the mounting member and a tip portion of the convex portion which is tapered with increasing distance from the base portion.
5. The temperature sensor according to claim 1, wherein the elastic member is a plurality of coil springs.
6. The temperature sensor according to claim 1, wherein the elastic member is a coil spring, and the trajectory connecting the pressing point pressed by the coil spring is a circular form.
7. The temperature sensor according to claim 6, the mounting member is a cover shape for covering the sensor main body and the elastic member.
8. The temperature sensor according to claim 1, wherein the mounting member has locking holes arranged on a first and a second side wall and the sensor main body has locking projections on a first and second side wall that fit within the locking holes on the mounting member.
9. The temperature sensor according to claim 8, wherein the locking holes on the mounting member are formed larger than the locking projections on the sensor main body.
10. The temperature sensor according to claim 1, wherein the sensor main body locks into the mounting member with the elastic member arranged between the mounting member and the sensor main body, and wherein the mounting member locks into locking frames on the temperature sensing portion.
11. The temperature sensor according to claim 10, wherein the temperature sensing portion is an upper surface of a battery cell.
12. The temperature sensor according to claim 11, wherein locking portions on an exterior of a first and a second side wall of the mounting member lock into the locking frames on the upper surface of the battery cell.
13. The temperature sensor according to claim 1, wherein the center of the contact surface coincides with a center of the trajectory connecting the pressing point pressed by the elastic member.
14. The temperature sensor according to claim 13, the mounting member is a cover shape for covering the sensor main body and the elastic member.
15. The temperature sensor according to claim 13, wherein the elastic member is a coil spring, and the trajectory connecting the pressing point pressed by the coil spring is a circular form.
16. The temperature sensor according to claim 15, the mounting member is a cover shape for covering the sensor main body and the elastic member.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENT
(10) A temperature sensor according to one embodiment of the present invention will be explained with reference to
(11) As shown in
(12) As shown in
(13) The thermistor 5 has an element portion 51, and a pair of lead portions 52 protruding from the element portion 51. The pair of lead portions 52 are jointed to core wires of a pair of electric wires 6 by soldering, respectively.
(14) The heat collecting plate 8 is obtained by pressing a metal plate. The heat collecting plate 8 has a rectangular plate bottom wall 81, a side wall 82 vertically standing from a short side of the bottom wall 81, and side walls 84, 85 vertically standing from long sides opposed to each other in the bottom wall 81. The bottom wall 81 comes into contact with the upper surface 100a of the cell 100a. Hereafter, the bottom wall 81 is referred to as a contact surface 81 (Accurately, the lower surface of the bottom wall 81 is the contact surface). In the side walls 82, 84 and 85, through holes 88 are respectively provided.
(15) The regulating member 7 is to prevent contact with the thermistor 5 and the heat collecting plate 8 or the electric wire 6 and the heat collecting plate 8, and is made of insulating synthetic resin. The regulating member 7 has a rectangular plate bottom wall 71, a side wall 72 vertically standing from a short side of the bottom wall 71, side walls 74 and 75 vertically standing from long sides opposed to each other in the bottom wall 71, and a standing portion 73 vertically standing from the bottom wall 71 and positioned between the side walls 74 and 75.
(16) The side wall 72 is not connected to the side walls 74 and 75. In other words, both ends of the side wall 72 and each of ends of the side walls 74 and 75 are arranged with intervals. Further, in the side walls 74 and 75, cutouts 74a and 75a are formed. Furthermore, in side walls 72, 74 and 75, hemisphere bosses 78 engaged to the through holes 88 of the heat collecting hole 88 described above.
(17) The side wall 72 and the standing portion 73 are arranged with an interval. As shown in
(18) The side wall 74 and the standing portion 73 are arranged with an interval. As shown in
(19) The side wall 75 and the standing portion 73 are arranged with an interval. As shown in
(20) The above portion between the side wall 72 and the standing portion 73, a portion between the side wall 74 and the standing portion 73, and a portion between the side wall 75 and the standing portion 73 are collectively referred to as a receiving portion 76. As such that, in the regulating member 7, the receiving portion 76 is provided so as to receive the thermistor 5 and the end of the electric wire 6 electrically connected to the thermistor 5 and position them.
(21) The regulating member 7 is fitted between the side walls 84 and 85 of the heat collecting plate 8 such that the bottom wall 71 is overlapped with the upper surface of the bottom wall 81, the side wall 72 is overlapped with the side wall 82, the side wall 74 is overlapped with the side wall 84, and the side wall 75 is overlapped with the side wall 85. Then, the regulating member 7 is assembled in the heat collecting plate 8 by engaging each of the bosses 78 with each of the through holes 88 corresponding to the bosses.
(22) The holding portion 9 is made of insulating synthetic resin. As shown in
(23) When injection molding the holding portion 9 by using a die, the thermistor 5, the pair of electric wires 6, the regulating member 7 and the heat collecting plate 8 are inserted into the die, and thereby they are integrated with the holding portion 9. As shown in
(24) As shown in
(25) Such convex portion 97 retractably holds the coil spring 4 together with a spring holding portion 38 of the mounting member 3 described below. Moreover, in the convex portion 97, the base portion 97a controls position gap in a radial direction of one end of the coil spring 4 (position gap in a planer direction of the upper surface 92), and the tip portion 97b allows displacement of the middle portion of the coil spring 4 in the radial direction.
(26) The mounting member 3 is made of insulating synthetic resin. As shown in
(27) The locking hole 36 is a through hole in which the locking projection 96 of the sensor main body 2 described above is engaged. The locking hole 36 is formed larger than the locking projection 96, and thereby the locking projection 96 is able to be freely inclined within the locking hole 36.
(28) As shown in
(29) The spring holding portion 38 is a part for holding the coil spring 4 which is arranged on the outer periphery of the coil spring 4, and extends in cylindrical shape downward from the ceiling wall 32 as shown in
(30) Such spring holding portion 38 retractably holds the coil spring 4 together with the convex portion 97 of the sensor main body 2 described above. Further, in the spring holding portion 38, the base portion 38a controls position gap of the other end of the coil spring 4 in the radial direction (position gap of the ceiling wall 32 in the planar direction), and the enlarged diameter portion 38b allows displacement of the middle portion of the coil spring 4 in the radial direction.
(31) In the mounting member 3, the sensor main body 2 is positioned between the side walls 34 and 35 such that the ceiling wall 32 is opposed to the upper surface 92. The mounting member 3 holds the sensor main body 2 by engaging each of the locking projections 96 to each of the locking hole 36 corresponding to the locking projection 96.
(32) The coil spring 4 is formed by winding a linear metal material in spirals. The coil spring 4 is retractably held by the above convex portion 97 and the spring holding portion 38. The coil spring 4 is located between the sensor main body 2 and the mounting member 3 in a compressed state, and presses in a direction distancing the upper surface 92 of the sensor main body 2 from the ceiling wall 32 of the mounting member 3.
(33) Further, as shown in
(34) Furthermore, in a natural state that the temperature sensor 1 is not attached to the upper surface 100a of the cell 100, as shown in
(35) The temperature sensor 1 is located between the pair of locking frames 102 opposed to each other, and attached to the upper surface 100a of the cell 100 by locking the pair of lock portions 37 at a side wall 34 side in one of the locking frame 102, and locking the pair of lock portions 37 at a side wall 35 side in the other of the locking frame 102.
(36) When the temperature sensor 1 is attached to the upper surface 100a of the cell 100, the mounting member 3 is pressed by the pair of locking frames 102, and thereby the coil spring is bent with the stroke pressed. As a result, the coil spring 4 presses the sensor main body 2 from an upper surface 92 side, and presses the contact surface 81 into the upper surface 100a of the cell 100. In this way, a certain pressure or more is applied to the contact surface 81, and thereby accurate measured temperature can be obtained.
(37) The above resin member 101 may cause inclination for the upper surface 100a of the cell 100 due to installation tolerance or the like. When the mounting member 3 is inclined by inclination of the resin member 101, the temperature sensor 1 having the above structure can absorb inclination in all directions by the coil spring 4, and can prevent the contact surface 81 away from the upper surface 100a of the cell 100. By such that, the temperature of the cell 100 can be accurately measured.
(38) Further, since the coil spring 4 is made of metal, there is no damping of the spring force due to creep like a resin spring.
(39) In the embodiment described above, one large coil spring 4 is provided, but instead of it, as shown in
(40) Further, in order to constitute area with the trajectory connecting the pressing point pressed by the elastic member such as the above coil spring 4 or 104, at least three the pressing points are required. Thus, if there are at least three the pressing points, and the center P1 of the contact surface 81 is located within the area of the trajectory connecting those pressing points, the number of the elastic members may be one or plural. Also, when pressing force is linear like the above embodiment, the line (pressing line) consider as a collection of pressing points.
(41) In the embodiment described above, the coil spring 4 or 104 is used as elastic member. However, instead of the coil spring 4 or 104, another elastic member such as cylindrical rubber may be used. Further, material of the coil spring 4 or 104 is not limited to metal.
(42) Further, the phrase center of the contact surface in the specification means gravity of the contact surface when viewing the contact surface in plane. That is, it has no connecting with the actual mass of the sensor main body, the center of gravity of the contact surface as the figure on the assumption that the mass of the sensor main body is uniformly distributed to all regions of the contact surface is the center of the contact surface in the specification. Similarly, the phrase center of the trajectory connecting the pressing point pressed by the elastic member has no connecting with the mass. Its phase is the center of gravity of the contact surface when the trajectory is viewed as a planner figure.
(43) The above-described embodiments merely indicate representative modes of the invention, and the invention is not restricted to the embodiments. That is, those skilled in the art may variously modify and implement the embodiments within a range not departing from a subject matter of the invention according to conventionally known knowledge. When a configuration of a feeding mechanism of the invention is included according to the modification, the modification falls under the category of the invention.
REFERENCE SIGNS LIST
(44) 1 temperature sensor 2 sensor main body 3 mounting member 4 coil spring (elastic member) 81 contact surface 100a upper surface of cell (temperature sensing portion)