Electronic brake motor structure with ball screw
11608868 ยท 2023-03-21
Assignee
Inventors
Cpc classification
H02K5/1737
ELECTRICITY
F16D65/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/06
ELECTRICITY
H02K5/24
ELECTRICITY
F16D2125/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2121/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K2203/09
ELECTRICITY
H02K11/215
ELECTRICITY
F16D65/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2025/2075
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
H02K5/22
ELECTRICITY
H02K11/215
ELECTRICITY
F16D65/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An electronic brake motor structure includes a lower housing coupled to a block; a ball screw installed in the center inside the housing and block; a nut member into which the ball screw penetrates to be coupled therewith; a piston coupled to an outer side of the nut member; a hollow shaft coupled to an outer side of a lower part of the piston; a rotor module including a rotor and a magnet, coupled to an outer side of the hollow shaft; a stator module coupled to an outer side of the rotor module; an upper bracket for mounting a first bearing to thereinside; a driven shaft, coupled to an upper part of the ball screw to support the ball screw; a joint member coupled to a bottom of the ball screw with a mounting bolt to support the ball screw and a fourth bearing.
Claims
1. An electronic brake motor structure with ball screw, comprising: a lower housing (20) coupled to a block (10); a ball screw (30) installed in the center inside the lower housing (20) and block (10), the ball screw having a screw (31) formed on an outer circumferential surface thereof; a nut member (40) into which the ball screw (30) penetrates to be coupled therewith, the nut member having a groove pattern corresponding to the ball screw on an inner circumferential surface thereof; a piston (50) coupled to an outer side of the nut member (40); a hollow shaft (60) coupled to an outer side of a lower part of the piston (50); a rotor module (R) comprising a rotor (70) and a magnet (80), coupled to an outer side of the hollow shaft (60); a stator module (S) coupled to an outer side of the rotor module (R); an upper bracket (100) for mounting a first bearing (90) thereinside while supporting an upper part of the stator module (S); a driven shaft (120) made of a brass material, coupled to an upper part of the ball screw (30) to support the ball screw; and a joint member (160) coupled to a bottom of the ball screw with a mounting bolt (170) to support the ball screw (30) and a fourth bearing (180), wherein the first bearing (90) is installed on an annular locking protrusion (60A) formed on an outer side of an upper part of the hollow shaft (60), and the rotor module (R) is installed on an annular locking protrusion (60B) formed on an outer side of a lower part of the hollow shaft (60), and wherein the electronic brake motor structure with ball screw comprises a thermistor mounting means (400) and a bus-bar mounting means (500) which are installed on an upper insulator (300) coupled to an upper part of the stator module (S), and wherein an engaged annular protrusion (61) formed by curling an upper part of the hollow shaft (60) outwards presses and supports an upper part of an inner race of the first bearing (90), and an outer side of an outer race of the first bearing (90) is brought into contact with an inside of a supporting member (130E) installed on the outer circumference of the piston (50) inside the block (10).
2. The electronic brake motor structure with ball screw according to claim 1, wherein the nut member (40) is coupled to an outer side of a lower part of the ball screw (30), and the upper bracket 100) is fastened and coupled between the lower housing (20) and the block (10) with a fastening bolt (110).
3. The electronic brake motor structure with ball screw according to claim 1, wherein a second bearing (140) is installed in an annular protrusion (120A) of the driven shaft (120) and a motor speed sensing magnet sensor (150) is installed in an upper central recess of the annular protrusion (120A) of the driven shaft (120).
4. The electronic brake motor structure with ball screw according to claim 1, wherein the joint member (160) comprises a central insertion part (160A); a fastening hole (160C) formed in the center of a middle stepped portion (160B) of the central insertion part (160A); and an upper cylindrical supporting part (160D) and a lower cylindrical supporting part (160E).
5. The electronic brake motor structure with ball screw according to claim 4, wherein a lower end portion of the ball screw is mounted on and coupled to an upper part of the stepped portion (160B) while press-fitting and inserting the ball screw (30) inside the central insertion part (160A) of the joint member (160) and a head portion of the fastening hole (160C) is brought into contact with a lower part of the stepped portion (160B).
6. The electronic brake motor structure with ball screw according to claim 1, wherein the fourth bearing (180) is installed between an inner side of a lower recess of a lower housing (20) and an outer side of the lower cylindrical supporting part (160E) of the joint member (160).
7. The electronic brake motor structure with ball screw according to claim 1, wherein the hollow shaft (60) and the joint member (160) are integrally formed.
8. The electronic brake motor structure with ball screw according to claim 1, wherein the thermistor mounting means (400) comprising a thermistor mounting holder (310) protrudingly formed on one side of the upper insulator (300) coupled to the stator module (S) is installed.
9. The electronic brake motor structure with ball screw according to claim 1, wherein a thermistor mounting means (400) comprises the thermistor mounting holder (310) protrudingly formed on one side of the upper insulator (300) and a thermistor housing (410) into which a thermistor sensor (420) stood by being inserted into the thermistor mounting holder (310) is inserted.
10. The electronic brake motor structure with ball screw according to claim 1, wherein an annular stop ring (190) is installed on the outer side of the hollow shaft (60) at the bottom of the inner race of the first bearing (90).
11. An electronic brake motor structure with ball screw, comprising: a lower housing (20) coupled to a block (10); a ball screw (30) installed in the center inside the lower housing (20) and block (10), the ball screw having a screw (31) formed on an outer circumferential surface thereof; a nut member (40) into which the ball screw (30) penetrates to be coupled therewith, the nut member having a groove pattern corresponding to the ball screw on an inner circumferential surface thereof; a piston (50) coupled to an outer side of the nut member (40); a hollow shaft (60) coupled to an outer side of a lower part of the piston (50); a rotor module (R) comprising a rotor (70) and a magnet (80), coupled to an outer side of the hollow shaft (60); a stator module (S) coupled to an outer side of the rotor module (R); an upper bracket (100) for mounting a first bearing (90) thereinside while supporting an upper part of the stator module (S); a driven shaft (120) made of a brass material, coupled to an upper part of the ball screw (30) to support the ball screw; and a joint member (160) coupled to a bottom of the ball screw with a mounting bolt (170) to support the ball screw (30) and a fourth bearing (180), wherein the first bearing (90) is installed on an annular locking protrusion (60A) formed on an outer side of an upper part of the hollow shaft (60), and the rotor module (R) is installed on an annular locking protrusion (60B) formed on an outer side of a lower part of the hollow shaft (60), and wherein the electronic brake motor structure with ball screw comprises a thermistor mounting means (400) and a bus-bar mounting means (500) which are installed on an upper insulator (300) coupled to an upper part of the stator module (S), and wherein the bus-bar mounting means (500) comprises a recess (320) formed on the circumferential surface of one side of the upper insulator (300); power connection terminal inserting holes (321, 322 323) formed in the recess (320); a coupling member (550) for connecting a first power supply terminal, elastically mounted on a first annular protrusion (330) inside the upper insulator (300); a coupling member (560) for connecting a second power supply terminal, elastically mounted on a second annular protrusion (340) inside the upper insulator (300); a coupling member (570) for connecting a third power supply terminal, elastically mounted on an inner circumference of a lower part of the upper insulator (300); and a bus-bar housing (510) into which bus-bar power connection terminals (520, 530 540) inserted and installed in the recess (320) are inserted, wherein locking protrusions 1550A, 560A 570A) protrudingly formed in the coupling member (550) for connecting the first power supply terminal, the coupling member (560) for connecting the second power supply terminal, and the coupling member (570) for connecting the third power supply terminal, respectively, are protrudingly formed through a plurality of locking holes (350) penetrated at predetermined intervals around the upper insulator (300).
12. The electronic brake motor structure with ball screw according to claim 11, wherein connection terminal insertion parts (550B, 560B 570B) into which the bus-bar power connection terminals (520, 530 540) of the coupling member (550) for connecting the first power supply terminal, the coupling member (560) for connecting the second power supply terminal, and the coupling member (570) for connecting the third power supply terminal are inserted, respectively, are located inside a lower guiding part (510A) of the bus-bar housing (510) into which the bus-bar power connection terminals (520, 530 540) inserted and installed in the recess (320) formed on the circumferential surface of one side of the upper insulator (300) are inserted, and the lower guiding part (510A) of the bus-bar housing (510) is inserted in the recess (320) formed on the circumferential surface of one side of the upper insulator (300).
Description
BRIEF DESCRIPTION OF DRAWINGS
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MODE FOR THE INVENTION
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(25) Embodiments of the present invention will be described with reference to the above-mentioned drawings.
(26) With reference to
(27) The nut member 40 having a groove pattern corresponding to the screw 31 of the ball screw 30 on an inner circumferential surface thereof is coupled to the outer side of the lower part of the ball screw 30, the piston 50 is coupled to the outer side of the nut member 40, and the rotor module R comprising a rotor 70 and a magnet 80, coupled to the outer side of the hollow shaft 60 coupled to the outer side of the lower part of the piston 50 is installed.
(28) An upper bracket 100 for mounting the first bearing 90 thereinside while supporting the upper part of the stator module S coupled to the outer side of the rotor module R is fastened and coupled between the lower housing 20 and the block 10 with a fastening bolt 110.
(29) Additionally, a driven shaft 120, made of a brass material, which supports the ball screw is inserted and fixed to the upper part of the ball screw 30, and the driven shaft 120 and the ball screw 30 are connected by a connecting member 130 having upper and lower threads. The second bearing 140 is installed on an annular protrusion 120A of the driven shaft 120. A motor speed sensing magnet sensor 150 may be installed in a recess of an upper central part of the annular protrusion 120A of the driven shaft 120, and a bearing supporting member 130B may be installed on an outer side of the third bearing 130A installed around an outer side of a central part of the connecting member 130 in order to rotate the connecting member 130 smoothly. Reference numeral 130C in the drawings denotes a cover of the piston 50, 130D denotes an inner supporting member of the piston, and N denotes a supporting member of the nut member 40.
(30) Meanwhile, reference numeral 700 in
(31) Also, as illustrated in
(32) As illustrated in
(33) A lower end portion of the ball screw is mounted on and coupled to an upper part of the stepped portion 160B while press-fitting and inserting the ball screw 30 inside the central insertion part 160A of the joint member 160. A head portion of the fastening hole 160C is brought into contact with a lower part of the stepped portion 160B, allowing solid coupling. Also, as illustrated in
(34) Especially, the nut member 40 allows an end portion 51 inside the piston 50 to contact one side of the upper part of the nut member 40 while being screw-coupled to the ball screw 30. An inner circumferential surface of the lower part of the piston 50 is configured to surround an outer side surface of the nut member 40. An outer circumferential surface of a lower part of the piston 50 is brought into contact with an inner side surface of the hollow shaft 60, and the first bearing 90 may be installed between the outer side surface of the upper part of the hollow shaft 60 and a recess inside the upper bracket 100.
(35) Therefore, as disclosed in the prior art, in case of raising the nut member 40 when the ball screw 30 rotates by using the nut member 40 without a piston, the nut member 40 needs to act as a piston as well, which makes the change in the height of the nut member and in the inner structure of the block very complicated. However, according to the present invention, the nut member 40 is coupled to the piston 50 so that the piston 50 can rise as the nut member 40 rises, which does not require the significant change in the inner structure of the block 10.
(36) As the upper part of the inner race of the first bearing 90 is coupled to the bent engaged annular protrusion 61 of the hollow shaft 60, and the outer side of the outer race of the first bearing 90 is brought into contact with the inner side of the supporting member 130E installed on the outer circumference of the piston 50 inside the block 10. Thereby, the first bearing 90 can be installed stably.
(37) Additionally, the annular stop ring 190 is welded and installed on the outer side of the hollow shaft 60 at the bottom of the inner race of the first bearing 90, and thereby the first bearing 90 can be installed more stably. Additionally, the packing 200 is installed between a protrusion 52 of the upper part of the piston 50 and a protrusion 12 of the block 10, and thereby the leakage of brake oil can be prevented.
(38) More specifically, as illustrated in
(39) Also, as illustrated in
(40) Therefore, according to the present invention, the first bearing 90 is press-fitted and the rotor module R is sliding-assembled in the annular locking protrusions 60A and 60B, respectively, on the outer circumference of the upper and lower parts of the hollow shaft 60 of the present invention, thereby shortening assembly process and allowing solid assembly.
(41) Furthermore, reference numeral 300 illustrated in
(42) According to the present invention, the lower part of the ball screw 30 which helps rotation is assembled with the joint member 160, and the upper part thereof is supported by the driven shaft 120, thereby improving assemblability and reducing manufacturing costs. Additionally, through solid coupling, the present invention has the effect of promoting smooth rotation without shaking when the rotor module R operates, thereby reducing noises and vibration, and also sensing the motor speed by the motor speed sensing magnet sensor 150, thereby smoothly controlling the motor.
(43) Additionally, through solid coupling, the present invention has the effect of promoting smooth rotation without shaking when the rotor module R operates, thereby reducing noises and vibration, and also sensing the motor speed by the motor speed sensing magnet sensor 150, thereby smoothly controlling the motor.
(44) Additionally, according to the present invention, the nut member 40 rotates and rises when the ball screw 30 rotates, which causes the end portion 51 of the piston 50 to rise and the upper part of the piston 50 to be guided inside an inner guiding space part 13 of the block 10, thereby inducing the ejection of brake oil.
(45) According to the present invention, the ball screw 30 stably rotates by the second bearing 140 and the third bearing 130A on the outer circumference of the connecting member 130 when the rotor module R operates. The hollow shaft 60 rotating ac-cordingly rotates the joint member 160 while rotating smoothly by the first bearing 90, and rotates more smoothly by the fourth bearing 180. Also, the lower part of the ball screw 30 stably rotates by the fourth bearing 180 while being supported by the joint member 160 and the mounting bolt 170 in the recess of the lower housing 20.
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(48) According to the above-described drawings, the thermistor mounting means 400 comprising a thermistor mounting holder 310 protrudingly formed on one side of the upper insulator 300 coupled to the stator module S is installed, and the bus-bar mounting means 500 is installed in the recess 320 formed on the circumferential surface of one side of the upper insulator 300.
(49) The thermistor mounting means 400 comprises the thermistor mounting holder 310 protrudingly formed on one side of the upper insulator 300; and the thermistor housing 410 into which the thermistor sensor 420 stood by being inserted into the thermistor mounting holder 310 is inserted. The thermistor sensor 420 is protrudingly formed in a sensor guiding hole 14 formed by passing through the block 10 illustrated in
(50) Additionally, the bus-bar mounting means 500 comprises the recess 320 formed on the circumferential surface of one side of the upper insulator 300; power connection terminal inserting holes 321 and 322, and the power connection terminal inserting hole 323 (said inserting holes may be formed as long holes), formed in the recess; the coupling member 550 for connecting the first power supply terminal, elastically mounted on the first annular protrusion 330 inside the upper insulator 300 in the recess 320 formed on the circumferential surface of one side of the upper insulator 300; the coupling member 560 for connecting the second power supply terminal, elastically mounted on the second annular protrusion 340 inside the upper insulator 300; the coupling member 570 for connecting the third power supply terminal, elastically mounted on the inner circumference of the lower part of the upper insulator 300; and the bus-bar housing 510 into which the bus-bar power connection terminals 520, 530 and 540 inserted and installed in the recess 320 are inserted. Locking protrusions 550A, 560A and 570A protrudingly formed in the coupling member 550 for connecting the first power supply terminal, the coupling member 560 for connecting the second power supply terminal, and the coupling member 570 for connecting the third power supply terminal, respectively, may be protrudingly formed through a plurality of locking holes 350 penetrated at predetermined intervals around the upper insulator 300.
(51) The coupling member 550 for connecting the first power supply terminal, the coupling member 560 for connecting the second power supply terminal, and the coupling member 570 for connecting the third power supply terminal are molded with an elastic member made of an insulating material having elasticity. Thus, even though the coupling members are mounted on different locations of the upper insulator 300, each of the locking protrusions 550A and 560A, and the locking protrusion 570A may protrude through the plurality of locking holes 350 (said locking holes may be formed as long holes) formed by being penetrated at predetermined intervals around the upper insulator 300. Another forming structure may be used, for example, cutting parts through which the locking protrusions 550A and 560A, and the locking protrusion 570A can be taken out may be formed on the inner side of the upper insulator 300, or the height of the locking hole 350 may be changed.
(52) Also, the locking protrusions 550A and 560A, and the locking protrusion 570A may be protrudingly formed by taking out flat members of the coupling member 550 for connecting the first power supply terminal, the coupling member 560 for connecting the second power supply terminal, and the coupling member 570 for connecting the third power supply terminal through the locking holes 350 and bending the flat members. Connection terminal insertion parts 550B, 560B and 570B, to be described below, into which the bus-bar power connection terminals 520, 530 and 540 of the coupling member 550 for connecting the first power supply terminal, the coupling member 560 for connecting the second power supply terminal, and the coupling member 570 for connecting the third power supply terminal, respectively, are inserted may be taken out through the power connection terminal inserting holes 321, 322 and 323. The bus-bar power connection terminals 520, 530 and 540 inserted into the connection terminal insertion parts 550B, 560B and 570B, respectively, may be connected to a circuit board 800.
(53) The connection terminal insertion parts 550B, 560B and 570B into which the bus-bar power connection terminals 520, 530 and 540 of the coupling member 550 for connecting the first power supply terminal, the coupling member 560 for connecting the second power supply terminal, and the coupling member 570 for connecting the third power supply terminal are inserted, respectively, are located inside a lower guiding part 510A of the bus-bar housing 510 into which the bus-bar power connection terminals 520, 530 and 540 inserted and installed in the recess 320 formed on the circumferential surface of one side of the upper insulator 300 are inserted. The lower guiding part 510A of the bus-bar housing 510 is inserted into the recess 320 formed on the circumferential surface of one side of the upper insulator 300, and thereby the lower guiding part 510A of the bus-bar housing 510 can be maintained to be coupled without shaking.
(54) The bus-bar power connection terminals 520, 530 and 540 are taken out through a terminal hole 15 formed in the block 10 illustrated in
(55) Through this constitution, the bus-bar mounting means 500 may be installed by means of the upper insulator 300, and the bus-bar power connection terminals 520, 530 and 540 are controlled while smoothly supplying power to the motor. Additionally, the thermistor mounting means 400 and the bus-bar mounting means 500 may be installed by means of the upper insulator 300, and thus the present invention can achieve easy assembling and compact motor.
(56) The detailed description of the present invention described as above simply explains examples for understanding the present invention, but does not intend to limit the scope of the present invention. The scope of the present invention is defined by the ac-companying claims. Additionally, it should be construed that simple modifications or changes of the present invention fall within the scope of the present invention.