This application is a U.S. National Stage entry of PCT Application No: PCT/JP2016/083544 filed Nov. 11, 2016, which claims priority to Japanese Patent Application No. 2015-222129, filed Nov. 12, 2015, the contents of which are incorporated herein by reference.
This disclosure relates to a scissor gear oil supplying structure for supplying lubricating oil to a scissor gear.
A scissor gear is formed by superposing a main gear and a sub gear in an axial direction and forming a spring chamber between these gears, and providing a spring for biasing the gears in a circumferential direction in the spring chamber.
The contact of the spring and the gear is rubbed. Therefore, it is necessary to supply lubricating oil to the spring chamber.
[Patent Literature 1]: Japanese Unexamined Patent Application Publication No. 2005-36835
However, as ways for supplying lubricating oil to a scissor gear provided on the outer circumference of a tip end portion of a shaft, it is considered to form an oil passage for supplying lubricating oil in a shaft. However, in a case where a rotating member such as a rotor is fastened to the tip end of a shaft, it is difficult to secure a lubrication passage connected to a scissor gear in the shaft.
This disclosure provides a scissor gear oil supplying structure capable of securing a lubrication passage connected to a scissor gear in a shaft even in a case where a rotating member is fastened to a tip end of the shaft.
A scissor gear oil supplying structure of this disclosure includes: a scissor gear that is provided on an outer circumference of a tip end portion of a shaft extending from an inside of an engine main body; a first oil passage that is formed on a central axis of the shaft and extends toward the front in the shaft in an extending direction from the inside of the engine main body; a second oil passage that is formed and extends from the first oil passage in a radial direction and communicates with the scissor gear; an extension hole that is formed to extend toward the front from the first oil passage on the shaft and is opened at a front end surface of the shaft; a female screw that is formed in the first oil passage on a rear side of the second oil passage; a rotating member that is arranged on the shaft on a front side of the scissor gear; and a bolt that is inserted into the extension hole and the first oil passage to fasten the rotating member to the shaft and is screwed into the female screw, in which lubricating oil from the engine main body is guided from the first oil passage to the second oil passage along a gap between thread grooves of the female screw and thread ridges of the bolt.
According to the scissor gear oil supplying structure of this disclosure, it is possible to secure a lubrication passage connected to a scissor gear in a shaft even in a case where a rotating member is fastened to a tip end of the shaft.
Hereinafter, a suitable embodiment of this disclosure will be described with reference to the accompanying drawings.
As illustrated in
As illustrated in
The spring chamber 7 is formed coaxially with the main gear 5 in an annular shape. The snap ring 8 is formed in a substantially C shape such that both ends thereof are brought into pressure contact with pins 5a and 6a respectively formed in the main gear 5 and the subgear 6. The boss portion 4 of the scissor gear 1 is formed to extend toward the front from the shaft 3.
In the engine main body 2, a pump (not shown) for feeding lubricating oil such as engine oil by pressure is provided and an oil gallery 9 for circulating the lubricating oil from the pump to each place is formed.
The shaft 3 is rotatably supported on a bearing portion 2a formed in the front end portion of the engine main body 2. In the bearing portion 2a, the oil gallery 9 is formed.
In the shaft 3, a supply oil passage 10 for supplying the lubricating oil from the oil gallery 9 to the scissor gear 1 is formed.
The supply oil passage 10 includes a communication oil passage 11 that is connected to the oil gallery 9 and is formed to extend from the outer circumferential surface of the shaft 3 to the inside in the radial direction, a first oil passage 12 that is connected to the communication oil passage 11 and is formed on a central axis C of the shaft 3 to extend from the inside of the engine main body 2 in the extending direction of the shaft 3, and a second oil passage 13 that is formed to extend from the first oil passage 12 in the radial direction and communicates with the scissor gear 1.
The first oil passage 12 is linearly formed. In the first oil passage 12, an enlarged diameter portion 12a for causing the contact position with the second oil passage 13 to be separated from a bolt 14 described later to the outside in the radial direction is formed. In the first oil passage 12 on the rear side of the second oil passage 13, a female screw 15 for screwing the bolt 14 described later is formed.
The second oil passage 13 is formed to have a smaller diameter than the first oil passage 12.
An oil reservoir portion 16 that stores the lubricating oil from the second oil passage 13 is formed between the shaft 3 and the scissor gear 1. The oil reservoir portion 16 is formed by partially reducing the diameter of the outer circumferential surface of the shaft 3. An introduction oil passage 17 of the scissor gear 1 is connected to the oil reservoir portion 16. The introduction oil passage 17 is provided for introducing lubricating oil from the oil reservoir portion 16 to the spring chamber 7 and is formed in the scissor gear 1 to extend in the radial direction.
On the shaft 3, an extension hole 18 that coaxially extends toward the front from the first oil passage 12 is formed. The extension hole 18 is opened at a front end surface 3a of the shaft 3. The bolt 14 for fastening the rotating member 19 such as a rotor to the shaft 3 is inserted into the extension hole 18.
The bolt 14 is inserted into the extension hole 18 and the first oil passage 12 from the front and is screwed and fastened to the female screw 15 of the first oil passage 12.
As illustrated in
As illustrated in
The rotating member 19 of the embodiment is formed of a sensor ring used for detection of the rotation speed of the shaft 3. In the sensor ring, rotation sensors (not shown) are arranged to face each other. However, the rotating member 19 is not limited to the sensor ring and other members may be used.
Next, the action of the embodiment will be described.
The lubricating oil fed to the first oil passage 12 from the oil gallery 9 of the engine main body 2 through the communication oil passage 11 of the shaft 3 flows along the helical gap 20 formed between the thread grooves 15a of the female screw 15 and the thread ridges 14a of the bolt 14.
As illustrated in
As illustrated in
In this manner, since the first oil passage 12 that is formed on the central axis C of the shaft 3 to extend toward the front from the inside of the engine main body 2, the second oil passage 13 that extends from the first oil passage 12 in the radial direction and communicates with the scissor gear 1, the extension hole 18 that is formed to extend toward the front from the first oil passage 12 and is opened at the front end surface 3a of the shaft 3, the female screw 15 that is formed in the first oil passage 12 on the rear side of the second oil passage 13, the rotating member 19 that is arranged on the shaft 3 on the front side of the scissor gear 1, the bolt 14 that is inserted into the first oil passage 12 from the opening of the extension hole 18 to fasten the rotating member 19 to the shaft 3 and is screwed to the female screw 15 are provided and lubricating oil from the engine main body 2 is guided to from the first oil passage 12 to the second oil passage 13 along the gap 20 between the thread grooves 15a of the female screw 15 and the thread ridges 14a of the bolt 14, even in a case where the rotating member 19 is fastened to the tip end of the shaft 3, the lubrication passage connected to the scissor gear 1 can be secured in the shaft 3 and thus the lubricating oil can be supplied to the spring chamber 7 of the scissor gear 1. Then, the oil passage can be reduced and a reduction in oil pressure can be suppressed. Working for securing the lubrication passage can be minimized.
In the first oil passage 12, the enlarged diameter portion 12a that is connected to the gap 20 and is also connected to the second oil passage 13 is formed. Thus, even when the position of an outlet 20a of the helical gap 20 relative to an inlet 13a of the second oil passage 13 is shifted in the circumferential direction, the enlarged diameter portion 12a causes the outlet 20a to be reliably connected to the inlet 13a and thus the lubricating oil from the gap 20 can be guided to the second oil passage 13 through the enlarged diameter portion 12a.
In the above-described embodiment, the engine main body 2 is a diesel engine but may be an internal combustion engine such as a gasoline engine.
The present application is based on the Japanese patent application (JP2015-222129) filed on Nov. 12, 2015, the contents of which are incorporated herein by reference.
According to the scissor gear oil supplying structure of this disclosure, it is possible to secure a lubrication passage connected to a scissor gear in a shaft even in a case where a rotating member is fastened to a tip end of the shaft.
1: scissor gear
2: engine main body
3: shaft
3
a: front end surface
12: first oil passage
13: second oil passage
14: bolt
14
a: thread ridge
15: female screw
15
a: thread groove
18: extension hole
19: rotating member
20: gap
C: central axis
Number | Date | Country | Kind |
---|---|---|---|
2015-222129 | Nov 2015 | JP | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2016/083544 | 11/11/2016 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2017/082394 | 5/18/2017 | WO | A |
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20070175706 | Shilo | Aug 2007 | A1 |
20090146650 | Hatanaka | Jun 2009 | A1 |
20110030489 | Chen | Feb 2011 | A1 |
20130228029 | Murphy | Sep 2013 | A1 |
Number | Date | Country |
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363770 | Nov 1922 | DE |
1625032 | Jun 1970 | DE |
1026371 | Aug 2000 | EP |
S55-055656 | Apr 1980 | JP |
S61-125617 | Aug 1986 | JP |
H02-072330 | Jun 1990 | JP |
H09-089083 | Mar 1997 | JP |
2002-195387 | Jul 2002 | JP |
2005-36835 | Feb 2005 | JP |
Entry |
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International Search Report and Written Opinion for related PCT application No. PCT/JP2016/083544, dated Jan. 24, 2017; English translation of ISR provided; 8 pages. |
Extended European Search Report for European Application No. 16864355.9, dated Jun. 4, 2019, 9 pages. |
Number | Date | Country | |
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20180328478 A1 | Nov 2018 | US |