Friction insert for an oriented valve

EP4652365A1Pending Publication Date: 2025-11-26RABHI VIANNEY
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
EP2024703063
Authority / Receiving Office
EP · EP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-01-16
Filing Date
2024-01-05
Publication Date
2025-11-26

AI Technical Summary

Technical Problem

The existing torch ignition prechambers in internal combustion engines face challenges with the durability and thermal resistance of non-magnetic prechamber noses, particularly copper, which are prone to excessive temperature and abrasive wear, leading to potential self-ignition and reduced lifespan.

Method used

The friction insert for an oriented valve uses guide means made of hard materials resistant to abrasion, such as Inconel 718, to guide the valve body and orientation pin, allowing for high thermal and mechanical resistance without compromising the non-magnetic prechamber nose's conductivity, and enabling the use of compatible anti-friction coatings.

Benefits of technology

This solution ensures a long-lasting, thermally stable valve operation that maintains optimal efficiency and prevents untimely self-ignition, compatible with mass production and economic constraints, while allowing for adjustable ignition power and reduced emissions.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure FR2024050010_25072024_PF_FP_ABST
    Figure FR2024050010_25072024_PF_FP_ABST
Patent Text Reader

Abstract

The invention relates to a friction insert for an oriented valve (60), the friction insert being intended for a valve ignition pre-chamber (1) and comprising a valve body guide outer cylindrical bearing surface (64) which is arranged on the periphery of a guide pin valve (50) and which slides with little play inside a first valve body guide means (63), the insert (60) also comprising a pin guide outer cylindrical bearing surface (66) which is arranged on the outer periphery of an orientation pin (15) and which slides with little play inside a second orientation pin guide means (65), both of the means (63, 65) being resistant to abrasive wear and being fixedly mounted in a non-magnetic pre-chamber nose (62) in which they guide and orient the guide pin valve (50).
Need to check novelty before this filing date? Find Prior Art

Description

Description Title of the invention: FRICTION INSERT FOR ORIENTED VALVE

[0001] The present invention relates to a friction insert for an oriented valve which forms an improvement to the ignition pre-chamber with valve which is the subject of patent No. FR 3 061 743 published on August 16, 2019 and belonging to the applicant.

[0002] The friction insert for oriented valve according to the present invention combines advantageously with the main improvements of said pre-chamber according to patent FR 3 061 743, said improvements having been the subject of several patent applications.

[0003] Among the said improvements, we note the “magnetic valve return device” which is the subject of French patent application No. 3,085,718 published on March 13, 2020, or “F ignition insert with active pre-chamber” for which the French patent application was filed on May 13, 2019 under No. 1904961, or the “ignition pre-chamber with reverse combustion direction valve” which was the subject of French patent application No. 2001508 of February 14, 2020, or the patent entitled “valve with guide pin” published under No. WO2022079367.

[0004] All these patents and patent applications have in common that they present, as do most state-of-the-art torch ignition devices intended for reciprocating internal combustion engines, an ignition pre-chamber formed by a stratification cavity arranged in the cylinder head of an internal combustion engine.

[0005] The strategy used by said patents, patent applications and devices is known in particular by the Anglo-Saxon term “Turbulent Jet Ignition”.

[0006] According to said patents and patent applications, the stratification cavity is, on the one hand, connected to the combustion chamber of the internal combustion engine by a stratification conduit, and on the other hand, receives a stratification injector which can inject into said cavity a pilot charge previously pressurized by compression means, said charge consisting of an oxidant-fuel mixture which is easily ignited by means of a spark.

[0007] It is noted that the combustion chamber receives a main charge which can be either undiluted or diluted with air or with recirculated exhaust gases, the dilution making it possible in particular to maximize the energy efficiency of the internal combustion engine.

[0008] The said patents and patent applications belonging to the applicant are distinguished from the prior art in that the stratification conduit exposes a seat valve closure on which a stratification caplet can rest to close said duct. In doing so, said valve isolates the stratification cavity from the combustion chamber of the internal combustion engine.

[0009] When, on the other hand, said valve is moved away from said seat to rest on a valve stop on the chamber side directly or via a damping chamber as set out in French patent application 3,085,718, said valve forms with the stratification duct a torch ignition pre-chamber which communicates simultaneously, on the one hand, with the stratification cavity, and on the other hand, with the combustion chamber via gas ejection orifices.

[0010] This particular configuration allows a pilot charge to be introduced into the stratification cavity which remains perfectly flammable regardless of the nature and composition of the main charge formed in the combustion chamber. In fact, said main charge and said pilot charge can no longer mix because the two charges are separated in a sealed manner by the stratification valve.

[0011] This advantage is decisive, because the composition, pressure and temperature of the pilot charge can be radically different from those of the main charge.

[0012] The stratification valve thus makes it possible to avoid one of the main pitfalls of torch ignition pre-chambers that can be described as "open" - i.e. without a stratification valve - which, according to the state of the art, implies that if a gas mixture that is difficult to ignite forms the main charge, said mixture also forms - in part and by inappropriate mixing - the pilot charge in the ignition pre-chamber.

[0013] Indeed, in the case of "open" pre-chambers, the result of the mixture between the main charge and the pilot charge is that the latter is all the less capable of delivering a high ignition power as the ignition of the main charge requires a high ignition power.

[0014] Conversely, and still in the case of "open" pre-chambers, when the main charge is formed from a slightly diluted and very reactive mixture which only requires a low ignition power in order to prevent the combustion of said charge from generating excessively high pressure gradients and noise in the main chamber, the pilot charge is too energetic because it is partly formed from the mixture constituting the main charge, and it inherits its pressure and temperature.

[0015] In other words, without the laminating caplet which, according to the patent No. FR 3 061 743, allows the stratification duct to be closed, the pilot charge is necessarily formed in part from the mixture constituting the main charge and therefore, said pilot charge inherits in part the susceptibility to ignition and combustion of the main charge, and its energy content is directly linked to the pressure imposed on it by said main charge, which is contrary to the need.

[0016] Indeed, the less reactive the main charge is, the more powerful the pilot charge must be. Conversely, the more easily and quickly the main charge can be burned, the less energetic the pilot charge must be to avoid the main charge burning too quickly.

[0017] This is why the valve ignition pre-chamber of patent FR 3 061 743 forms an autonomous torch ignition device whose power can be freely adjusted, in order to find the best compromise between efficiency, pollutant emissions and the acoustic emissions of the internal combustion engine which receives it.

[0018] This being explained, it can be seen in the figures of patent WO2022079367 that, advantageously, an orientation stud emerges from the axial opening face presented by the main valve body of the stratification valve, this to form a valve with a guide stud.

[0019] The orientation pin cooperates with an axial guide orifice in which it is housed with little radial clearance, said orifice passing through a valve stop on the chamber side. Thus, said pin can slide longitudinally in said orifice without ever completely exiting it. In doing so, said pin orients the valve with guide pin in the stratification duct.

[0020] When reading patent WO2022079367, it is also noted that the valve with guide pin comprises a peripheral centering surface arranged on the periphery of its main valve body, said surface being able to come into contact with the internal wall of the stratification duct to center said body in said duct.

[0021] In patent WO2022079367, a valve damping chamber is formed by the stratification duct, by an axial opening face, and by a chamber-side valve stop, the volume of said chamber being maximum when an axial closing face presented by the guide pin valve rests on a duct closing seat presented by the stratification duct, and minimum when the axial opening face rests on the chamber-side valve stop.

[0022] Patent WO2022079367 also discloses that the guide pin valve may advantageously be coated in whole or in part with a material with a low coefficient of friction resistant to abrasive wear such as a “Diamond Like Coating” or a physical vapor deposition such as “lonbond 90”, while the internal surfaces of the lamination conduit which come into contact with said valve are for example coated with low phosphorus electroless nickel.

[0023] As seen in the figures of patent WO2022079367, the stratification duct comprises a non-magnetic pre-chamber nose made of copper or stainless steel, coated or not with an anti-friction material highly resistant to abrasion.

[0024] The non-magnetic nature of the material constituting the pre-chamber nose is necessary for the magnetic valve return device which is the subject of the patent application. French No. 3 085 718, without which the guide pin valve cannot close quickly enough, particularly when said valve is applied to high-speed engines such as those fitted to automobiles.

[0025] In the figures of patent WO2022079367, it is noted that the pre-chamber nose is mounted shrunk between a gas ejection tube and a non-magnetic added sleeve, said nose receiving the valve stop on the chamber side and the axial guide orifice which houses the orientation stud with little play.

[0026] It is noted that the non-magnetic pre-chamber nose in question must be made of a material which is not only non-magnetic to be compatible with the magnetic valve return device which is the subject of French patent application No. 3,085,718, but which has a high thermal conductivity, such as copper, so as to prevent the temperature of said nose from becoming excessive, the latter being directly exposed to the hot gases present in the combustion chamber of the internal combustion engine.

[0027] In fact, if the non-magnetic pre-chamber nose is too hot, it can cause untimely self-ignition of the main charge contained in the combustion chamber, which could lead to the destruction of the internal combustion engine.

[0028] The problem is that the copper from which the non-magnetic pre-chamber nose can advantageously be made is a ductile and malleable material which must be covered with a hard coating to make it resistant to abrasive wear induced by its friction with the peripheral centering surface of the guide pin valve on the one hand, and to that induced by the friction of the orientation pin with the axial guide orifice on the other hand.

[0029] However, coating the copper is not suitable for the functional context of the guide pin valve when it comes to ensuring a long service life for the guide pin valve pre-chamber resulting from the combination of patents No. FR 3 061 743 and No. WO2022079367.

[0030] In fact, the torch ignition pre-chamber is subjected to a high thermal load when ignition torches are ejected from the said pre-chamber via gas ejection ports, at temperatures above two thousand degrees Celsius.

[0031] For example, the chemical nickel coating is compatible with high-strength copper alloys such as "C17500", but said coating is not sufficiently resistant to temperature and abrasion to meet the functional specifications of the pre-chamber with guide pin valve according to patent No. WO2022079367.

[0032] In practice, the chemical nickel coating quickly loses its mechanical properties with temperature, and is pushed back by the stratification valve, or even deposited on the valve by a succession of micro-fusions.

[0033] The problem is that copper cannot be coated with very high temperature resistant coatings which are usually applied at temperatures between five hundred and eight hundred degrees Celsius.

[0034] One solution could be to replace copper with non-magnetic stainless steel, but this steel has insufficient thermal conductivity.

[0035] It is therefore to resolve the various problems which have just been described and the resulting dilemmas that, according to the friction insert for an oriented valve according to the invention and according to a particular embodiment of said insert, the stratification valve and the orientation stud which form the valve with a guide stud are no longer guided directly by the material constituting the non-magnetic pre-chamber nose, but by means of guide means made of a hard material, resistant to abrasion, and compatible with the most effective anti-friction coatings which are generally deposited at high temperature.

[0036] As such, the friction insert for the valve oriented according to the invention results in a valve ignition pre-chamber: • The non-magnetic pre-chamber nose of which can be made with a non-magnetic material with high thermal conductivity such as copper, without prejudice to the mechanical strength and lifespan of said nose; • Whose lifespan is compatible with that of a mass-produced automobile engine, and whose operation remains stable during said lifespan, guaranteeing the internal combustion engine which receives it optimum performance and operation throughout its lifespan; • Whose mass production does not present any particular difficulty; • Whose cost price is compatible with the economic constraints of the market for automobiles produced in very large series.

[0037] It is understood that the friction insert for oriented valve according to the invention can not only be applied to the pre-chamber with guide pin valve according to patent No. WO2022079367, but also to any other application similar in its concept and in its principle which could advantageously take advantage of the characteristics and functionalities of said insert.

[0038] The friction insert for an oriented valve for an ignition pre-chamber with a valve arranged in a cylinder head of an internal combustion engine which covers a combustion chamber, said pre-chamber comprising a stratification cavity into which ignition means and a stratification injector open, said cavity being connected to the combustion chamber by a stratification duct which opens into said chamber in the form of a non-magnetic pre-chamber nose in which is housed a stratification valve which can close said duct and which is oriented by an orientation stud which can slide in an axial guide orifice arranged in said nose, said valve and said nipple together forming a valve with a guide nipple while the non-magnetic pre-chamber nose forms with said valve and when the latter does not block the stratification duct, a torch ignition pre-chamber which puts the stratification cavity in contact with the combustion chamber by means of at least one gas ejection orifice, comprises: • At least one external cylindrical valve body guide bearing surface arranged on the periphery of the valve with guide pin; • At least one first valve body guide means which is resistant to abrasive wear and which is fixedly mounted in the non-magnetic pre-chamber nose, said first means having, at least locally, an inner diameter which, on the one hand, is smaller than that of said nose, and which, on the other hand, is substantially larger than the outer diameter of the external cylindrical valve body guide surface, the axial thickness of said first means and the axial position in the non-magnetic pre-chamber nose of said first means being provided so that the external cylindrical valve body guide surface can slide with little play in said first means, and this in order to radially guide the valve with guide pin over all or part of its travel in the non-magnetic pre-chamber nose; • At least one external cylindrical guide bearing surface for the stud provided on the external periphery of the orientation stud; • At least one second orientation pin guide means which is resistant to abrasive wear and which is fixedly mounted in the axial guide orifice, said second means having, at least locally, an inner diameter which, on the one hand, is smaller than that of said orifice, and which, on the other hand, is substantially larger than the outer diameter of the external cylindrical pin guide bearing surface, the axial thickness and the axial position of said second means being provided so that the external cylindrical pin guide bearing surface can slide with little play in said second means, and can maintain the longitudinal axis of the guide pin valve approximately parallel to that of the non-magnetic pre-chamber nose over all or part of the stroke of said valve.

[0039] The friction insert for an oriented valve comprises a first valve body guide means and a second orientation pin guide means which are made of a non-magnetic material with high thermal and mechanical resistance.

[0040] The friction insert for oriented valve comprises a first valve body guide means and a second orientation stud guide means which are part of the same multifunctional insert, assembled or not, said insert being fixedly mounted in the non-magnetic pre-chamber nose on the one hand, and housing all or part of the guide pin valve on the other hand, said multifunctional insert replacing the non-magnetic pre-chamber nose to accommodate the axial guide orifice.

[0041] The friction insert for an oriented valve comprises a multifunctional insert which forms, with an axial opening face oriented towards the combustion chamber which the guide pin valve has on the one hand, and with the orientation pin on the other hand, a valve damping chamber.

[0042] The friction insert for an oriented valve comprises an axial guide orifice which has a damping counterbore at its end which opens into the valve damping chamber, said counterbore cooperating with a damping shoulder which the orientation stud comprises.

[0043] The friction insert for oriented valve comprises a damping counterbore which is directly or indirectly connected to the combustion chamber by at least one depressurization duct.

[0044] The friction insert for oriented valve includes a guide pin valve that includes a secondary sealing collar that extends the outer cylindrical valve body guide surface toward the lamination duct.

[0045] The following description, with reference to the attached drawings given as non-limiting examples, will enable a better understanding of the invention, the characteristics it presents, and the advantages it is likely to provide:

[0046] [Fig.1] is a schematic sectional view of the friction insert for an oriented valve according to the invention, the first valve body guide means and the second orientation pin guide means of which are fixedly mounted in the non-magnetic pre-chamber nose independently of each other.

[0047] [Fig.2] is a schematic sectional view of the friction insert for an oriented valve according to the invention, the first valve body guide means and the second orientation pin guide means forming part of the same multifunctional insert which is fixedly mounted in the non-magnetic pre-chamber nose against which it is held pressed by a stop ring, a “Belleville” type spring washer, and by means of an axial insert support shoulder which said nose has, the valve with guide pin being closed, i.e. closing the stratification duct while the volume of the valve damping chamber is at its maximum.

[0048] [Fig.3] is a schematic sectional view of the friction insert for oriented valve according to the invention and according to the variant shown in [Fig.2], the valve with guide pin being open its axial opening face of the valve with guide pin resting on the valve stop on the chamber side, said valve forming with the non-magnetic pre-chamber nose a torch ignition pre-chamber while the stratification duct is connected to the combustion chamber and the volume of the chamber valve damping is minimal.

[0049] [Fig.4] is a schematic sectional view of the friction insert for an oriented valve according to the invention and according to the variant shown in [Fig.2], with the difference that the multifunctional insert is held pressed against the axial insert support shoulder by an axial stop expandable ring which cooperates with a pressing cone arranged at the end of the non-magnetic pre-chamber nose.

[0050] [Fig.5] is a schematic sectional view of the friction insert for an oriented valve according to the invention and according to the variant shown in [Fig.2], in the environment of an internal combustion engine which receives said insert, the latter taking place at the end of an ignition insert with active pre-chamber as described in French patent application No. 1904961 belonging to the applicant, and cooperating with a spark plug and an electromechanically controlled stratification injector.

[0051] [Fig.6] is a three-dimensional view of the friction insert for an oriented valve according to the invention and according to the variant shown in [Fig.2],

[0052] [Fig.7] is an exploded three-dimensional view of the friction insert for an oriented valve according to the invention and according to the variant shown in [Fig.2], but without the internal combustion engine.

[0053] DESCRIPTION OF THE INVENTION:

[0054] Figures 1 to 7 show the friction insert for oriented valve 60 according to the invention, various details of its components, its variants, and its accessories.

[0055] As shown in Figures 1 to 7, the friction insert for oriented valve 60 is mainly provided for a valve ignition pre-chamber 1 arranged in an internal combustion engine cylinder head 2, the latter 2 covering a combustion chamber 3, said pre-chamber 1 comprising a stratification cavity 4 into which ignition means 5 and a stratification injector 6 open.

[0056] As can be clearly seen in figures 1 to 6, the stratification cavity 4 is connected to the combustion chamber 3 by a stratification conduit 7 which opens into said chamber 3 in the form of a non-magnetic pre-chamber nose 62.

[0057] It can be seen in Figures 1 to 7 that the non-magnetic pre-chamber nose 62 houses a stratification valve 61 which can close the stratification conduit 7 and which is oriented by an orientation stud 15.

[0058] As shown successively in Figures 1 and 3, the orientation stud 15 can slide in an axial guide orifice 17 arranged in the non-magnetic pre-chamber nose 62, the stratification valve 61 and said stud 15 together forming a guide stud valve 50 while the non-magnetic pre-chamber nose 62 forms with said valve 50 and when the latter does not block the stratification conduit 7, a torch ignition pre-chamber 9.

[0059] We note in figures 1, 3 and 4 that the torch ignition pre-chamber 9 places the stratification cavity 6 in relation to the combustion chamber 3 via at least one gas ejection orifice 16.

[0060] In [Fig.2], it has been shown that the guide pin valve 50 has an axial closure face 10 which can rest on a conduit closure seat 11 which the stratification conduit 7 has, to close the latter.

[0061] In [Fig. 3], it has been shown that the guide pin valve 50 also has an axial opening face 13 which, when in contact with a chamber-side valve stop 14, determines the position of the guide pin valve 50 furthest from the stratification cavity 4, said valve 50 allowing, when it is in said position, gases 19 to circulate freely between the stratification cavity 4 and the combustion chamber 3.

[0062] It has been illustrated, particularly in figures 1 to 4 and in [Fig.7], that the friction insert for oriented valve 60 according to the invention comprises at least one external cylindrical valve body guide bearing surface 64 arranged on the periphery of the valve with guide stud 50.

[0063] Particularly visible in [Fig.l], it has been shown that the friction insert for oriented valve 60 according to the invention also comprises at least one first valve body guide means 63 which may be, for example and as shown in [Fig.l], a continuous or cut ring, said first means 63 being resistant to abrasive wear and being fixedly mounted in the non-magnetic pre-chamber nose 62.

[0064] The first valve body guide means 63 has, at least locally, an inner diameter which is smaller than that of the non-magnetic pre-chamber nose 62, said diameter being substantially larger than the outer diameter of the outer cylindrical valve body guide surface 64.

[0065] As shown in Figures 2 and 3, the axial thickness of the first valve body guide means 63 and the axial position in the non-magnetic pre-chamber nose 62 of said first means 63 are provided so that the external cylindrical valve body guide surface 64 can slide with little play in said first means 63, and this in order to radially guide the guide pin valve 50 over all or part of its travel in the non-magnetic pre-chamber nose 62.

[0066] As can be seen in Figures 1 to 4, the inner surface of the first valve body guide means 63 may have a domed axial profile which prevents said means 63 from exposing a sharp edge to the outer cylindrical valve body guide surface 64 when it comes into contact with the latter.

[0067] In Figures 1 to 7, it has also been shown that the friction insert for oriented valve 60 according to the invention further comprises at least one external cylindrical stud guide surface 66 arranged on the external periphery of the orientation stud 15.

[0068] Particularly visibly in [Fig.l], it has also been shown that the insert of friction for oriented valve 60 according to the invention comprises at least one second orientation stud guide means 65 which can be, for example and as shown in [Fig.l], a continuous or cut ring, said second means 65 being resistant to abrasive wear and being fixedly mounted in the axial guide orifice 17.

[0069] The second orientation stud guide means 65 has, at least locally, an inner diameter which is smaller than that of the axial guide orifice 17, said diameter being substantially larger than the outer diameter of the outer cylindrical stud guide bearing surface 66.

[0070] As shown in Figures 2 and 3, the axial thickness and axial position of the second orientation stud guide means 65 are provided so that the external cylindrical stud guide bearing surface 66 can slide with little play in said second means 65, and can maintain the longitudinal axis of the guide stud valve 50 approximately parallel to that of the non-magnetic pre-chamber nose 62 over all or part of the travel of said valve 50.

[0071] As can be seen in Figures 1 to 4, the inner surface of the second orientation stud guide means 65 may have a curved axial profile which prevents said second means 65 from exposing a sharp edge to the outer cylindrical stud guide surface 66 when it comes into contact with the latter.

[0072] It will be noted that according to an alternative embodiment of the friction insert for oriented valve 60 according to the invention, the first valve body guide means 63 and / or the second orientation stud guide means 65 may be made of a non-magnetic material with high thermal and mechanical resistance such as “Inconel 718”.

[0073] As a variant, advantageously and as illustrated in Figures 2 to 7, the first valve body guide means 63 and the second orientation stud guide means 65 may be part of the same multifunctional insert 67, assembled or not, said insert 67 being fixedly mounted in the non-magnetic pre-chamber nose 62.

[0074] In this case, the multifunctional insert 67 can accommodate all or part of the guide pin valve 50, said insert 67 replacing the non-magnetic pre-chamber nose 62 to accommodate the axial guide orifice 17.

[0075] As shown in Figures 2 and 3, the axial position of the multifunctional insert 67 in the non-magnetic pre-chamber nose 62 can be fixed by an axial insert support shoulder 72 that said nose 62 has, a stop ring 68 and a spring washer 69, for example of the “Belleville” type known per se, keeping said insert 67 pressed against said shoulder 72.

[0076] It is noted that the multifunctional insert 67, the retaining ring 68, and the spring washer 69, can advantageously be made of a stainless, non-magnetic metal, and retaining high mechanical resistance at high temperatures such as “Inconel”.

[0077] It is noted in [Fig.4] that as an alternative, the multifunctional insert 67 can be held pressed against the axial insert support shoulder 72 by an axial stop expandable ring 70 which cooperates with a pressing cone 71 arranged at the end of the non-magnetic pre-chamber nose 62.

[0078] In addition or as an alternative to what has just been described, the multifunctional insert 67 can be tightly mounted in the non-magnetic pre-chamber nose 62 to ensure maximum thermal cohesion between said insert 67 and said nose 62, this so that the heat received by said insert 67 during the combustion of a main charge 27 in the combustion chamber 3 can be evacuated by conduction via the non-magnetic pre-chamber nose 62.

[0079] As clearly shown in Figures 2 to 4, the multifunctional insert 67 can form, with an axial opening face 13 oriented towards the combustion chamber 3 which the guide pin valve 50 has on the one hand, and with the orientation pin 15 on the other hand, a valve damping chamber 18.

[0080] In this case, when the guide pin valve 50 opens to form a torch ignition pre-chamber 9 with the non-magnetic pre-chamber nose 62, the valve damping chamber 18 dampens any shock that may occur between the axial opening face 13 and a chamber-side valve stop 14 which stops said valve 50 in its travel towards the combustion chamber 3, said stop 14 being none other than the bottom of the valve damping chamber 18.

[0081] As shown in Figures 1 to 4, the axial guide orifice 17 of the friction insert for oriented valve 60 according to the invention may have a damping counterbore 47 at its end which opens into the valve damping chamber 18, said counterbore 47 cooperating with a damping shoulder 46 which the orientation stud 15 comprises.

[0082] It is noted that the damping counterbore 47 and the damping shoulder 46 are positioned such that the guide pin valve 50 can travel the first part of its travel towards the chamber-side valve stop 14 while being slowed down as little as possible by the valve damping chamber 18.

[0083] Indeed, as long as the damping shoulder 46 has not reached the level of the damping counterbore 47, the gases 19 contained in the valve damping chamber 18 can freely exit the latter in the direction of the combustion chamber 3, via the clearance left between said shoulder 46 and said counterbore 47, then via depressurization conduits 48 shown in figures 2 to 4.

[0084] When the damping shoulder 46 reaches the damping counterbore 47, the gases 19 are strongly compressed by the passage restriction thus formed, so that during the second part of its travel towards the chamber-side valve stop 14, the guide pin valve 50 is braked, which reduces the power of any shock that may occur between the axial opening face 13 and the chamber-side valve stop 14.

[0085] This particular configuration of the multifunctional insert 67 and the guide pin valve 50 gives the latter a long service life.

[0086] In Figures 2 to 4, it has therefore been clearly shown that the damping counterbore 47 can be directly or indirectly connected to the combustion chamber 3 by at least one depressurization conduit 48.

[0087] As an alternative embodiment of the friction insert for oriented valve 60 according to the invention, it has been shown in Figures 1 and 4 that the valve with guide pin 50 can comprise a secondary sealing collar 73 which extends the external cylindrical valve body guide surface 64 in the direction of the stratification duct 7, said collar 73 forming a labyrinth or at least one baffle which provides resistance to the passage of gas 19 which enters or leaves the valve damping chamber 18.

[0088] HOW THE INVENTION WORKS:

[0089] The operation of the friction insert for oriented valve 60 according to the invention is easily understood from Figures 1 to 7.

[0090] Figures 5 to 7 show the environment of the invention which is mainly constituted by the internal combustion engine cylinder head 2 of an internal combustion engine 79, the latter comprising a piston 80 and a cylinder 81 which form, with said cylinder head 2, a combustion chamber 3.

[0091] It has been clearly shown in Figures 1 to 4 that the stratification duct 7 has a gas ejection tube 25 made according to this example of stainless steel with high magnetic permeability and low magnetic remanence, said duct 7 also comprising a non-magnetic added sleeve 26 which is made for example of “Inconel 718”, which is mounted shrink-fitted on the gas ejection tube 25, and which receives the duct closure seat 11.

[0092] In Figures 1 to 7, it can be seen that the stratification duct 7 opens into the combustion chamber 3 in the form of a non-magnetic pre-chamber nose 62 made of copper alloy, for example a Copper-Beryllium-Cobalt of the “C17500” type, said nose 62 being mounted shrunk between the gas ejection tube 25 and the non-magnetic added sleeve 26.

[0093] It can be seen in Figures 1 to 7 that it is the non-magnetic pre-chamber nose 62 which receives the friction insert for oriented valve 60 according to the invention, and this, in two main forms.

[0094] The first form, shown in [Eig.l], consists of a first valve body guide means 63 and a second orientation pin guide means 65 which take the form of rings mounted independently of each other in the nose of non-magnetic pre-chamber 62.

[0095] The second form, shown in Figures 2 to 7, provides that the first valve body guide means 63 and the second orientation pin guide means 65 are part of a single multifunctional insert 67 fixedly mounted in the non-magnetic pre-chamber nose 62.

[0096] It is in this second form and particularly in its variant embodiment shown in figures 2, 3 and 5 to 7 that we will detail here the specific operation of the friction insert for oriented valve 60 according to the invention, keeping in mind that in the context of said insert 60, the operation of the valve with guide pin 50 is identical to that described in patent No. WO2022079367, the objective of the friction insert for oriented valve 60 according to the invention not being to modify said operation, but to ensure the latter a great stability over time, and a great durability for the ignition pre-chamber with valve 1.

[0097] According to the variant of the friction insert for oriented valve 60 according to the invention shown in figures 2, 3, 5, 6 and 7, the multifunctional insert 67 is held axially pressed by a stop ring 68 and by a spring washer 69 of the “Belleville” type on an axial insert support shoulder 72 arranged in the non-magnetic pre-chamber nose 62, said insert 67, said ring 68 and said washer 69 being made of “Inconel”, a stainless and non-magnetic metal which retains high mechanical resistance at high temperatures.

[0098] Advantageously, the multifunctional insert 67 is here tightly mounted in the non-magnetic pre-chamber nose 62 which ensures maximum thermal cohesion between said insert 67 and said nose 62.

[0099] Thus, during the combustion of the main charge 27 in the combustion chamber 3, the heat received by the multifunctional insert 67 from the hot gases 19 with which it is in contact can be efficiently evacuated by conduction via the non-magnetic pre-chamber nose 62.

[0100] In [Fig.2], the guide pin valve 50 is shown in the “fully closed” position, i.e. with its axial closure face 10 in contact with the conduit closure seat 11, so that the stratification conduit 7 is closed and no gas 19 can flow from the stratification cavity 4 to the combustion chamber 3 or vice versa, the volume of the valve damping chamber 18 being at its maximum.

[0101] [Fig.3] shows the guide pin valve 50 in position "fully open", that is to say with its axial opening face 13 which is in contact with the chamber-side valve stop 14, so that the stratification duct 7 is also fully open, said valve 50 forming with the non-magnetic pre-chamber nose 62 a torch ignition pre-chamber 9, while the gases 19 can circulate from the stratification cavity 4 to the combustion chamber 3, the volume of the valve damping chamber 18 being minimal.

[0102] It is noted, particularly in figures 2 and 3, that the orientation stud 15 comprises a damping shoulder 46 which cooperates with a damping counterbore 47 arranged at the inlet of the axial guide orifice 17, said counterbore 47 opening into the valve damping chamber 18.

[0103] This particular configuration of the multifunctional insert 67 and the guide pin valve 50 allows the latter to travel the first part of its travel towards the valve stop on the chamber side 14 with the least possible brake from the valve damping chamber 18.

[0104] Indeed, as long as the damping shoulder 46 has not reached the level of the damping counterbore 47, the gases 19 contained in the valve damping chamber 18 can freely exit the latter in the direction of the combustion chamber 3, via the clearance left between said shoulder 46 and said counterbore 47, then via the depressurization conduits 48.

[0105] When the damping shoulder 46 reaches the damping counterbore 47, the gases 19 are strongly laminated by the passage restriction thus formed, so that during the second part of its travel towards the chamber-side valve stop 14 the guide pin valve 50 is braked, which reduces the power of any impact that may occur between the axial opening face 13 and the chamber-side valve stop 14.

[0106] This particular configuration of the guide pin valve 50 gives it a long service life.

[0107] Figures 5 to 7 show the presence of a permanent return magnet 24, which forms a “magnetic valve return device” as described in French patent application No. 3,085,718.

[0108] The permanent return magnet 24 ensures the re-closing of the guide pin valve 50 after the latter has been opened by the increase in gas pressure 19 occurring in the stratification cavity 4, this after a pilot charge 31 has been introduced into said cavity 4 by an electromechanically controlled stratification injector 74, then ignited by a spark plug 33.

[0109] In Figures 5 to 7, the electromechanically controlled lamination injector 74 is shown, which comprises an injector needle 75 which, when raised from its seat under the action of an electromagnetic injector actuator 76, introduces a pilot charge 31 into the lamination cavity 4.

[0110] When the electromagnetic injector actuator 76 ceases to be supplied with electric current, the injector needle 75 is returned to its seat by a needle return spring 77, the latter being isolated from the gases 19 constituting the pilot charge 31. by a spring isolation seal 78.

[0111] As illustrated in Figures 5 to 7, the position of the injector needle 75 is continuously returned to a computer not shown by an injector needle position sensor 82, the latter allowing said computer to precisely adjust the mass of the pilot charge 31 which is introduced into the lamination cavity 4 by the electromechanically controlled lamination injector 74.

[0112] For this, said computer executes software which determines, permanently and from the lift of the injector needle 75 read by the injector needle position sensor 82, the mass of the pilot charge 31 which is introduced into the stratification cavity 4, said software correcting, if necessary, said lift so that the mass of pilot charge 31 actually introduced into the stratification cavity 4 corresponds to that necessary for the optimal operation of the internal combustion engine 79.

[0113] It can be seen in Figures 5 to 7 that the stratification cavity 4 is arranged in an active pre-chamber ignition insert 42 similar to that described in French patent application No. 1904961 of May 13, 2019 belonging to the applicant, said insert 42 being held fixedly in the internal combustion engine cylinder head 2 by insert clamping means 43.

[0114] As we have seen, the operation of the guide pin valve 50 in the context of the friction insert for oriented valve 60 according to the invention is comparable to that described in patent No. WO2022079367.

[0115] However, contrary to said patent No. WO2022079367 and to what is shown in the initial patent FR 3 061 743 relating to an ignition pre-chamber with a valve, and contrary to what is shown in the improvement patents resulting from said initial patent, the contact lines which until then were always located at the same place on the stratification valve 61 and which were variable in altitude inside the stratification duct 7 become fixed in said duct 7, that is to say fixed in the non-magnetic pre-chamber nose 62 in the form of which said duct 7 ends, and variable in altitude on the valve with guide stud 50 and relative to the latter.

[0116] This new configuration avoids having to coat the interior of the non-magnetic pre-chamber nose 62 with any coating whatsoever, because in fact, coatings which remain hard and resistant to abrasion at high temperatures are notoriously incompatible with the copper alloy from which the non-magnetic pre-chamber nose 62 is made, due to the high temperature at which said coatings are applied.

[0117] Now, advantageously, the friction insert for oriented valve 60 according to the invention allows the first valve body guide means 63 and the second orientation stud guide means 65 to be made of a material such as “Inconel” which is both hard at the core so that it forms a substrate more favorable to the coatings hard, and which is resistant to high temperatures so that it can receive a wide range of hard coatings of the “DLC”, “PVD” type or any type known to those skilled in the art.

[0118] Advantageously, the guide pin valve 50 itself being made of a material retaining high mechanical resistance at high temperature, said valve 50 can also be covered with any type of anti-abrasion coating.

[0119] It follows from the above that the friction insert for oriented valve 60 according to the invention makes it possible to choose coatings that are compatible with each other, said coatings giving a long service life both to the first valve body guide means 63 and to the second orientation stud guide means 65, and to the valve with guide stud 50.

[0120] To give the chamber-side valve stop 14 formed by the bottom of the valve damping chamber 18 a high resistance to hammering, said stop 14 is advantageously part of the multifunctional insert 67 as shown in FIGS. 2 to 7, and benefits from the same mechanical strength and the same abrasion resistance as any other part of said insert 67.

[0121] Thus, the first valve body guide means 63, the second orientation pin guide means 65 and the chamber-side valve stop 14 now constitute only one and the same part which takes the form of the multifunctional insert 67, the mechanical characteristics at the core and at high temperature surface of the material constituting said insert 67 benefit all the functional surfaces which cooperate with the valve with guide pin 50.

[0122] Knowing that the guide pin valve 50 moves in the multifunctional insert 67 in almost permanent contact with the first valve body guide means 63 and the second orientation pin guide means 65, and in periodic contact with the chamber-side valve stop 14 without benefiting from any lubrication, a person skilled in the art can only understand the fundamental advantage represented by the friction insert for oriented valve 60 according to the invention in the implementation and long-term operation of the guide pin valve 50.

[0123] Indeed, the guide pin valve 50 moves “dry” in the multifunctional insert 67, and is subjected to abrasive aggression that is all the more significant since foreign bodies such as mineral or carbon particles can be inserted at high temperature between said valve 50 and the first valve body guide means 63, the second orientation pin guide means 65, and the chamber-side valve stop 14 with which it cooperates.

[0124] It will be noted that the example embodiment of the friction insert for oriented valve 60 according to the invention which has just been described is non-limiting.

[0125] Indeed, the friction insert for oriented valve 60 according to the invention can apply to areas other than internal combustion engines.

[0126] Said insert 60 can for example be applied to gas nailers, firearms, or any device requiring the firing of a main charge by means of a pilot charge with the best possible efficiency.

[0127] The possibilities of the friction insert for oriented valve 60 according to the invention are not limited to the applications which have just been described and it must also be understood that the preceding description has been given only by way of example and that it in no way limits the scope of said invention which would not be departed from by replacing the execution details described by any other equivalent.

Claims

Claims

1. Friction insert for oriented valve (60) for a valve ignition pre-chamber (1) arranged in an internal combustion engine cylinder head (2) which covers a combustion chamber (3), said pre-chamber (1) comprising a stratification cavity (4) into which ignition means (5) and a stratification injector (6) open, said cavity (4) being connected to the combustion chamber (3) by a stratification duct (7) which opens into said chamber (3) in the form of a non-magnetic pre-chamber nose (62) in which is housed a stratification valve (61) which can close said duct (7) and which is oriented by an orientation stud (15) which can slide in an axial guide orifice (17) arranged in said nose (62),said valve (61) and said nipple (15) together forming a valve with a guide nipple (50) while the non-magnetic pre-chamber nose (62) forms with said valve (50) and when the latter does not block the stratification duct (7), a torch ignition pre-chamber (9) which puts the stratification cavity (6) in contact with the combustion chamber (3) by means of at least one gas ejection orifice (16) characterized in that it comprises:, • At least one external cylindrical valve body guide bearing surface (64) arranged on the periphery of the valve with guide pin (50); • At least one first valve body guide means (63) which is resistant to abrasive wear and which is fixedly mounted in the non-magnetic pre-chamber nose (62), said first means (63) having, at least locally, an inner diameter which, on the one hand, is smaller than that of said nose (62), and which, on the other hand, is substantially larger than the outer diameter of the external cylindrical valve body guide bearing surface (64), the axial thickness of said first means (63) and the axial position in the non-magnetic pre-chamber nose (62) of said first means (63) being provided so that the external cylindrical valve body guide surface (64) can slide with little play in said first means (63), and this in order to radially guide the guide pin valve (50) over all or part of its travel in the non-magnetic pre-chamber nose (62); At least one external cylindrical stud guide bearing surface (66) arranged on the external periphery of the orientation stud (15); • At least one second orientation pin guide means (65) which is resistant to abrasive wear and which is fixedly mounted in the axial guide orifice (17), said second means (65) having, at least locally, an inner diameter which, on the one hand, is smaller than that of said orifice (17), and which, on the other hand, is substantially larger than the outer diameter of the external cylindrical stud guide bearing surface (66), the axial thickness and axial position of said second means (65) being provided so that the external cylindrical guide pin bearing surface (66) can slide with little play in said second means (65), and can maintain the longitudinal axis of the guide pin valve (50) approximately parallel to that of the non-magnetic pre-chamber nose (62) over all or part of the stroke of said valve (50).

2. Friction insert according to claim 1, characterized in that the first valve body guide means (63) and the second orientation pin guide means (65) are made of a non-magnetic material with high thermal and mechanical resistance.

3. Friction insert according to claim 1, characterized in that the first valve body guide means (63) and the second orientation stud guide means (65) are part of the same multifunctional insert (67) assembled or not, said insert (67) being fixedly mounted in the non-magnetic pre-chamber nose (62) on the one hand, and housing all or part of the valve with guide stud (50) on the other hand, said multifunctional insert (67) replacing the non-magnetic pre-chamber nose (62) to house the axial guide orifice (17).

4. Friction insert according to claim 3, characterized in that the multifunctional insert (67) forms, with an axial opening face (13) facing the combustion chamber (3) which the guide pin valve (50) has on the one hand, and with the orientation pin (15) on the other hand, a valve damping chamber (18).

5. Friction insert according to claim 3, characterized in that the axial guide orifice (17) has a damping counterbore (47) at its end which opens into the valve damping chamber (18), said counterbore (47) cooperating with a damping shoulder (46) which the orientation stud (15) comprises.

6. Friction insert according to claim 5, characterized in that the damping counterbore (47) is directly or indirectly connected to the combustion chamber (3) by at least one depressurization duct (48).

7. Friction insert according to claim 1, characterized in that the guide pin valve (50) comprises a secondary sealing collar (73) which extends the external cylindrical valve body guide surface (64) in the direction of the lamination duct (7).