Sliding Part and Method of Manufacturing the Same
There is provided a sliding part in which a surface coverage ratio of copper in the sliding part increases. A bearing which is the sliding part is formed by filling the raw powder into the filling portion of the forming mold, compacting the raw powder to form a powder compact 6, and sintering the powder compact 6. A copper-based raw powder is composed of a copper-based flat raw powder 2 having an average diameter smaller than that of an iron-based raw powder 1 and an aspect ratio larger than that of the iron-based raw powder 1, and a copper-based small-sized raw powder 3 having the average diameter is smaller than that of the copper-based flat raw powder 2. The copper is allowed to segregate at the surface of the sliding part. In the bearing in which the copper-based flat powder 2 segregates at the surface, the surface is covered with the copper-based small-sized raw powder 3 that has emerged on the surface, as well as the copper-based flat raw powder 2, thereby it is possible to increase the surface coverage ratio of copper.
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The present invention relates to a sliding part such as a bearing or the like and a method of manufacturing the same.
BACKGROUND ARTAs a sliding part having reduced frictional resistance and improved durability and generating no noise, a sliding part is known that is a flat powder formed by sintering a powder compact, which is fabricated by filling an iron-based raw powder and a copper-based raw powder in a filling portion of a forming mold and applying vibration to the mold at the same time for compacting, and having an aspect ratio of the copper-based raw powder larger than that of the iron-based raw powder, on a surface of which copper segregates (for example, refer to Japanese Unexamined Patent Application, First Publication No. 2003-221606); or a sliding part that is a flat powder formed by sintering a powder compact, which is fabricated by filling the iron-based raw powder and the copper-based raw powder into the filling portion of the forming mold and applying vibration to the mold at the same time for compacting, and having an average value of a maximum projected area of the copper-based raw powder larger than that of the iron-based raw powder, in which the copper-base raw powder contains flat powder of copper or copper-alloy and on a surface of which copper segregates (for example, refer to Japanese Unexamined Patent Application, First Publication No. 2004-84038).
DISCLOSURE OF INVENTION Problems to be Solved by the InventionHowever, in the above related art, the mixture of the iron-based raw powder and the copper-based flat raw powder composed of flat powder having a larger aspect ratio than the iron-based raw powder is filled into the filling portion of the forming mold, and at the same time vibration is applied to the forming mold, such that the copper-based flat raw powder segregates at the outer side within the filling portion, overlaps each other in the thickness direction, and at the same time segregates at a gathering surface in a state in which the direction intersecting the thickness direction is aligned with the longitudinal direction of the surface. However, the iron-based raw powder emerges at a part of the surface, as well as the segregated copper-based flat raw powder, and a gap is formed between the copper-based flat raw powders which emerges at the surface and are adjacent to each other. As a result, the gap between the copper-based raw powder and the iron-based raw powder, or the gap between the copper-based flat raw powders is formed in the surface. Due to these gaps, the surface coverage ratio of the copper in the sliding part cannot be increased.
Accordingly, it is an advantage of the present invention to increase the surface coverage ratio of the copper in the sliding part formed by filling the iron-based raw powder and the copper-based raw powder having an aspect ratio larger than that of the iron-based raw powder into the filling portion of the forming mold, compacting the raw powders to form a powder compact, and sintering the powder compact, in which the copper segregates at the surface of the sliding part.
Means for Solving the ProblemAccording to a first aspect of the invention, a sliding part is formed by filling an iron-based raw powder and a copper-based raw powder into a filling portion of a forming mold, compacting the raw powders to form a powder compact, and sintering the powder compact. The copper-based raw powder is composed of a copper-based flat raw powder having an average diameter smaller than that of the iron-based raw powder and an aspect ratio larger than that of the iron-based raw powder; and a copper-based small-sized raw powder having the average diameter smaller than that of the copper-based flat raw powder; and in which copper is allowed to segregate on a surface of the sliding part.
According to a second aspect of the invention, in the sliding part according to the first aspect, the surface coverage ratio of copper in the sliding part is 80% or more.
According to a third aspect of the invention, in the sliding part according to the first or second aspect, the aspect ratio of the copper-based flat raw powder is 10 or more.
According to a fourth aspect of the invention, in the sliding part according to the second aspect, the ratio of the copper-based raw powder is 20 to 40% by weight with respect to all raw powders.
According to a fifth aspect of the invention, a sliding part is formed by filling an iron-based raw powder and a copper-based raw powder into a filling portion of a forming mold, compacting the raw powders to form a powder compact, and sintering the powder compact. The copper-based raw powder consists of a copper-based flat raw powder having an average value of a maximum projected area smaller than that of the maximum projected area of the iron-based raw powder and an aspect ratio larger than that of the iron-based raw powder; and a copper-based small-sized raw powder having the average value of the maximum projected area smaller than that of the maximum projected area of the copper-based flat raw powder; and in which copper is allowed to segregate on a surface of the sliding part.
According to a sixth aspect of the invention, in the sliding part according to the fifth aspect, a surface coverage ratio of copper in the sliding part is 80% or more.
According to a seventh aspect of the invention, a method of manufacturing a sliding part, includes steps of filling an iron-based raw powder and a copper-based raw powder into a filling portion of a forming mold, compacting the raw powders to form a powder compact, and sintering the powder compact, in which the copper-based raw powder consists of a copper-based flat raw powder having the average diameter smaller than that of the iron-based raw powder and an aspect ratio larger than that of the iron-based raw powder; and a copper-based small-sized raw powder having an average diameter smaller than that of the copper-based flat raw powder; and the copper-based flat raw powder in the filling portion is allowed to segregate on a surface of the powder compact.
According to an eighth aspect of the present invention, a method of manufacturing a sliding part, includes steps of filling an iron-based raw powder and a copper-based raw powder into a filling portion of a forming mold, compacting the raw powders to form a powder compact, and sintering the powder compact, in which the copper-based raw powder is composed of a copper-based flat raw powder having an average value of the maximum projected area smaller than that of the maximum projected area of the iron-based raw powder and an aspect ratio larger than that of the iron-based raw powder; and a copper-based small-sized raw powder having an average value of the maximum projected area smaller than that of the maximum projected area of the copper-based flat raw powder, in which the copper-based flat raw powder in the filling portion is allowed to segregate on a surface of the powder compact.
According to a ninth aspect of the invention, in the method of manufacturing the sliding part according to the seventh or eighth aspect, the aspect ratio of the copper-based flat raw powder is 10 or more.
According to a tenth aspect of the invention, in the method of manufacturing the sliding part according to any one of the seventh to ninth aspects, a ratio of the copper-based raw powder is 20 to 40% by weight with respect to all raw powders.
EFFECTS OF THE INVENTIONAccording to the first and fifth aspects of the present invention, when a bearing is composed of the sliding part, the copper-based small-sized raw powder as well as the copper-based flat raw powder emerges at the surface, such that a rotator slides on the surface covered with the copper, and the coefficient of the friction between the rotation axis and the surface side decreases, thus a rotation is performed smoothly. At the same time, predetermined strength and durability can be obtained due to the iron. Furthermore, in the above structure, even though the surface on which the rotator rotates is abraded, since the predetermined ratio of copper is contained below the surface, the durability of the sliding portion becomes excellent.
According to the second and sixth aspects of the present invention, the coefficient of the friction of the sliding portion can be suppressed at a significantly lower level.
According to the third and ninth aspects of the present invention, since the aspect ratio is set to 10 or more, when vibration is applied, the flat powder segregates easily at the surface, and thus it is possible to obtain the sliding part having a high copper concentration at the surface.
According to the fourth aspect of the present invention, when the ratio of the copper-based flat raw powder is less than 20% by weight, the ratio of copper at the surface decreases and the frictional resistance increases. In addition, when the ratio of copper-based flat raw powder exceeds 40% by weight, the ratio of the copper-based raw powder in all of the raw powders becomes too large, and it is not favorable in terms of the strength. Therefore, if the ratio is set in the range of 20 to 40%, the frictional resistance decreases and it is possible to obtain a sliding part having a high strength.
According to the seventh and eighth aspects of the present invention, it is possible to obtain a sliding part having a low coefficient of friction and an improved durability.
According to the tenth aspect of the present invention, when the ratio of the copper-based flat raw powder is less than 20% by weight, the ratio of copper at the surface decreases and the frictional resistance increases. In addition, when the ratio of the copper-based flat raw powder exceeds 40% by weight, the ratio thereof becomes too large and it is not favorable in terms of the strength. Therefore, if the ratio is set in the range of 20% to 40% by weight, the frictional resistance decreases and it is possible to obtain a sliding part having a high strength.
1: iron-based raw powder
2: copper-based flat raw powder
3: copper-based small-sized raw powder
5: bearing
6: powder compact
11: forming mold
16: filling portion
51: sliding surface (sliding part)
BEST MODE FOR CARRYING OUT THE INVENTIONHereinafter, a preferred embodiment of the present invention will be described with reference to the attached drawings. However, the embodiment to be described below is not intended to limit the invention described in claims. Furthermore, the entire constitutions to be described later are not essential to the invention.
Embodiment 1A method of manufacturing the invention will now be described. An iron-based raw powder 1, a copper-based flat raw powder 2, and a copper-based small-sized raw powder 3 are mixed at a predetermined ratio (S1). As shown in
Herewith, the average diameter of the copper-based flat raw powder 2 becomes smaller than that of the iron-based raw powder 1, and becomes larger than that of the copper-based small-sized raw powder 3. Due to the above comparative difference in size, the average value of the maximum projected area A of the copper-based flat raw powder 2 becomes smaller than that of the maximum value of the projected area B of the iron-based raw powder 1, and the average value of the maximum projected area A becomes larger than that of the maximum projected area C of the copper-based small-sized raw powder 3.
As shown in
The mixture (mixed at S1) of the iron-based raw powder 1, the copper-based flat raw powder 2, and the copper-based small-sized raw powder 3 is filled into a filling portion 16 of a forming mold 11. In the mixed powder filled into the filling portion 16, a ratio of the copper-based flat raw powder is 20 to 40% by weight with respect to all raw powders.
As shown in
Furthermore, since the flat surface of the copper-based raw powder 2 is wide, it is possible to segregate the copper-based raw powder 2 at the outer side within the filling portion 16 by generating static electricity on the surface of the forming mold 11 surrounding the filling portion 16, or it is possible to segregate the copper-based raw powder 2 at the outer side within the filling portion 16 by using magnetic force as well as the vibration.
On the other hand, the remaining copper-based flat raw powder 2A at the inner side that has not segregated at the outer side within the filling portion 16, that is, the sliding surface 51 and the outer circumferential surface 54 are disposed to surround the iron-based raw powder 1 with the plurality of copper-based small-sized raw powders 3.
Then, the upper-side and lower-side punches 15 and 14 press the mixture of the raw powders 1 to 3 within the filling portion 16 to form a powder compact 6 (S3). As shown in
In the above embodiment, in accordance with the first aspect, in the bearing 5 which is a sliding part formed by filling the raw powder into the filling portion 16 of the forming mold 11, compacting the raw powder to form a powder compact 6, and sintering the powder compact 6, the copper-based raw powder is composed of the copper-based flat raw powder 2 having an average diameter smaller than that of the iron-based raw powder 1 and an aspect ratio larger than that of the iron-based raw powder 1; and the copper-based small-sized raw powder 3 having an average diameter smaller than that of the copper-based flat raw powder 2, and the copper is allowed to segregate at the surface of the sliding part. Therefore, the copper-based raw powder 2, which is a flat powder, and the iron-based raw powder 1 are filled into the filling portion 16, and the vibration is applied thereto, such that the copper-based flat powder segregates at the surface. Furthermore, in the obtained bearing 5, the surface is covered with the copper-based small-sized raw powder 3 emerged on the surface as well as the copper-based flat raw powder 2, thereby it is possible to increase the surface coverage ratio of copper.
Therefore, the rotator slides on the sliding surface 51 which is covered with the copper, and the coefficient of friction between the rotation axis and the sliding surface 51 becomes small, thereby the rotation performs smoothly. In addition, the predetermined strength and the durability can be obtained due to the iron. Furthermore, in the above structure, even though the sliding surface 51, on which the rotator rotates, is abraded, since a predetermined ratio of copper is contained below the sliding surface 51, the durability of the sliding portion becomes excellent.
Furthermore, in the above embodiment, in accordance with the second and sixth aspects, since the surface coverage ratio of copper in the sliding surface 51, which is the sliding portion, is 80% or more, it is possible to suppress the coefficient of the friction at a significantly lower level.
Furthermore, in the above embodiment, in accordance with the third and ninth aspects, since the aspect ratio of the copper-based flat raw powder 2 is set to 10 or more, when a vibration is applied, the copper-based flat powder 2 segregates easily at the surface, and it is possible to obtain the bearing 5 having a high copper concentration at the surface.
Furthermore, in the above embodiment, in accordance with the fourth aspect, since the ratio of the copper-based flat raw powder 2 is set in the range of 20% to 40%, it is possible to obtain a bearing 5 having low frictional resistance and high strength.
Furthermore, in the above embodiment, in accordance with the fifth aspect, in the bearing 5 formed by filling the raw powder into the filling portion 16 of the forming mold 11, compacting the raw powder to form the powder compact 6, and sintering the powder compact 6, the copper-based raw powder is composed of the copper-based flat raw powder 2 having an average value of the maximum projected area A smaller than the average value of the maximum projected area B of the iron-based raw powder 1 and an aspect ratio larger than that of the iron-based raw powder 1; and the copper-based small-sized raw powder 3 having the average value of the maximum projected area C smaller than that of the maximum projected area A of the copper-based flat raw powder 2, and the copper is allowed to segregate at the surface of the sliding part. Therefore, the copper-based raw powder 2, which is a flat powder, and the iron-based raw powder 1 are filled into the filling portion 16, and the vibration is applied thereto, such that the copper-based flat powder segregates at the surface. Furthermore, in the obtained bearing 5, the surface is covered with the copper-based small-sized raw powder 3 that has emerged on the surface as well as the copper-based flat raw powder 2, thereby it is possible to increase the surface coverage ratio of copper.
Furthermore, in the above embodiment, in accordance with the seventh and eighth aspects, the surface is covered with the copper-based small-sized raw powder 3 that has emerged at the surface as well as the copper-based flat raw powder 2 appear, it is possible to obtain the bearing 5, the surface coverage ratio of copper of which increases.
Furthermore, in the above embodiment, in accordance with the tenth aspect, since the ratio of the copper-based raw powder is set in the range of 20% to 40% by weight with respect to all of the raw powders, the frictional resistance decreases and it is possible to obtain the sliding part having a high strength.
Furthermore, the present invention is not limited to the above embodiment, and various modifications can be made. For example, the flat powder can include a rod-shaped powder. In this case, the ratio of the length and the diameter becomes the aspect ratio.
INDUSTRIAL APPLICABILITYThe above sliding part and the method of manufacturing the same according to the aspects of the invention can be applied to various sliding parts in addition to the bearing.
Claims
1. A sliding part formed by sintering a powder compact, which is fabricated by filling an iron-based raw powder and a copper-based raw powder into a filling portion of a forming mold and compacting the raw powders,
- wherein the copper-based raw powder is comprised of a copper-based flat raw powder having an average diameter smaller than that of the iron-based raw powder and an aspect ratio larger than that of the iron-based raw powder; and a copper-based small-sized raw powder having an average diameter smaller than that of the copper-based flat raw powder, and
- copper segregates on a surface of the sliding part.
2. The sliding part according to claim 1,
- wherein a surface coverage ratio of copper is 80% or more.
3. The sliding part according to claim 1,
- wherein the aspect ratio of the copper-based flat raw powder is 10 or more.
4. The sliding part according to claim 2,
- wherein a ratio of the copper-based raw powder is 20 to 40% by weight with respect to all raw powders.
5. A sliding part formed by sintering a powder compact, which is fabricated by filling an iron-based raw powder and a copper-based raw powder into a filling portion of a forming mold and compacting the raw powders,
- wherein the copper-based raw powder is comprised of a copper-based flat raw powder having an average value of a maximum projected area smaller than that of the maximum projected area of the iron-based raw powder and an aspect ratio larger than that of the iron-based raw powder; and a copper-based small-sized raw powder having an average value of a maximum projected area smaller than that of the maximum projected area of the copper-based flat raw powder, and
- copper segregates on a surface of the sliding part.
6. The sliding part according to claim 5,
- wherein a surface coverage ratio of copper is 80% or more.
7. A method of manufacturing a sliding part comprising;
- filling an iron-based raw powder and a copper-based raw material into a filling portion of a forming mold,
- compacting the raw powders to form a powder compact, and
- sintering the powder compact;
- wherein the copper-based raw powder is comprised of a copper-based flat raw powder having an average diameter smaller than that of the iron-based raw powder and an aspect ratio larger than that of the iron-based raw powder; and a copper-based small-sized raw powder having an average diameter smaller than that of the copper-based flat raw powder, and
- copper segregates on a surface of the sliding part.
8. A method of manufacturing a sliding part comprising;
- filling an iron-based raw powder and a copper-based raw material into a filling portion of a forming mold,
- compacting the raw powders to form a powder compact, and
- sintering the powder compact;
- wherein the copper-based raw powder is comprised of a copper-based flat raw powder having an average value of a maximum projected area smaller than that of the maximum projected area of the iron-based raw powder and an aspect ratio larger than that of the iron-based raw powder; and a copper-based small-sized raw powder having an average value of a maximum projected area smaller than that of the maximum projected area of the copper-based flat raw powder, and
- copper segregates on a surface of the sliding part.
9. The method according to claim 7,
- wherein the aspect ratio of the copper-based flat raw powder is 10 or more.
10. The method according to claim 7,
- wherein a ratio of the copper-based raw powder is 20 to 40% by weight with respect to all raw powders.
Type: Application
Filed: Nov 14, 2005
Publication Date: May 21, 2009
Applicant: MITSUBISHI MATERIALS PMG CORPORATION (NIGATA-KEN)
Inventors: Teruo Shimizu (Tokyo), Tsuneo Maruyama (Niigata-shi)
Application Number: 11/911,842
International Classification: B22F 3/12 (20060101);