Technical Field
[0001] The present invention relates to an injection nozzle for an internal combustion engine,
in particular for a compression-ignition internal combustion engine, and to a fuel
injector having an actuator and such an injection nozzle.
Background to the Invention
[0002] Referring to Figure 1, a known injection nozzle 1 for a compression ignition internal
combustion engine comprises a nozzle body 2 and a valve needle 3. The nozzle body
2 is provided with a blind bore 4 within which the valve needle 3 is movable to engage
with, and disengage from, a valve needle seating 5 defined towards the blind end of
the bore 4. The valve seating 5 is of substantially frusto-conical form, as is known
in the art.
[0003] The nozzle body 2 also includes a plurality of nozzle outlets (not shown) through
which fuel can be injected into an associated engine cylinder or combustion space,
in circumstances in which the valve needle 3 is lifted from the valve seating 5. The
blind end of the bore 4 defines a sac volume 6 with which inlet ends of the plurality
of nozzle outlets communicate.
[0004] The valve needle 3 includes an upper region 7 of cylindrical form which defines,
together with the surface of the bore 4 upstream of the valve seating 5, a delivery
chamber 8 for receiving high pressure fuel from an inlet (not shown) to the injector
of which the injection nozzle 1 forms a part. Adjacent to the upper region 7, and
located further downstream, the valve needle 3 includes a first region 9 of substantially
frusto-conical form (also known as the entry region 9 of the nozzle) and, further
downstream still, a second region 10 of substantially frusto-conical form (also known
as the seat region 10). A third valve region 11 of substantially frusto-conical form
is disposed downstream of the seat region 10. The valve needle terminates in a conical
valve tip 12, which projects into the sac volume 6 when the valve needle 3 is seated.
[0005] A transition edge between the seat region 10 and the third region 11 forms a seating
line 13 which engages with the valve seating 5 when the valve needle 3 is in a non-injecting
state. In use, as the valve needle 3 is moved away from the valve seating 5, high
pressure fuel is permitted to flow past the valve seating 5 into the sac volume 6
from where it is injected through the nozzle outlets into the associated engine cylinder.
When the valve needle 3 is moved to re-engage with the valve seating 5, the flow of
fuel into the sac volume 6 is prevented and injection through the nozzle outlets is
terminated.
[0006] The known injection nozzle of Figure 1, is typically employed in fuel delivery systems
such as electronic unit injectors (EUIs) and electronic unit pumps (EUPs). Such systems
experience high levels of pressure wave activity during operation. In the time following
an injection event, the pressure in some regions of the injection nozzle 1 will drop
to below the vapour pressure of the fuel. This causes cavitation to form as the fuel
vapourises or foams locally. When pressure waves return to these regions, the bubbles
of vapour collapse. The energy given out during this process is known to cause severe
damage to the surfaces of the components, and is known in the art as cavitation damage.
[0007] More specifically, when the valve needle 3 is in the non-injecting state, as shown
in Figure 1, a very narrow conical wedge of fuel is formed in the volume defined between
the surface of the bore 4 and the valve needle 3, immediately upstream of the seating
line 13, as indicated by the dashed line 14. The fuel in this volume is prone to cavitate
and damage can occur to the material of the nozzle body 2 and the valve needle 3 in
this region. Over a period of time, such damage can cause the seal at the seating
line 13 to be broken, resulting in degraded performance.
[0008] It is an object of the present invention to provide an injection nozzle which substantially
overcomes or mitigates at least one of the aforementioned problems.
Summary of Invention
[0009] According to a first aspect of the invention, there is provided an injection nozzle
for an internal combustion engine, the injection nozzle comprising a nozzle body provided
with a bore within which a valve needle is movable along a primary valve needle axis,
the valve needle being engageable with a valve seating defined by the bore to control
fuel delivery through a nozzle outlet, and including a first region, a second region
and a seating region defined by a transition between the first and second regions
which seats against the valve seating when the injection nozzle is in a non-injecting
state. The invention is characterised by a relieved region disposed upstream of the
seating region, the relieved region and one of the valve seating and the first region
defining an anti-cavitation volume therebetween when the injection nozzle is in the
non-injecting state, and wherein the valve needle and the valve seating together define
a restriction upstream of the relieved region for restricting the flow of fuel into
and out of the anti-cavitation volume when the injection nozzle is in the non-injecting
state in order to reduce pressure wave activity upstream of the seating region.
[0010] Thus, by providing the anti-cavitation volume and the restriction, fuel is prevented
from rapidly evacuating the region upstream of the seating region when the pressure
in the injection nozzle drops at needle closure. The tendency for the pressure in
the anti-cavitation volume to drop low enough in order for cavitation to occur is
therefore reduced or prevented. Furthermore, when the pressure wave subsequently returns
to the anti-cavitation volume, the energy is dissipated as the wave passes through
the restriction. Thus, the pressure wave activity in the region upstream of the seating
region is dramatically reduced. This significantly reduces any damage from cavitation
on or near the seating region.
[0011] In one embodiment, said first region has a substantially frusto-conical form and
said relieved region comprises an annular groove formed within the valve seating.
Conveniently, said relieved region defines an upstream frusto-conical portion of the
first region and a downstream frusto-conical portion of the first region on either
side thereof, when the injection nozzle is in the non-injecting state.
[0012] Alternatively, said first region has a substantially frusto-conical form and said
relieved region comprises an annular groove formed within said first region of the
valve needle. Conveniently, said relieved region defines an upstream frusto-conical
portion of the first region and a downstream frusto-conical portion of the first region
on either side thereof.
[0013] Preferably, the length of the downstream frusto-conical portion is between about
0.15mm and 0.45mm.
[0014] Conveniently, said restriction is defined by the upstream frusto-conical portion
of the first region of the valve needle and the valve seating. Preferably, the width
of the restriction is between about 0.01 mm and 0.05mm.
[0015] Preferably, the radius of the bore increases upstream from the upper end of the valve
seating, and the restriction is defined by an overlap between the upper end of the
valve seating and the downstream end of the upstream frusto-conical portion. More
preferably, the length of the overlap is not less than 0.01 mm. Still more preferably,
the length of the overlap is approximately 0.06mm.
[0016] Preferably, the valve seating defines a seat cone angle, said first region defines
a first cone angle, and a differential angle between the first cone angle and the
seat cone angle is between about 1 and 3 degrees.
[0017] Preferably, the depth of the annular groove is between about 0.08mm and 0.15mm and
is more preferably approximately 0.11 mm.
[0018] Preferably, the second region is of substantially frusto-conical form.
[0019] Conveniently, the seating region is a seating line defined by a transition edge between
the first and second regions.
[0020] The injection nozzle may be one of (i) VCO-type or (ii) sac-type.
[0021] According to a second aspect of the invention, there is provided a fuel injector
for an internal combustion engine, the fuel injector having an actuator and an injection
nozzle of the invention, wherein the actuator is configured to control movement of
the valve needle of the nozzle towards and away from the valve seating.
[0022] Preferably, said actuator is an electromagnetic actuator. Alternatively, said actuator
may be a piezoelectric actuator.
[0023] Preferred and/or optional features of the first aspect of the invention may be incorporated
within the fuel injector of the second aspect, alone or in appropriate combination.
Brief Description of Drawings
[0024]
Figure 1 is a cross-sectional view of an injection nozzle of the kind known in the
art. Embodiments of the present invention will now be described, by way of example
only, with reference to Figures 2 to 4 of the accompanying drawings, in which;
Figure 2 is a cross-sectional view of a first embodiment of an injection nozzle according
to the present invention;
Figure 3 is an enlarged cross-sectional view of the region labelled "X" in Figure
2; and
Figure 4 is a cross-sectional view of a second embodiment of an injection nozzle according
to the present invention.
Detailed Description of Preferred Embodiments
[0025] Referring to Figures 2 and 3, the injection nozzle 20 comprises a nozzle body 22
and a valve needle 23. The nozzle body 22 is provided with a blind bore 24 within
which the valve needle 23 is movable to engage with, and disengage from, a valve seating
25 defined by the blind end of the bore 24. The valve seating 25 is of substantially
frusto-conical form, as is known in the art.
[0026] The nozzle body 22 also includes a plurality of nozzle outlets (not shown) through
which fuel can be injected into an associated engine cylinder or combustion space,
in circumstances in which the valve needle 23 is lifted from the valve seating 25.
The blind end of the bore 24 defines a sac volume 26 with which inlet ends of the
plurality of nozzle outlets communicate.
[0027] The valve needle 23 includes an upper region 27 of cylindrical form which defines,
together with the surface of the bore 24 upstream of the valve seating 25, a delivery
chamber 28 for receiving high pressure fuel from an inlet (not shown) to the injector
of which the injection nozzle 20 forms a part. Adjacent to the upper region 27, and
located further downstream, the valve needle 23 includes a first region 36 of substantially
frusto-conical form (to be described in more detail later) and, further downstream
still, a second region 38 of substantially frusto-conical form. The valve needle terminates
in a conical valve tip 32, which projects into the sac volume 26 when the valve needle
23 is seated.
[0028] The frusto-conical first region 36 defines a first cone angle or vertex angle. The
valve seating 25 has a generally conical shape and defines a seat cone angle, which
is larger than the first cone angle of the first region 36. The differential angle
between the first region 36 and the valve seating 25 is preferably between 1 and 3
degrees. The optimum value for the differential angle has been found to be 2 degrees.
[0029] A transition between the first region 36 and the second region 38 forms a seating
region 33 which engages with the valve seating 25 when the valve needle 23 is in a
non-injecting state. In use, as the valve needle 23 is moved away from the valve seating
25, high pressure fuel is permitted to flow past the valve seating 25 into the sac
volume 26 from where it is injected through the nozzle outlets into the associated
engine cylinder. When the valve needle 23 is moved to re-engage with the valve seating
25, the flow of fuel into the sac volume 26 is prevented and injection through the
nozzle outlets is terminated.
[0030] The first region 36 comprises a relieved region 40 in the form of an annular groove.
The relieved region 40 is disposed approximately half-way along the first region 36
in the direction of the primary needle axis (A-A). Accordingly, the relieved region
40 defines an upstream frusto-conical portion 41 and a downstream frusto-conical portion
42 of the first region 36 on either side thereof.
[0031] The downstream frusto-conical portion 42 has the seating region 33 at the downstream
end thereof. The downstream frusto-conical portion 42 is shaped so as to aid with
the absorption of impact energy when the valve needle 23 closes and also to help protect
the seating region 33 from pressure waves. The length of the downstream frusto-conical
portion 42, as indicated by the dimension labelled "44" in Figure 2, is preferably
between 0.15 and 0.45mm. The optimum value for the length of the downstream frusto-conical
portion 42 has been found to be 0.31 mm.
[0032] The geometry of the relieved region 40 is selected so as to maximise the volume 50
defined between the relieved region 40 and the valve seating 25 when the valve needle
23 is in the non-injecting position. Furthermore, the relieved region 40 is configured
so as to ensure that there is an overlap of land 45 between the upstream frusto-conical
portion 41 and the valve seating 25 when the valve needle 23 is in the non-injecting
position.
[0033] The depth of the groove of the relieved region 40, indicated by the dimension labelled
"46" in Figure 3, may be between about 0.08mm and 0.15mm. For a seat diameter of 2.25mm,
the groove depth 46 is preferably 0.11mm. The groove depth 46 is selected so as to
allow for optimal manufacturing of the valve needle 23 and to ensure that turbulence
flow loss is minimised in use.
[0034] As explained above, when the valve needle 23 is in the non-injecting position there
is an overlap of land 45 between the upstream frusto-conical portion 41 and the valve
seating 25. Upstream from the conical valve seating 25, the bore 24 of the nozzle
body 22 widens so as to define the delivery chamber 28 between the valve needle 23
and the surface of the bore 24. With the valve needle 23 in the non-injecting position,
the upstream frusto-conical portion 41 is disposed adjacent to the transition between
the upstream end of the valve seating 25 and the downstream end of the delivery chamber
28. The length of the overlap 45 is preferably kept to a minimum, but the mean value
should ensure that the minimum overlap 45 is greater than 0.01 mm after assembly of
the injection nozzle 20. For example, this can be achieved when a mean value of 0.06mm
is used.
[0035] The overlap 45 defines a narrow gap or restriction 47 between the upstream frusto-conical
portion 41 and the valve seating 25. The width of the restriction 47 is selected so
as to restrict the flow of fuel therethrough as much as possible, whilst being large
enough such that, as the downstream frusto-conical portion 42 wears from use, the
upstream frusto-conical portion 41 will not contact the valve seating 25 during needle
closure and form a new sealing diameter. Preferably, the width of the restriction
47 is between 0.01 and 0.05mm. The optimum value for the width of the restriction
47 has been found to be 0.03mm.
[0036] The operation of the injection nozzle 20 will now be described in detail.
[0037] When the valve needle 23 is in the non-injecting state, as shown in Figures 2 and
3, the seating region 33 of the valve needle 23 rests against the valve seating 25
of the nozzle body 22 and fuel is prevented from flowing to the sac volume 26 and
through the nozzle outlets.
[0038] When the injection nozzle 20 is required to inject, the valve needle 23 is lifted
from the valve seating 25, i.e. the valve needle 23 is moved in the upstream direction
along the primary needle axis (A-A) by means of a suitable actuator, such as a piezoelectric
actuator or an electromagnetic actuator. When the valve needle 23 lifts, fuel at high
pressure (e.g. 2000 bar) in the delivery chamber 28 is permitted to flow past the
seating region 33 and into the sac volume 26 from where it is injected into an associated
engine combustion chamber.
[0039] At the end of an injection event, the valve needle 23 closes again, such that the
seating region 33 contacts the valve seating 25 so as to prevent the flow of fuel
to the sac volume 26. As explained previously, the rapid closure of the valve needle
23 is followed by a rapid fall in the fluid pressure immediately upstream of the seating
region 33. However, when the pressure drops, the fuel in the anti-cavitation volume
50 defined between the relieved region 40 and the valve seating 25 is prevented from
being evacuated quickly since it must pass through the restriction 47. Accordingly,
the tendency for the pressure in the anti-cavitation volume 50 to drop to a low enough
level for cavitation to occur is reduced or prevented. Furthermore, when the pressure
wave subsequently returns to the anti-cavitation volume 50, the energy is dissipated
as the wave passes through the restriction 47. Thus, the pressure wave activity in
the region upstream of the seating region 33 is dramatically reduced. This significantly
reduces any damage from cavitation on or near the seating region 33.
[0040] Furthermore, any damage which may start to occur will be limited to the upstream
end of the upstream frusto-conical portion 41 as any cavities will tend to collapse
at this point first. Thus, the seating region 33 will not experience damage from cavitation
and performance will not be degraded.
[0041] In the embodiment described above with reference to Figures 2 and 3, the first region
36 and the relieved region 40 may be formed in separate manufacturing steps. More
specifically, in a first step, the valve member 23 is machined so as to produce the
first region 36 of substantially frusto-conical form. Thereafter, in a subsequent
manufacturing step, the annular groove is machined into the surface of the first region
36 so as to form the relieved region 40. It will be appreciated by those skilled in
the art that, when the relieved region 40 is formed in this manner, the resulting
upstream and downstream frusto-conical portions 41, 42 will have the same differential
angle relative to the valve seating 25.
[0042] In an alternative to the above-described method of manufacture, the first region
36 comprising the upstream frusto-conical portion 41, the relieved region 40, and
the downstream frusto-conical portion 42 may be formed in a single manufacturing step,
by machining the valve needle 23 to have the desired profile. In this case, the upstream
and downstream frusto-conical portions 41, 42 may be formed so as to have the same
differential angle relative to the valve seating 25. Alternatively, the upstream and
downstream frusto-conical portions 41, 42 may be formed with different differential
angles. This may be advantageous in that the differential angles of the upstream and
downstream frusto-conical portions 41, 42 can be chosen independently. Accordingly,
the differential angle of the upstream frusto-conical portion 41 may be selected so
as to provide the optimum width for the restriction 47, whereas the differential angle
of the downstream frusto-conical portion 42 may be selected so as to minimise wear
at the seating region 33.
[0043] An alternative embodiment of an injection nozzle according to the present invention
will now be described. In Figure 4, like reference numerals are used to refer to like
parts of the above-described injection nozzle of Figures 2 and 3.
[0044] Referring to Figure 4, the relieved region 40 is defined by an annular groove formed
within the valve seating 25 of the nozzle body 22, rather than being formed within
the valve needle 23 itself. Accordingly, the first region 36 of the valve needle 23
has a substantially frusto-conical form which defines a substantially constant differential
angle with the valve seating 25 across its surface.
[0045] When the injection nozzle 20 is in the non-injecting position, the valve member 23
rests against the valve seating 25 such that the upstream edge of the relieved region
40 defines the limit of the upstream frusto-conical portion 41 of the first region
36, as shown by a dashed line in Figure 4. Similarly, the downstream edge of the relieved
region 40 defines the limit of the downstream frusto-conical portion 42 of the first
region 36, also shown by a dashed line in Figure 4. Thus, in the embodiment of Figure
4, even though the first region 36 of the valve needle 23 does not comprise physically
distinct upstream and downstream frusto-conical portions 41, 42, such portions 41,
42 are nevertheless defined by reference to the relieved region 40 when the injection
nozzle 20 is in the non-injecting state. Accordingly, each of the exemplary dimensions
described above in relation to the embodiment of Figure 2 and 3, i.e. the length 44
of the downstream frusto-conical portion 42, the width of the restriction 47 and the
length of the overlap 45, is equally applicable to the embodiment of Figure 4.
[0046] The operation of the injection nozzle shown in Figure 4 is substantially the same
as that described above in relation to the embodiment of Figures 2 and 3. That is,
when the valve needle 23 closes at the end of an injection event, the seating region
33 contacts the valve seating 25 so as to prevent the flow of fuel to the sac volume
26. The rapid closure of the valve needle 23 is followed by a rapid fall in the fluid
pressure immediately upstream of the seating region 33. However, when the pressure
drops, the fuel in the anti-cavitation volume 50 defined between the relieved region
40 and the first region 36 of the valve needle 23 is prevented from being evacuated
quickly since it must pass through the restriction 47. Accordingly, the tendency for
the pressure in the anti-cavitation volume 50 to drop to a low enough level for cavitation
to occur is reduced or prevented. Furthermore, when the pressure wave subsequently
returns to the anti-cavitation volume 50, the energy is dissipated as the wave passes
through the restriction 47. Thus, the pressure wave activity in the region upstream
of the seating region 33 is dramatically reduced. This significantly reduces any damage
from cavitation on or near the seating region 33.
[0047] In each of the above-described embodiments, the seating region 33 may be in the form
of a seating line defined by a transition edge between the first and second regions
36, 38 of the valve needle 23, as will be appreciated by those skilled in the art.
However, it will equally be appreciated that the transition between the first and
second regions 36, 38 may extend over a greater area of the surface of the valve needle
23 so as to form an extended seating region 33.
[0048] Although the present invention has been described above with reference to a sac-type
injection nozzle, the skilled person will readily appreciate that the present invention
may be applied to a VCO-type injection nozzle.
1. An injection nozzle (20) for an internal combustion engine, the injection nozzle (20)
comprising:
a nozzle body (22) provided with a bore (24) within which a valve needle (23) is movable
along a primary valve needle axis (A-A), the valve needle (23) being engageable with
a valve seating (25) defined by the bore (24) to control fuel delivery through a nozzle
outlet, and including a first region (36), a second region (38) and a seating region
(33) defined by a transition between the first and second regions (36, 38) which seats
against the valve seating (25) when the injection nozzle (20) is in a non-injecting
state,
characterised by a relieved region (40) disposed upstream of the seating region (33), the relieved
region (40) and one of the valve seating (25) and the first region (36) defining an
anti-cavitation volume (50) therebetween when the injection nozzle (20) is in the
non-injecting state; and
wherein the valve needle (23) and the valve seating (25) together define a restriction
(47) upstream of the relieved region (40) for restricting the flow of fuel into and
out of the anti-cavitation volume (50) when the injection nozzle (20) is in the non-injecting
state in order to reduce pressure wave activity upstream of the seating region (33).
2. An injection nozzle according to claim 1, wherein said first region (36) has a substantially
frusto-conical form and said relieved region (40) is defined by an annular groove
formed within the valve seating (25).
3. An injection nozzle according to claim 1, wherein said first region (36) has a substantially
frusto-conical form and said relieved region (40) is defined by an annular groove
formed within said first region (36) of the valve needle.
4. An injection nozzle according to claim 2, wherein said relieved region (40) defines
an upstream frusto-conical portion (41) of the first region (36) on one side thereof
and a downstream frusto-conical portion (42) of the first region (36) on the other
side thereof, when the injection nozzle (20) is in the non-injecting state.
5. An injection nozzle according to claim 3, wherein said relieved region (40) defines
an upstream frusto-conical portion (41) of the first region (36) on one side thereof
and a downstream frusto-conical portion (42) of the first region (36) on the other
side thereof.
6. An injection nozzle according to claim 4 or 5, wherein the length (44) of the downstream
frusto-conical portion (42) is between about 0.15mm and 0.45mm.
7. An injection nozzle according to any one of claims 4 to 6, wherein said restriction
(47) is defined by the upstream frusto-conical portion (41) of the first region (36)
of the valve needle (23) and the valve seating (25).
8. An injection nozzle according to claim 7, wherein the width of the restriction (47)
is between about 0.01 mm and 0.05mm.
9. An injection nozzle according to any one of claims 4 to 8, wherein the radius of the
bore (24) increases upstream from an upper end of the valve seating (25), and the
restriction (47) is defined by an overlap (45) between the upper end of the valve
seating (25) and the downstream end of the upstream frusto-conical portion (41).
10. An injection nozzle according to claim 9, wherein the length of the overlap (45) is
not less than 0.01 mm.
11. An injection nozzle according to claim 10, wherein the length of the overlap (45)
is approximately 0.06mm.
12. An injection nozzle according to any one of claims 2 to 11, wherein the valve seating
(25) defines a seat cone angle, said first region (36) defines a first cone angle,
and a differential angle between the first cone angle and the seat cone angle is between
about 1 and 3 degrees.
13. An injection nozzle according to any one of claims 2 to 12, wherein the depth of the
annular groove is between about 0.08mm and 0.15mm and is preferably approximately
0.11 mm.
14. An injection nozzle according to any preceding claim, wherein the second region (38)
is of substantially frusto-conical form.
15. An injection nozzle according to any preceding claim, wherein the seating region (33)
is a seating line defined by a transition edge between the first and second regions
(36, 38).