MOTION GUIDE APPARATUS COOLING NOZZLES, MOTION GUIDE APPARATUS WITH COOLING NOZZLES, AND MOTION GUIDE APPARATUS COOLING SYSTEM
20170341092 ยท 2017-11-30
Assignee
Inventors
- Akimasa Yoshida (Tokyo, JP)
- Ryuji Furusawa (Tokyo, JP)
- Takuya Horie (Tokyo, JP)
- Keisuke Nagaike (Tokyo, JP)
- Shinji Aoki (Tokyo, JP)
- Ayako Miyajima (Tokyo, JP)
Cpc classification
F16C29/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C29/065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C29/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2322/39
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C37/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B05B1/005
PERFORMING OPERATIONS; TRANSPORTING
F16C29/0609
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B05B1/26
PERFORMING OPERATIONS; TRANSPORTING
F16C37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C29/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C29/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A motion guide apparatus cooling nozzle is provided which can gas-cool a motion guide apparatus. Cooling nozzles 1a and 1b of the present invention are mounted on a block 4 of the motion guide apparatus to cool at least one of a guide rail 2 and a block 4 that is assembled to the guide rail 2 via a rolling element 6 in such a manner as to be movable relatively. The cooling nozzles la and 1b include an inner passage 18 into which gas is introduced, an opening 12a configured to emit a gas flow introduced into the inner passage 18, a deflection surface 22a that is provided adjacently to the opening 12a to bend the gas flow emitted from the opening 12a, and a guiding surface 32a configured to attract gas outside the cooling nozzles 1a and 1b.
Claims
1-9. (canceled)
10. A motion guide apparatus cooling nozzle for cooling at least one of a guide rail and a block assembled to the guide rail via a rolling element in such a manner as to be movable relatively, the cooling nozzle comprising: an inner passage into which gas is introduced; an opening configured to emit a gas flow introduced into the inner passage; a deflection surface, provided adjacently to the opening, to bend the gas flow emitted from the opening; and a guiding surface configured to attract gas outside the cooling nozzle.
11. The motion guide apparatus cooling nozzle according to claim 10, wherein the cooling nozzle is attached to the block.
12. The motion guide apparatus cooling nozzle according to claim 11, wherein the opening includes a guide rail-specific opening for cooling the guide rail, and a block-specific opening for cooling the block.
13. The motion guide apparatus cooling nozzle according to claim 10, wherein the opening is placed not in an inner surface, which faces the guide rail, of the cooling nozzle but in an outer surface of the cooling nozzle.
14. The motion guide apparatus cooling nozzle according to claim 10, further comprising an inclined surface, provided adjacently to the deflection surface, to guide the gas flow emitted from the opening to at least one of the guide rail and the block.
15. The motion guide apparatus cooling nozzle according to claim 10, further comprising: a center portion facing an upper surface of the guide rail; and a leg portion facing a side of the guide rail, wherein the opening includes the guide rail-specific opening for cooling the guide rail, and the guide rail-specific opening includes an upper side opening placed in the center portion, and a side opening placed in the leg portion.
16. The motion guide apparatus cooling nozzle according to claim 15, further comprising a baffle plate configured to separate a gas flow emitted from the upper side opening and a gas flow emitted from the side opening.
17. A motion guide apparatus with a cooling nozzle, comprising: the motion guide apparatus cooling nozzle according to claim 10; and the motion guide apparatus.
18. A motion guide apparatus cooling system comprising: the motion guide apparatus cooling nozzle according to claim 10; and means configured to introduce gas into the inner passage of the cooling nozzle.
19. The motion guide apparatus cooling nozzle according to claim 11, wherein the opening is placed not in an inner surface, which faces the guide rail, of the cooling nozzle but in an outer surface of the cooling nozzle.
20. The motion guide apparatus cooling nozzle according to claim 12, wherein the opening is placed not in an inner surface, which faces the guide rail, of the cooling nozzle but in an outer surface of the cooling nozzle.
21. The motion guide apparatus cooling nozzle according to claim 11, further comprising an inclined surface, provided adjacently to the deflection surface, to guide the gas flow emitted from the opening to at least one of the guide rail and the block.
22. The motion guide apparatus cooling nozzle according to claim 12, further comprising an inclined surface, provided adjacently to the deflection surface, to guide the gas flow emitted from the opening to at least one of the guide rail and the block.
23. The motion guide apparatus cooling nozzle according to claim 13, further comprising an inclined surface, provided adjacently to the deflection surface, to guide the gas flow emitted from the opening to at least one of the guide rail and the block.
24. The motion guide apparatus cooling nozzle according to claim 19, further comprising an inclined surface, provided adjacently to the deflection surface, to guide the gas flow emitted from the opening to at least one of the guide rail and the block.
25. The motion guide apparatus cooling nozzle according to claim 20, further comprising an inclined surface, provided adjacently to the deflection surface, to guide the gas flow emitted from the opening to at least one of the guide rail and the block.
26. The motion guide apparatus cooling nozzle according to claim 11, further comprising: a center portion facing an upper surface of the guide rail; and a leg portion facing a side of the guide rail, wherein the opening includes the guide rail-specific opening for cooling the guide rail, and the guide rail-specific opening includes an upper side opening placed in the center portion, and a side opening placed in the leg portion.
27. The motion guide apparatus cooling nozzle according to claim 12, further comprising: a center portion facing an upper surface of the guide rail; and a leg portion facing a side of the guide rail, wherein the opening includes the guide rail-specific opening for cooling the guide rail, and the guide rail-specific opening includes an upper side opening placed in the center portion, and a side opening placed in the leg portion.
28. The motion guide apparatus cooling nozzle according to claim 13, further comprising: a center portion facing an upper surface of the guide rail; and a leg portion facing a side of the guide rail, wherein the opening includes the guide rail-specific opening for cooling the guide rail, and the guide rail-specific opening includes an upper side opening placed in the center portion, and a side opening placed in the leg portion.
29. The motion guide apparatus cooling nozzle according to claim 14, further comprising: a center portion facing an upper surface of the guide rail; and a leg portion facing a side of the guide rail, wherein the opening includes the guide rail-specific opening for cooling the guide rail, and the guide rail-specific opening includes an upper side opening placed in the center portion, and a side opening placed in the leg portion.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0009]
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
DESCRIPTION OF EMBODIMENTS
[0019] An embodiment of cooling nozzles of the present invention is described hereinafter with reference to the accompanying drawings. However, the cooling nozzles of the present invention can be embodied in various forms and are not limited to the embodiment described in the description. The embodiment is provided with the intention of allowing a person skilled in the art to fully understand the scope of the invention by sufficiently disclosing the description.
[0020]
[0021] As illustrated in
[0022] The block 4 is assembled to the guide rail 2 in such a manner as to straddle the guide rail 2. The block 4 includes a block main body 5, and a pair of end caps 3a and 3b attached to both end surfaces of the block main body 5 in the front-and-rear direction. An option such as an end seal or a lubricant supply device is attached to an end surface of the end caps 3a and 3b when necessary.
[0023]
[0024] A rolling element circulation path includes the loaded rolling element rolling portion 5a, the return path 5b, and a pair of the turn-around paths. The rolling element circulation path houses multiple rolling elements 6. In order to increase the rigidity of the linear guide, the linear guide is preloaded to compress the rolling elements 6 sandwiched between the rolling element rolling portion 2a and the loaded rolling element rolling portion 5a. When the block 4 is moved relatively to the guide rail 2, the rolling elements 6 perform rolling motion between them. The movement of the block 4 is relative to the guide rail 2. The block 4 may move and also the guide rail 2 may move.
[0025] As illustrated in
[0026] One cooling nozzle la includes a guide rail-specific opening 12 for cooling the guide rail 2, and block-specific openings 13 for cooling the block 4. The cooling nozzle 1a blows airflows toward the guide rail 2 and the block 4 in opposite directions. The other cooling nozzle 1b includes only the guide rail-specific opening 12 for cooling the guide rail 2, and blows airflows only toward the guide rail 2. It is also possible to provide only the guide rail-specific opening 12 to both the cooling nozzles 1a and 1b, or provide the guide rail-specific opening 12 and the block-specific openings 13 to both the cooling nozzles 1a and 1b.
[0027]
[0028] As illustrated in
[0029]
[0030] Guide rail-specific opening forming surfaces 21a and 21b that communicate with the inner passage 18 (details are described below), deflection surfaces 22a and 22b that are adjacent downstream of the guide rail-specific opening forming surfaces 21a and 21b (details are described below), and inclined surfaces 23a and 23b that are adjacent downstream of the deflection surfaces 22a and 22b are further formed on the outer surface 16b of the inner member 16. The inclined surfaces 23a and 23b are flat. The inclined surface 23a or 23b is inclined at an acute angle with respect to the upper surface 2-1 or the side surface 2-2 (see
[0031] As illustrated in
[0032] A guide rail-specific opening forming surface 31a facing the guide rail-specific opening forming surface 21a of the inner member 16, and a guiding surface 32a located upstream of the guide rail-specific opening forming surface 31a on an outer side of the main body portion 17a are formed on the center portion 17-1 of the main body portion 17a. The guiding surface 32a is flat. A guide rail-specific opening forming surface 31b facing the guide rail-specific opening forming surface 21b of the inner member 16, and a guiding surface 32b located upstream of the guide rail-specific opening forming surface 31a on an outer side of the insertion body 17b are formed on the insertion body 17b.
[0033] The block-specific opening 13 (see
[0034]
[0035]
[0036] As illustrated in
[0037] The configuration of the other remaining cooling nozzle 1b is as follows:
[0038]
[0039] The operation of a cooling system is described with reference to
[0040] Next, the airflow enters the guide rail-specific opening 12 and the block-specific openings 13 that are continuous with the inner passage 18, gathers speed, and is emitted as a primary airflow from the guide rail-specific opening 12 and the block-specific openings 13 (see arrows (2) in
[0041] The primary airflow (2) emitted from the guide rail-specific opening 12 is directed onto the deflection surface 22a. The primary airflow (2) flows along the deflection surface 22a and is bent by the deflection surface 22a. A region of low pressure develops on the deflection surface 22a due to the Coanda effect. Accordingly, a secondary airflow indicated by arrows (3) in
[0042] The primary airflow (2) exiting from the block-specific opening 13 also flows along the deflection surface 34 and is bent by the deflection surface 34. A region of low pressure develops on the deflection surface 34 due to the Coanda effect. Accordingly, a secondary airflow indicated by arrows (5) in
[0043] The cooling nozzles of the embodiment further exert effects described below. The cooling nozzles 1a and 1b can be easily attached as an option to the block 4. Accordingly, the cooling nozzles 1a and 1b can be used irrespective of the length or kind of the guide rail 2.
[0044] The cooling nozzles 1a and 1b are provided with the guide rail-specific opening 12 and the block-specific openings 13. Accordingly, both the guide rail 2 and the block 4 can be cooled.
[0045] The openings 12 and 13 of the cooling nozzles 1a and 1b are placed not in the inner surface, which faces the guide rail 2, of the cooling nozzles 1a and 1b but in the outer surface 41 of the cooling nozzles 1a and 1b. Accordingly, it is possible to attract air from a wide space outside the cooling nozzles 1a and 1b, and cause the airflow to intensively hit the guide rail 2.
[0046] The guide rail-specific opening 12 includes the upper side opening 12a placed in the center portion 1-1 of the cooling nozzles 1a and 1b, and the side openings 12b placed in the leg portions 1-2. Accordingly, it is possible to blow airflows toward the upper surface 2-1 and the side surfaces 2-2 of the guide rail 2.
[0047] The cooling nozzles 1a and 1b include the baffle plates 24 that separate the airflow emitted from the upper side opening 12a and the airflows emitted from the side openings 12b. Accordingly, the airflow emitted from the upper side opening 12a and the airflows emitted from the side openings 12b are mixed. Therefore, it is possible to prevent the airflows from inhibiting each other.
[0048] The one cooling nozzle la is provided with the guide rail-specific opening 12 and the block-specific openings 13, and the other cooling nozzle 1b is provided with only the guide rail-specific opening 12. Accordingly, cooling efficiency for the guide rail 2 and the block 4 can be increased. If both the cooling nozzles 1a and 1b are provided with the block-specific openings 13, the airflows collide with each other at the center of the block 4 in the front-and-rear direction. However, only the one cooling nozzle 1a is provided with the block-specific openings 13 and accordingly the collision can be avoided. In addition, the airflow blown out of the one cooling nozzle la toward the block 4 is entrained by the airflow blown out of the guide rail-specific opening 12 of the other cooling nozzle 1b to be guided to the guide rail 2. Accordingly, the cooling efficiency for the guide rail 2 can be increased.
[0049] The motion guide apparatus of the present invention is not limited to the embodiment, and can be embodied in other forms within the scope that does not change the gist of the present invention. In the embodiment, the linear guide is used as the motion guide apparatus, but, for example, a ball spline or ball bushing may also be used.
[0050] The configurations of the cooling nozzles of the embodiment are examples. Other configurations can be employed within the scope that does not change the gist of the present invention.
[0051] Moreover, in the embodiment, air is used as the gas. However, nitrogen gas, halogen gas, or the like can also be used. A mist of liquid can also be mixed in the airflow.
[0052] The present description is based on Japanese Patent Application No. 2014-262952 filed on Dec. 25, 2014, the entire content of
REFERENCE SIGNS LIST
[0053] 1a, 1b Cooling nozzle
2 Guide rail
2a Rolling element rolling portion
3a, 3b End cap
4 Block
[0054] 5 Block main body
5a Loaded rolling element rolling portion
5b Return path
6 Rolling element
8a, 8b Tube
11 Opening
[0055] 12 Guide rail-specific opening (opening)
13 Block-specific opening (opening)
12a Upper side opening (guide rail-specific opening)
12b Side opening (guide rail-specific opening)
16 Inner member
17 Outer member
17a Main body portion
17b Insertion body
18 Inner passage
21a, 21b Guide rail-specific opening forming surface
22a, 22b Deflection surface
23a, 23b Inclined surface
24 Baffle plate
25 Introduction port
31a, 31b Guide rail-specific opening forming surface
32a, 32b Guiding surface
33 Block-specific opening forming surface
34 Deflection surface
35 Inclined surface
36 Block-specific opening forming surface
41 Outer surface of the cooling nozzle