[0001] The present invention relates in general to the so-called flame plates for the heads
of internal combustion engines and more specifically concerns a method of producing
such flame plates, that is, of the parts of the head which define the so-called tops
of the various cylinders of the engine.
[0002] It is known that the resistance of these flame plates to thermal fatigue, particularly
in heads of light material intended for compression-ignition (diesel) engines, can
be improved by inserting an insert of a material with an increased resistance to the
thermal stresses generated during the operation of the engine in the bridge region
(that is, in the region which separates the holes defining the valve seats and any
hole for the insertion of an injector).
[0003] A solution of this type is described, for example, in United States Patent 4, 487,175.
[0004] Various techniques have hitherto been adopted for locating the insert and ensuring
that it is firmly retained in the material forming the head.
[0005] According to a solution which can be adopted for inserts made from steel plates or
small inserts of alloy material, it is known to locate the insert in the die (mould)
for casting the head so that the insert is incorporated in the material of the head
and a mechanical anchorage is thus achieved.
[0006] According to a possible alternative, seats are provided in the blank casting and
are then filled with the material forming the insert. The material is integrated into
the seats by fusion, sintering or, if it is preformed, by laser welding or other welding
methods.
[0007] These solutions cannot be considered wholly satisfactory. In general, the actual
characteristics of the material forming the insert, whilst improving its resistance
to thermal fatigue, may be critical as regards the location and retention of the insert
in the head and may also tend to disturb the propagation of heat through the critical
bridge region, perhaps leading to its failure.
[0008] The object of the present invention is to provide a method of producing flame plates
of the type specified above which does not give rise to the aforementioned problems.
[0009] According to the present invention, this object is achieved by virtue of a method
which has the characteristics quoted specifically in the following claims.
[0010] A further subject of the invention is a product which can be produced by the above
method.
[0011] By way of summary, the solution according to the invention provides for the use of
inserts of a material which has a low coefficient of expansion (typically an aluminium
alloy reinforced with ceramic particles or fibres) and is therefore not very susceptible
to the thermal expansion which can cause the failure of the bridge, the inserts being
connected to the material forming the head by metallurgical adhesion resulting from
the surface fusion of the insert during the manufacture of the head.
[0012] The invention will now be described, purely by way of non-limiting example, with
reference to the appended drawings, in which:
Figure 1 shows schematically, in a general perspective view, the head of an internal
combustion engine produced according to the invention,
Figure 2 is a view from above of a die (mould) usable for carrying out the invention,
Figure 3 is a section taken on the line III-III of Figure 2, and
Figure 4 reproduces a view through a microscope, showing the intimate adhesion at
a metallurgical level of two component parts of a head according to the invention.
[0013] In Figure 1, the head (cylinder head) of an internal combustion engine, such as a
compression-ignition (diesel) engine, is generally indicated 1 and constituted essentially
by a shaped body of light material.
[0014] The term "light material" as used in the present description and in the following
claims is intended generally to mean any material (aluminium, various alloys) currently
known as a "light alloy" and used for manufacturing heads for internal combustion
engines, this choice of term being intended to leave out of consideration either whether
the material is an alloy proper or the composition thereof, which are irrelevant for
the purposes of the invention.
[0015] The embodiment illustrated is the head 1 of a compression-ignition (diesel) engine
including four cylinders with respective top regions defining the so-called flame
plates of the head.
[0016] In correspondence with each cylinder, the head 1 is provided with two holes 2 for
defining the valve-mounting seats. The holes 2, together with a further hole 3 for
housing an injector, define the so-called bridge region in which an insert 4 of a
material with good resistance to thermal stresses is located.
[0017] According to the solution currently considered preferable, the inserts are of aluminium
alloy reinforced with fibres (whiskers) or particles of ceramics material.
[0018] According to a known solution, the head 1 is produced by casting in a die (mould),
generally indicated 5 in Figures 2 and 3.
[0019] In general terms, the die 5 is substantially comparable to a tank with a base wall
from which formations (rods) project upwardly for reproducing, in a complementary
manner, the shapes of the holes 2 and 3 described above.
[0020] More precisely, in correspondence with each cylinder, there are two main rods 6 for
defining the holes 2 and a third rod 7 for defining the hole 3.
[0021] The inserts 4 are made so that they can be fitted onto the rods 6 and 7 and remain
at a certain distance (for example, of the order of 1.5-2.5 mm) from the upper face
of the base wall of the die 5.
[0022] Ducts, generally indicated 8, are provided in the die 5 for distributing the casting
material beneath the base wall, the ducts branching from a main opening 9 situated
at the upper end of the die for the introduction of the casting material (light material
- as defined above).
[0023] The distribution ducts 8 open into the die through respective openings 11, 12 situated
on the two opposite sides of the die (see particularly the plan view of Figure 2).
[0024] The openings for distributing the casting material over the two walls are arranged
in staggered positions.
[0025] In the embodiment illustrated, one side of the die has as many openings 11 as there
are cylinders of the head 1. There are therefore four openings, each situated in alignment
with the axis of one of the cylinders, that is, aligned with the centre line between
the main rods 6 and thus oriented axially of the corresponding cylinder.
[0026] Five openings 12 are provided on the opposite side, of which the central three are
in positions intermediate two adjacent cylinders whilst the two end openings are adjacent
the end parts of the die 5. All the openings 12 are thus oriented tangentially of
at least one corresponding cylinder of the head 1.
[0027] This solution, together with the presence of the above-described space or gap beneath
each insert 4, has been shown to be preferable for achieving the best distribution
of the casting material.
[0028] According to the currently-preferred embodiment of the invention, the die or mould
6 is initially brought to a temperature of not less than 300°C.
[0029] The inserts 4 are then fitted onto the rod 6, 7, care being taken that the space
or gap defined with respect to the base of the die has the prescribed dimensions (from
1.5 to 2.5 mm).
[0030] Usually, the surface of the insert 4 must be activated appropriately before casting
by means of sandblasting or at any rate by treatments for removing the surface layer
of alumina which is always present on this type of material.
[0031] The die is then closed and the light material necessary for making the head introduced
through the feed opening 9. The material is cast at a temperature of at least 700°C
(preferably about 750°C) and is propagated within the die 5, particularly over the
entire surfaces of the inserts 4. The immediate heating of the entire surfaces of
the latter causes the surface fusion of the inserts 4 and their intimate adhesion
to the mass of light material forming the head.
[0032] The die 5 is then cooled according to known criteria, so as to cool the head which
is then removed from the die.
[0033] At this point, the head undergoes mechanical working (levelling) with the primary
object of removing the mass of light material which is introduced into the gap or
space, indicated 13, between the inserts 4 and the base wall of the die. In other
words, the working in question causes the inserts 4 to reappear at the outer surface
of the head.
[0034] The mechanical working of the whole head is then carried out (by known techniques)
so as, for example, to bring the holes 2 for forming the valve-mounting seats to the
required tolerance.
[0035] It has been shown that the casting technique described is decisive for the production
of an intimate and firm anchorage between the inserts 4 and the mass of light material
forming the head as a whole 1.
[0036] Figure 4 shows the microstructural appearance of the interface region between the
material of one of the inserts 4 and the mass of light material of the head, generally
indicated L.
[0037] In the image (magnified 100 times) the presence of a region of surface fusion of
the insert, indicated 40, which can give rise to a practically inseparable metallurgical
adhesion between the insert 4 and the rest of the head 1, can clearly be recognised.
[0038] It has been found that the best results from the qualitative point of view are obtained
when the dimensions of the inserts 4 are such that the ratio between their mass and
the overall mass of the head is of the order of 1:1000 (for example, 15 grams/mass
for the inserts 5 in comparison with 15 kg overall mass of the head 1).
1. A method of making flame plates for the cylinder heads (1) of internal combustion
engines, comprising a mass (L) of light material (as defined above) with at least
one incorporated insert (4) of heat-resistant material, in which the at least one
insert (4) is set into the light material by casting, characterised in that the light
material is cast at a temperature such as to cause surface fusion of the at least
one insert (4) so as to achieve metallurgical adhesion (40) between the at least one
insert (4) and the mass of light material (L).
2. A method according to Claim 1, characterised in that the light material is brought
to a temperature of at least 700°C.
3. A method according to Claim 2, characterised in that the light material is brought
to a temperature of the order of 750°C.
4. A method according to any one of the preceding claims, characterised in that the
light material is substantially constituted by aluminium.
5. A method according to Claim 1 or Claim 4, characterised in that the at least one
insert (4) is substantially constituted by an aluminium alloy reinforced with ceramics
material.
6. A method according to Claim 5, characterised in that the ceramics material is in
the form of fibres (whiskers).
7. A method according to Claim 5, characterised in that the ceramics material is in
the form of particles.
8. A method according to any one of the preceding claims characterised in that includes
the step of providing, for the casting of the light material, a generally tank-shaped
die (5) with a base wall, and the step of providing the die (5) with formations (6,
7) for supporting the at least one insert (4) during casting.
9. A method accoding to Claim 8, characterised in that the formations are made in
the form of rods (6, 7) projecting from the base wall of the die (6).
10. A method according to Claim 8 or Claim 9, characterised in that the formations
(6, 7) are made so as to define corresponding holes (2, 3) within the resulting flame
plate.
11. A method according to any one of claims 8 to 10, characterised in that the formations
(6, 7) are made so as to keep the at least one insert (4) at a given distance from
the base wall of the die, in order to cause the formation of a respective gap (13)
which can be filled by a mass of the light material during casting.
12. A method according to Claim 11, characterised in that the given distance is at
least 1.5 mm.
13. A method according to Claim 12, characterised in that the given distance is substantially
in the range 1.5 - 2.5 mm.
14. A method according to any one of Claims 8 to 13, characterised in that it includes
the step of providing the die (5) with at least one first (11) and one second (12)
row of openings for admitting the light material during casting, the openings of the
first and second rows (11, 12) being directed axially and tangentially of at least
one cylinder of the head (1), respectively.
15. A method according to any one of Claims 8 to 14, characterised in that the die
(5) is brought to a temperature of at least 300°C before the casting of the light
material.
16. A method according to Claim 15, characterised in that the die (5) is brought to
a temperature substantially equal to 350°C before the casting of the light material.
17. A method according to any one of Claims 11 to 13, characterised in that, after
the casting of the light material in the die (5), the cylinder head (1) thus formed
is cooled and subjected to mechanical working to remove the mass of light material
which has been introduced into the respective gap (13).
18. A flame plate for the cylinder head (1) of an internal combustion engine, including
at least one insert (4) of heat-resistant material incorporated with metallurgical
adhesion (40) in a mass of light material (L).
19. A flame place according to Claim 18, characterised in that the insert (4) is substantially
constituted by an alloy of aluminium reinforced with ceramics material.
20. A flame plate according to Claim 19, characterised in that the ceramics material
is in the form of fibres.
21. A flame plate according to Claim 19, characterised in that the ceramics material
is in the form of particles.
22. A flame plate for the cylinder head of an internal combustion engine, produced
by the method according to any one of Claims 1 to 17.