High pressure pump for internal combustion engine of motor vehicle

By incorporating an intermediate piston to create a variable volume intermediate compression chamber, the high-pressure fuel injection system addresses the challenge of maintaining volumetric efficiency and preventing pump seizure, even at higher injection pressures.

FR3128742B1Active Publication Date: 2025-06-13NEW H POWERTRAIN HLDG
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Patent Information

Application Number
FR2021011556
Authority / Receiving Office
FR · FR
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-10-29
Publication Date
2025-06-13
Estimated Expiration
2041-10-29

AI Technical Summary

Technical Problem

High-pressure fuel injection systems in internal combustion engines face challenges in maintaining volumetric efficiency while avoiding the risks of pump seizure, particularly due to increased fuel leakage caused by higher injection pressures.

Method used

The introduction of an intermediate piston that creates an intermediate compression chamber of variable volume, which reduces fuel leakage from the main compression chamber and improves volumetric efficiency without increasing the risk of pump seizure.

Benefits of technology

This solution effectively reduces fuel leakage, enhancing the volumetric efficiency of the high-pressure pump while maintaining the lubrication and cooling benefits of fuel leakage, thus avoiding the risk of pump seizure.

✦ Generated by Eureka AI based on patent content.

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Abstract

High pressure pump for a direct liquid fuel injection system for a motor vehicle, said high pressure pump comprising a pump body (101) comprising a low pressure liquid fuel inlet, a high pressure liquid fuel outlet and a compression chamber (105) provided with a plunger (108) movable in translation in the pump body (101), said compression chamber (105) connecting the low pressure liquid fuel inlet to the high pressure liquid fuel outlet, characterized in that the high pressure pump comprises at least one intermediate piston (121) delimiting with the plunger (108) an intermediate chamber (120) of variable volume. Figure for abstract: Figure 4
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Description

Title of the invention: High-pressure pump for an internal combustion engine of a motor vehicle Technical field

[0001] The present invention relates to the field of internal combustion engines, and more particularly to engines comprising a direct injection carburetion system comprising a high pressure pump. Previous techniques

[0002] There are different types of fuels used in an internal combustion engine. Conventionally, internal combustion engines use liquid fuels, for example pure gasoline, or a mixture of gasoline and ethanol, or even pure ethanol.

[0003] We know the technology called direct gasoline injection, acronym "IDE" which allows fuel to be injected directly into the engine cylinders. Direct injection allows fuel consumption and carbon dioxide emissions to be reduced, and pollutant emissions to be reduced.

[0004] In a direct liquid fuel injection carburetion system, the injection of fuel (gasoline, gasoline and ethanol or even pure ethanol) is necessarily carried out at high pressure in order to guarantee correct atomization of the fuel in the engine cylinders while retaining the capacity to introduce a sufficient quantity of fuel into the cylinders between each combustion. It is thus useful to be able to increase the fuel injection pressure to obtain better atomization of the fuel which results in better homogeneity of the fuel-oxidizer mixture, improving combustion and thus reducing polluting residues. The direct gasoline injection carburetion system comprises a high pressure fuel pump. The pump is generally driven by an element of the internal combustion engine, in particular a camshaft and an intermediate tappet.

[0005] In a high-pressure fuel injection system, the high-pressure pump conventionally uses a single piston, called a plunger, which performs reciprocating translational movements between two positions called top dead center (TDC) and bottom dead center (BDC). In normal operation of the direct injection system, the plunger is driven by an engine cam and via a pusher element, generally at the rate of one pumping cycle per combustion cycle of the engine. The pumping cycle comprises several successive phases.

[0006] In the suction phase, the diver moves from TDC to PMB, while the fuel enters the high-pressure pump through the fuel inlet, being pushed by a low-pressure pump to a feed pressure of around three to six bars. During the suction phase, the outlet and safety relief valves are held closed by springs.

[0007] During a phase of controlling the quantity of fuel admitted for compression, the plunger moves partially from the BDC to the TDC with the inlet valve open, which makes it possible to discharge a quantity of fuel towards the low pressure chamber. During the control phase, the outlet and safety relief valves remain closed. When the quantity of fuel remaining in the compression chamber corresponds to the quantity to be injected, the inlet valve is controlled in the closed position.

[0008] During the fuel compression phase in the compression chamber, the fuel is expelled from the compression chamber through the outlet valve while the plunger finishes moving to TDC.

[0009] Conventionally, the lateral dimensions of the plunger are smaller than the internal dimensions of the compression chamber, so that a functional clearance exists between the two. During operation, the fuel heats up during its compression. The heat diffuses inside the pump causing dimensional variations in the pump elements which can cause unwanted friction or even blockage of the plunger. It is thus useful to maintain a functional clearance between the plunger and the sleeve of the compression chamber, in order to reduce the risk of the pump seizing at high pressure.

[0010] However, during the fuel compression phase, the presence of said functional clearance makes it possible for fuel to leak from the compression chamber to the outside thereof.

[0011] This fuel leak is a direct source of loss of volumetric efficiency of the pump, because the leak causes the compressed fuel to expand.

[0012] Nevertheless, this fuel leak advantageously forms a thin layer of fuel between the plunger and the liner, which constitutes a useful means of lubrication and which contributes to the cooling of the plunger-liner assembly.

[0013] Increasing the fuel injection pressure requires increasing the fuel pressure in the compression chamber of the high pressure pump, without requiring an increase in the supply pressure of the high pressure pump. Increasing the fuel injection pressure then results in an increase in the fuel leakage described above, which results in a decrease in the volumetric efficiency of the high pressure pump.

[0014] In order to maintain the same pumped fuel flow rate for the same overall engine performance level, when upgrading the injection system to a higher injection pressure, it is necessary to increase the theoretical capacity of the high-pressure pump, for example by increasing its displacement, so as to compensate for the loss of volumetric efficiency of the high-pressure pump.

[0015] Increasing the pump displacement brings several disadvantages.

[0016] First, this increase is accompanied by the increase in friction in the high pressure pump, with nevertheless negligible consequences thanks to the lubrication effect provided by the fuel leak.

[0017] Then, the increase in the displacement can be done for example by enlarging the diameter of the plunger, having the effect of increasing the mass and the size of the high pressure pump, or by increasing the stroke of the plunger, which causes the increase in the size of the drive cam, in an engine environment increasingly constrained by the reduction in the allocated volume and by the multiplication of on-board control systems.

[0018] Finally, the increase in cylinder capacity means above all an increase in the drive forces of the high-pressure pump, which implies a dimensioning (in size and mass) and greater overall forces on the entire drive system of the high-pressure pump and the distribution of the engine, with consequently amplified energy losses.

[0019] Considering the disadvantages brought about by the increase in the cylinder capacity of the high pressure pump, it appears necessary to adopt a solution which improves the volumetric efficiency.

[0020] In order to overcome the drawbacks linked to the reduction in volumetric efficiency caused by the increase in injection pressure, it is known to reduce the free space between the plunger and the combustion chamber jacket, either by reducing the functional clearance or by placing a seal between the two. However, each of these two existing solutions has a major drawback.

[0021] The reduction in the functional clearance between the plunger and the pump sleeve makes the assembly less robust against temperature variations, while the increase in injection pressure leads to an increase in the temperature of the compressed fuel, with an increased risk of seizure of the high-pressure pump.

[0022] The addition of a seal between the plunger and the sleeve of the high-pressure pump makes it possible not to reduce the functional clearance. However, the use of a seal prevents the circulation of fuel through the functional clearance, thus reducing the cooling of the plunger-sleeve assembly. The risk of seizure of the high-pressure pump is nevertheless increased compared to the system before the increase in injection pressure. Statement of the invention

[0023] In view of the above, the aim of the invention is to propose a high pressure pump for a direct injection carburetion system which avoids the risks of seizure while preserving the volumetric efficiency of the pump.

[0024] The subject of the invention is a high-pressure pump for a direct liquid fuel injection system for a motor vehicle, comprising a pump body comprising a low-pressure liquid fuel inlet, a high-pressure liquid fuel outlet and a compression chamber provided with a plunger movable in translation in the pump body, said compression chamber connecting the low-pressure liquid fuel inlet to the high-pressure liquid fuel outlet.

[0025] The high pressure pump comprises at least one intermediate piston delimiting with the plunger an intermediate chamber of variable volume.

[0026] This intermediate chamber is in compression during the compression phase of the main chamber. The flow of fuel leaving the intermediate compression chamber reduces the leakage of fuel leaving the main compression chamber and thus improves the volumetric efficiency of the high-pressure pump, without increasing the risk of seizure of the high-pressure pump. During the suction phase, a vacuum is created within the intermediate compression chamber which draws fresh fuel from the main compression chamber, which helps to cool the high-pressure pump.

[0027] Advantageously, the high pressure pump comprises a low pressure chamber located axially under the plunger, said low pressure chamber being connected to the liquid fuel inlet and to the intermediate compression chamber.

[0028] Advantageously, the high pressure pump is equipped with at least one and preferably at least three levers.

[0029] For example, the proximal ends of the levers are in contact with both the plunger and the intermediate piston.

[0030] For example, the proximal ends of the levers have a variable cam-type profile. Due to the variable cam-type profile, when the plunger moves up or down, the proximal end automatically imparts a relative movement of the intermediate piston relative to the plunger.

[0031] In one embodiment, the proximal end of the levers is hinged to a bulge of the plunger.

[0032] In another embodiment, the proximal end of the levers is articulated on a bulge of the intermediate piston.

[0033] The invention also relates to an internal combustion engine of a motor vehicle comprising a direct liquid fuel injection system comprising a high pressure pump as defined previously and configured to inject liquid fuel in at least one cylinder of the engine. Brief description of the drawings

[0034] Other aims, characteristics and advantages of the invention will appear on reading the following description, given solely by way of non-limiting example, and made with reference to the appended drawings in which:

[0035] [Fig.l] illustrates, in a very schematic manner, an example of the general structure of an internal combustion engine comprising a high pressure pump according to the invention;

[0036] [Fig.2] represents, in a very schematic manner, an example of a high-pressure pump pressure for a direct gasoline injection system of an internal combustion engine according to the prior art;

[0037] [Fig.3] represents, in a very schematic manner, an example of a high-pressure pump pressure for a direct gasoline injection system of an internal combustion engine according to one embodiment of the invention;

[0038] [Fig.4] illustrates, in a very schematic manner, the operation of the high pressure pump pressure during the fuel compression phase, according to one embodiment of the invention; and

[0039] [Fig.5] illustrates, in a very schematic manner, the operation of the high pressure pump pressure during the fuel suction phase, according to one embodiment of the invention. Detailed description of at least one embodiment

[0040] In [Fig.l], the general structure of an internal combustion engine 10, in particular of the spark ignition type of a motor vehicle, is shown very schematically.

[0041] This architecture is given as an example and does not limit the invention to the sole configuration to which the high pressure pump according to the invention can be applied.

[0042] In the illustrated example, the internal combustion engine 10 comprises, in a non-limiting manner, four cylinders 12 in line, a fresh air intake manifold 14, an exhaust manifold 16 and a turbo-compression system 18.

[0043] The cylinders 12 are supplied with air via the intake manifold 14, or intake distributor, itself supplied by a pipe 20 provided with an air filter 22 and the compressor 18b of the turbocharger 18 of the engine 10.

[0044] In a known manner, the turbocharger 18 essentially comprises a turbine 18a driven by the exhaust gases and a compressor 18b mounted on the same axis or shaft as the turbine 18a and ensuring compression of the air distributed by the air filter 22, with the aim of increasing the quantity (mass flow rate) of air admitted into the cylinders 12 of the engine 10. The turbine 18a may be of the “geometry” type. variable”, that is to say that the turbine wheel is equipped with variable inclination vanes in order to modulate the quantity of energy taken from the exhaust gases, and thus the boost pressure.

[0045] As regards the exhaust manifold 16, the latter recovers the exhaust gases resulting from the combustion and evacuates them to the outside, via a gas exhaust duct 24 opening onto the turbine 18a of the turbocharger 18 and via an exhaust line 26 mounted downstream of said turbine 18a.

[0046] In a non-limiting manner, the engine 10 comprises a partial recirculation circuit 28 of the exhaust gases at the intake, also called “EGR” gases, according to the acronym in English terms for Exhaust Gas Recirculation.

[0047] The high-pressure exhaust gas recirculation circuit 28, also called the “HP EGR” circuit, originates at a point on the exhaust line 26, upstream of said turbine 18a, and returns the exhaust gases upstream of the intake manifold 14.

[0048] By way of non-limiting example, the engine 10 comprises a system 30 for depolluting the combustion gases of the engine. The depollution system 30 will not be described further.

[0049] The engine 10 is associated with a direct liquid fuel injection carburetion system comprising, for example, fuel injectors (not referenced) injecting a liquid fuel, such as for example pure gasoline, or a mixture of gasoline and ethanol, directly into each cylinder 12 from a tank 40 of liquid fuel.

[0050] The direct injection liquid fuel (gasoline, gasoline and ethanol or ethanol) carburetion system comprises a high pressure pump (not shown in [Fig.l]) configured to ensure correct spraying of the liquid fuel into the cylinder 12 of the engine 10 while retaining the ability to introduce a sufficient quantity of liquid fuel into the cylinder between each combustion. The high pressure pump is driven by an element of the internal combustion engine, in particular a camshaft and an intermediate tappet. The pump is therefore fixed on the cylinder head or any other part of the engine.

[0051] A known example of a high pressure pump is illustrated in [Fig.2].

[0052] The pump 100A comprises a substantially cylindrical pump body 101A comprising a low pressure fuel inlet 102A opening into a fuel inlet duct 103A, a high pressure fuel outlet 104A and a compression chamber 105A placed between the fuel inlet duct 103A and the high pressure fuel outlet 104A.

[0053] The pump 100A further comprises a low pressure chamber 106A connected to the fuel intake duct 103A by an intermediate duct 107A and a plunger 108A movable in translation in the pump body 101A. The plunger 108A comprises a piston movable in translation in a cylindrical housing 109A of the body 101A opening into the compression chamber 105A and an end rod extending axially from the piston towards the outside of the body 100A.

[0054] The pump 100A comprises a plug 110A, fixed relative to the body, in which the rod of the plunger 108A slides.

[0055] The low pressure chamber 106A is located axially below the plunger piston 108A.

[0056] As illustrated, the pump 100A comprises an inlet valve 11 IA of the compression chamber 105A, an outlet valve 112A of the compression chamber 105A and a discharge valve 113A of the high pressure circuit mounted in a conduit 114A connecting the high pressure chamber 105A and the fuel outlet 104A.

[0057] In normal operation of the direct gasoline injection system, the plunger 108A is driven by a cam (not shown) and via a pusher (not shown), generally at the rate of one pumping cycle per combustion cycle of the engine.

[0058] Fuel is pushed into the high pressure pump 100A at a supply pressure of the order of 3 bar to 6 bar by a low pressure pump (not shown) through the fuel inlet 102A.

[0059] During the fuel suction phase into the compression chamber 105A by the plunger 108A, the non-piloted inlet valve 11 IA is open and the fuel arrives from the fuel inlet 102A and the low pressure chamber 106A while the plunger 108A descends from its top dead center to its bottom dead center. The outlet valves 112A and discharge valves 113A are kept closed by the force of their respective springs (not referenced).

[0060] During the phase of controlling the quantity of fuel pumped, that is to say when the plunger 108A begins to rise from its bottom dead center, a volume of fuel is expelled from the compression chamber 105A through the open inlet valve 111A towards the inlet 102A and the low pressure chamber 106A. The outlet and discharge valves 112A and 113A are kept closed by the force of their respective springs (not referenced) and by the fuel pressure present at the outlet 104A.

[0061] When the volume remaining in the compression chamber 105A corresponds to the quantity to be pumped, the inlet valve 11 IA is controlled in the closed position.

[0062] During the fuel compression phase in the compression chamber 105A and in the outlet 104A, the fuel is expelled from the compression chamber 105A by the outlet valve 112A while the plunger 108A continues its rise to its top dead center.

[0063] [Fig.3] illustrates a high pressure pump 100 according to one embodiment of the invention.

[0064] The pump 100 comprises a substantially cylindrical pump body 101 comprising a low-pressure fuel inlet 102 opening into a fuel inlet duct 103, a high-pressure fuel outlet 104 and a compression chamber 105 connecting the fuel inlet duct 103 to the high-pressure fuel outlet 104.

[0065] The pump 100 further comprises a low-pressure chamber 106 connected to the fuel intake duct 103 by an intermediate duct 107 and a plunger 108 movable in translation in the pump body 101. The plunger 108 comprises a piston movable in translation in a cylindrical housing 109 of the body 101 opening into the compression chamber 105 and an end rod extending axially from the piston towards the outside of the body 101.

[0066] The pump 100 comprises a plug 110, fixed relative to the body, in which the rod of the plunger 108 slides.

[0067] The low pressure chamber 106 is located axially below the plunger piston 108.

[0068] As illustrated, the pump 100 comprises an inlet valve 111 for the compression chamber 105, an outlet valve 112 for the compression chamber 105 and a discharge valve 113 for the high pressure circuit mounted in a conduit 114 connecting the high pressure chamber 105 and the fuel outlet 104.

[0069] As illustrated, the pump 100 comprises an intermediate piston 121, of generally cylindrical shape and concentric with the plunger 108, which is guided in translation on the plunger 108 and actuated by one or, preferably, a plurality of levers 122. The intermediate piston 121 and the plunger 108 delimit an intermediate compression chamber 120 of variable volume during the pumping cycle.

[0070] In the embodiment described, three levers are arranged radially around the plunger 108, at angular distances equal to 120°.

[0071] Other non-uniform radial arrangements of the levers are possible and fall within the scope of the present invention.

[0072] As illustrated in [Fig. 3], the levers 122 have a proximal end 123 which is articulated on a bulge of the plunger 108 and a distal end 124 which is articulated on a bulge of the pump body 101. The proximal end 123 has a variable cam-like profile which is in contact with the intermediate piston 121. When the plunger rises or descends, the proximal end 123 automatically imparts a relative movement of the intermediate piston 121 with respect to the plunger 108, thanks to the variable cam-like profile. One or a plurality of springs 125 force the complete stroke of the intermediate piston 121 despite the mechanical clearances caniques in the joints of the system, in order to take advantage of the maximum depression during expansion to suck the adequate quantity of fuel from the compression chamber 105. Thus the compression in the intermediate compression chamber 120 is all the more effective in limiting the fuel leakage in the compression phase of the high pressure pump. Ideally, the functional clearance between the intermediate piston 121 and the liner 109 is smaller than the functional clearance between the plunger 108 and the liner 109, in order to promote the circulation of fuel between the main chamber 105 and the intermediate chamber 120. Indeed, the fuel leakage naturally circulates globally towards the zone having the lowest pressure on average, in other words towards the low pressure chamber 106.

[0073] The normal operation of the direct gasoline injection system is identical to that of the state of the art described with reference to [Fig.2], with the details provided by Figures 4 and 5 and developed below.

[0074] [Fig. 4] illustrates the operation of the pump 100 during the fuel compression phase. In this figure, the fuel flow rates which pass through the different chambers of the pump 100 are represented schematically by arrows, the thickness of which is proportional to the value of the flow rate represented, in other words, the line of the arrow symbolizing a flow rate is all the stronger as this flow rate is important. The direction of movement of the plunger 108 and the intermediate piston 121 are represented by arrows placed directly on the elements.

[0075] During the phase of compression of the fuel and its expulsion from the high-pressure chamber 105, the plunger 108 rises towards the top dead center. However, under the effect of the pressure, a part of the fuel located in the chamber 105 leaks towards the part 106 of the pump located below the plunger 108. However, the rise of the plunger 108 acts on the levers 122 which in turn move the intermediate piston 121 towards the top dead center, bringing it closer to the plunger 108, which has the effect of reducing the size of the intermediate chamber 120 and of forcing back towards the chamber 105 a part of the fuel which had leaked from the chamber 105. Nevertheless, the leak is not completely forced back, because a part falls back towards the chamber 106 located at the bottom of the pump 100.Thus, during the compression phase, the flow of fuel leaving the intermediate compression chamber 120 reduces the leakage of fuel leaving the compression chamber 105 and improves the volumetric efficiency of the high-pressure pump 100.

[0076] [Fig. 5] illustrates the operation of the pump 100 during the fuel suction phase. In [Fig. 5], like [Fig. 4], the fuel flow rates which pass through the different chambers of the pump 100 are represented schematically by arrows, the thickness of which is proportional to the value of the flow rate represented, in other words, the line of the arrow symbolizing a flow rate is all the stronger as this flow rate is important. The direction of movement of the plunger 108 and the intermediate piston 121 are represented by arrows placed directly on the elements. During the fuel suction phase, the plunger 108 descends towards the bottom dead center. The descent of the plunger 108 acts on the levers 122 which in turn move the intermediate piston 121 towards the bottom dead center, moving it away from the plunger 108, which has the effect of increasing the size of the intermediate chamber 120 and creating a vacuum within the intermediate compression chamber 120 which sucks fresh fuel from the compression chamber 105, which helps to cool the high pressure pump 100.

Claims

Claims

1. High pressure pump (100) for a direct liquid fuel injection system for a motor vehicle, comprising a pump body (101) comprising a low pressure liquid fuel inlet (102), a high pressure liquid fuel outlet (104) and a compression chamber (105) provided with a plunger (108) movable in translation in the pump body (101) and connecting the low pressure liquid fuel inlet (102) to the high pressure liquid fuel outlet (104), characterized in that the high pressure pump (100) comprises at least one intermediate piston (121) delimiting with the plunger (108) an intermediate chamber (120) of variable volume, said intermediate piston (121) being of generally cylindrical shape, concentric with the plunger (108) and guided in translation on the latter (108).

2. A high pressure pump (100) according to claim 1, comprising a low pressure chamber (106) located axially below the plunger (108), said chamber (106) being connected to the liquid fuel inlet (102) and to the intermediate compression chamber (120).

3. High pressure pump (100) according to claim 1 or 2, comprising at least one and preferably at least three levers (122).

4. A high pressure pump (100) according to claim 3, wherein the proximal ends (123) of the levers (122) are in contact with both the plunger (108) and the intermediate piston (121).

5. A high pressure pump (100) according to claim 4, wherein the proximal ends (123) of the levers (122) have a variable cam-like profile.

6. A high pressure pump (100) according to claim 5, wherein the proximal end (123) of the levers (122) is hinged to a bulge of the plunger (108).

7. High pressure pump (100) according to claim 5, wherein the proximal end (123) of the levers (122) is articulated on a bulge of the intermediate piston (121).

8. Internal combustion engine (10) of a motor vehicle comprising a direct liquid fuel injection system comprising a high pressure pump (100) according to any one of the preceding claims and configured to inject the liquid fuel into at least one cylinder (12) of the engine (10).