Valve seat insert
10605130 · 2020-03-31
Assignee
Inventors
Cpc classification
B22F5/008
PERFORMING OPERATIONS; TRANSPORTING
F02F7/0085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01L3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B22F5/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A valve seat insert for an internal combustion engine has a first portion that is adapted to contact a cylinder head and a second portion that is adapted to contact a valve. The valve seat insert has a valve seat insert volume. A major part of the valve seat insert volume includes a homogeneous material that includes nitrides.
Claims
1. A valve seat insert for an internal combustion engine, a first portion of the valve seat insert being adapted to contact a cylinder head and a second portion of the valve seat insert being adapted to contact a valve, the valve seat insert having a valve seat insert volume a major part of the valve seat insert volume consists of a homogeneous material that comprises nitrides, wherein the homogeneous material comprises at least 5 vol % of nitrides and wherein at least 10 vol % of the nitrides consist of vanadium nitrides.
2. The valve seat insert according to claim 1, wherein at least 80 vol % of the valve seat insert consists of the homogeneous material.
3. The valve seat insert according to claim 1, wherein the homogeneous material comprises at least 10 vol % of carbides.
4. The valve seat insert according to claim 1, wherein the homogeneous material comprises at least 3 vol % of carbides.
5. The valve seat insert according to claim 4, wherein the homogeneous material comprises carbides within the range of 3-6 vol %.
6. The valve seat inset according to claim 1, wherein the homogeneous material comprises nitrides and/or carbonitrides in the range of 12-25 vol %.
7. The valve seat insert according to claim 1, wherein an average size of the nitrides is within the range of 1-3 m.
8. The valve seat insert according to claim 1, wherein the homogeneous material consists of 0.6-1.6 weight % C, 1.5-3 weight % N, 0.2-0.6 weight % Mn, 0.3-0.7 weight % Si, 4-5 weight % Cr, 2.8-3.6 weight % Mo, 3.4-4 weight % W, 8-10 weight % V, balance Fe.
9. The valve seat insert according to claim 1, wherein the homogeneous material consists of 0.95-1.25 weight % C, 1.5-2.1 weight % N, 0.3-0.5 weight % Mn, 0.4-0.6 weight % Si, 4.2-4.8 weight % Cr, 3-3.4 weight % Mo, 3.5-3.9 weight % W, 8.2-8.8 weight %, V, balance Fe.
10. An internal combustion engine comprising a valve seat insert according to claim 1.
11. A vehicle comprising an internal combustion engine according to claim 10.
12. A method for manufacturing a valve seat insert for an internal combustion engine, comprising: arranging nitrided steel powder in a mould, and densifying the nitrided steel powder, wherein the nitrided steel powder has a nitrogen content of at least 0.5 weight %.
13. The method according to claim 12, wherein the nitrided steel powder has a nitrogen content of at least 1.0 weight %.
14. The method according to any one of claim 12, wherein the nitrided steel powder consists of 0.6-1.6 weight % C, 1.5-3 weight % N, 0.2-0.6 weight % Mn, 0.3-0.7 weight % Si, 4-5 weight % Cr, 2.8-3.6 weight % Mo, 3.4-4 weight % W, 8-10 weight % V, balance Fe.
15. The method according to claim 12, wherein the nitrided steel powder consists of 0.95-1.25 weight % C, 1.5-2.1 weight % N, 0.3-0.5 weight % Mn, 0.4-0.6 weight % Si, 4.2-4.8 weight % Cr, 3-3.4 weight % Mo, 3.5-3.9 weight % W, 8.2-8.8 weight % V, balance Fe.
16. The method according to claim 12, wherein the nitrided steel powder is densified by high velocity compaction to form a high velocity compacted part.
17. The method according to claim 16, wherein the high velocity compacted part is sintered at a temperature exceeding 1100 C.
18. The method according to claim 12, wherein the nitrided steel powder is densified by hot isostatic pressing.
19. The method according to claim 18, wherein the hot isostatic pressing is performed at a temperature exceeding 1100 C.
20. The method according to claim 18, wherein the hot isostatic pressing is performed at a pressure in the range of 100 to 350 MPa.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) With reference to the appended drawings, below follows a more detailed description of embodiments of the invention cited as examples.
(2) In the drawings:
(3)
(4)
(5)
(6)
(7)
(8)
(9) It should be noted that the appended drawings are not necessarily drawn to scale and that the dimensions of some features of the present invention may have been exaggerated for the sake of clarity.
DETAILED DESCRIPTION
(10) The invention will below be described for a vehicle in the form of a truck 1 such as the one illustrated in
(11)
(12)
(13)
(14) According to the invention, a major part of the valve seat insert volume V consists of a homogeneous material that comprises nitrides.
(15) Purely by way of example, at least 80 vol %, alternatively at least 90 vol %, preferably at least 95 vol %, more preferred at least 98 vol %, of the valve seat insert consists of the homogeneous material. As a non-limiting example, the valve seat insert 14 may be an integral component that consists substantially completely, i.e. save for impurities or the like, of the homogeneous material. Alternatively, the valve seat insert 14 may be a separate component that is constituted by one or more parts.
(16) The homogeneous material may comprise at least 5 vol %, preferably at least 10 vol %, more preferred at least 15 vol %, of nitrides.
(17) Moreover, in addition to nitrides, the homogeneous material may comprise at least 3 vol % of carbides, alternatively carbides within the range of 3-6 vol %.
(18) The amount of nitrides and/or carbonitrides M (N,C) may be in the range of 12-25 vol % for the proposed alloy, with a preferred value being approximately 15 vol %. The amount of carbides M(C) may be 3-6 vol %, with a preferred value being 5 vol % for the proposed alloy. As used above, M stands for metallic component of the carbides, carbonitride or nitride, and may be constituted by several of the metallic elements of the alloy.
(19) As another non-limiting example, the homogeneous material may comprise nitrides and/or carbonitrides in the range of 12-25 vol %, preferably in the range of 14-20 vol %.
(20) Purely by way of example, an average size of the nitrides is within the range of 1-3 m. An average nitride size within the above range implies a preferred machinability.
(21) Purely by way of example, the size of the nitrides can be measured from an image of a cross-section of the homogeneous material, which image has a magnification of for instance 3000-5000 times, taken with e.g. a scanning electron microscope equipped with a back-scatter detector. The nitride size may be determine by determining the diameter of the smallest circle that envelopes the nitride. Moreover, the volume fraction of nitrides/carbonitrides/carbides can be calculated based on the image.
(22) As a non-limiting example, at least 10 vol %, preferably at least 12 vol %, more preferred at least 15 vol %, of the nitrides consists of vanadium nitrides. A vanadium nitride amount at or above any one of the above limit implies an appropriate wear resistance. Preferably, nitrides and/or carbonitrides of the homogeneous material are vanadium-rich with a chemistry close to the nitride of type MN (where M=Vanadium and N=Nitrogen).
(23) Purely by way of example, the homogeneous material may consist of 0.6-1.6 weight % C, 1.5-3 weight % N, 0.2-0.6 weight % Mn, 0.3-0.7 weight % Si, 4-5 weight % Cr, 2.8-3.6 weight % Mo, 3.4-4 weight % W, 8-10 weight % V, balance Fe.
(24) As another non-limiting example, the homogeneous material may consists of 0.95-1.25 weight % C, 1.5-2.1 weight % N, 0.3-0.5 weight % Mn, 0.4-0.6 weight % Si, 4.2-4.8 weight % Cr, 3-3.4 weight % Mo, 3.5-3.9 weight % W, 8.2-8.8 weight % V, balance Fe.
(25) For example, the homogeneous material may consists of 1.1 weight % C, 1.8 weight % N, 0.4 weight % Mn, 0.5 weight % Si, 4.5 weight % Cr, 3.2 weight % M, 3.7 weight % W, 8.5 weight % V, balance Fe and unavoidable impurities.
(26)
(27) arranging nitrided steel powder in a mould, and
(28) densifying the nitrided steel powder.
(29) Purely by way of example, the nitrided steel powder may have a nitrogen content of at least 0.5 weight %, preferably at least 1.0 weight %, more preferred at least 1.5 weight %.
(30) As a non-limiting example, the nitrided steel powder may consist of 0.6-1.6 weight % C, 1.5-3 weight % N, 0.2-0.6 weight % Mn, 0.3-0.7 weight % Si, 4-5 weight % Cr, 2.8-3.6 weight % Mo, 3.4-4 weight % W, 8-10 weight % V, balance Fe.
(31) Alternatively, the nitrided steel powder may consist of 0.95-1.25 weight % C, 1.5-2.1 weight % N, 0.3-0.5 weight % Mn, 0.4-0.6 weight % Si, 4.2-4.8 weight % Cr, 3-3.4 weight % Mo, 3.5-3.9 weight % W, 8.2-8.8 weight % V, balance Fe.
(32) For example, the nitrided steel powder may consists of 1.1 weight % C, 1.8 weight % N, 0.4 weight % Mn, 0.5 weight % Si, 4.5 weight % Cr, 3.2 weight % Mo, 3.7 weight % W, 8.5 weight % V, balance Fe and unavoidable impurities.
(33)
(34) In a second step S12, the high velocity compacted part is sintered in controlled atmosphere. Purely by way of example, the high velocity compacted part may be sintered at a temperature exceeding 1100 C., preferably at a temperature exceeding 1200 C., for instance in a sintering oven 23 in a vacuum or in a reducing or inert atmosphere. Thereafter, in a third step S14, the valve seat insert 14 is obtained. A high velocity compaction performed at or above any one of the above limits could contribute to an appropriate temperature stability during use.
(35) As an alternative to the high velocity compaction illustrated in
(36) As non-limiting examples, the pressure in the vessel may be in the range of 100 to 350 MPa. Moreover, again as a non-limiting example, the temperature in the vessel may exceed 1100 C. and may preferably exceed 1200 C. Purely by way of example, the temperature may be in the range of 1000-1500 C., alternatively in the range of 1200-1300 C.
(37) Subsequent to the hot isostatic pressing, in step S26, the mould 24 and the lid 26 are removed such that a blank 30 for valve seat insert is obtained. Such a blank 30 can thereafter be cut in order to obtain individual valve seat inserts (not shown in
(38) Finally,
(39) The metal powder 36 obtained in step 30 is thereafter nitrided. Purely by way of example, and as is indicated in step S32 the metal powder 36 may be nitrided in a bed reactor 38 at a temperature within the range of 550-600 C. During step S32, nitrogen and ammonia may be fed to the bed reactor 38.
(40) It is to be understood that the present invention is not limited to the embodiments described above and illustrated in the drawings; rather, the skilled person will recognize that many changes and modifications may be made.