Automobile suspension device
Patent Information
- Application Number
- JP2023568434
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2021-05-06
- Filing Date
- 2022-05-05
- Publication Date
- 2025-05-14
AI Technical Summary
Conventional active suspension systems in automobiles require high power output for severe road conditions, often impacting driving experience, are mechanically complex, and have slow response times, limiting their widespread commercial use.
A suspension device utilizing a hydraulic actuator with a high-pressure hydraulic system (greater than 70 bar) and multiple gas accumulators, allowing for efficient fluid management, rapid response, and compact design, including a common flow path and servovalves for precise control of actuator length, stiffness, and damping.
The system provides high power output without significant engine draw, reduces mechanical complexity, and achieves rapid response times, enhancing vehicle performance and comfort.
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Abstract
Description
[Technical field]
[0001] The present invention relates to suspension systems for automotive vehicles. More particularly, but not by way of limitation, the present invention relates to suspension systems having high hydraulic actuators, and methods of operating such suspension systems and automotive vehicles including such suspension systems. [Background technology]
[0002] An automotive vehicle suspension system must allow for displacement of the wheels relative to the vehicle body while balancing the conflicting requirements of occupant comfort and road handling to provide a vehicle that is safe and comfortable for use.
[0003] Historically, each wheel was provided with a spring and damper, resulting in a suspension with fixed characteristics. More recently, suspension systems have been provided that allow for varying damping and / or spring rates, for example by using different mechanical springs in parallel and locking out one or more of the springs to vary stiffness, or by using magnetorheological (M R ) fluids to change the damping characteristics of the suspension system. Such systems can be referred to as passively controlled suspension systems, or semi-active suspension systems. Summary of the Invention [Problem to be solved by the invention]
[0004] Active suspension systems use actuators at each wheel to independently move the wheel assembly relative to the vehicle body, and therefore are based on actuator action and do not just change the characteristics of the spring or damping system.
[0005] Active suspension systems are used in a wide variety of automotive vehicles, but have not yet reached widespread commercial adoption.
[0006] A key challenge for an active suspension system is to provide the high power output required when the vehicle encounters more severe road conditions, e.g., irregularities in the road (such as speed bumps), and particularly to provide high power output without adversely affecting the driving experience (e.g., by drawing excessive power from the engine) and / or without requiring large valves / pumps and therefore large amounts of space in the vehicle.
[0007] Current state of the art conventional active suspension systems often rely on electro-mechanical actuators, such as linear electro-mechanical actuators. Suspension systems with mechanical or electro-hydraulic controls can require large amounts of power to provide the range of travel required by the suspension system. They may also require predictive algorithms and / or map data for the road ahead.
[0008] Additionally, conventional electro-hydraulic systems typically have a relatively slow response time, which can be somewhat offset by the use of forward sensing to obtain an indication of upcoming road conditions, limiting the responsiveness of the system, which increases system complexity and limits the types of road conditions or driver inputs to which the active suspension system can respond.
[0009] More generally, it is desirable to provide an active suspension system that is more space and / or power efficient and / or less mechanically complex (with attendant benefits in terms of cost and / or reliability).
[0010] The present invention seeks to alleviate the above mentioned problems. Alternatively or additionally, the present invention seeks to obtain an improved suspension system and / or an improved method of controlling the reaction length and / or force in a hydraulic actuator of an active suspension system. [Means for solving the problem]
[0011] In a first aspect of the present invention there is provided a suspension arrangement for a motor vehicle comprising a hydraulic actuator for mounting between a wheel assembly and a body of the motor vehicle, and a hydraulic system configured to provide a fluid supply to the hydraulic actuator and thereby control, for example, the length, stiffness and / or damping characteristics of the hydraulic actuator or the force exerted by the hydraulic actuator, the hydraulic system being configured to supply fluid to the hydraulic actuator at a static pressure greater than 7 MPa (70 bar) during normal operation.
[0012] Thus, in contrast to conventional automotive suspension systems, the present invention is one in which the hydraulic system controls the "high pressure" hydraulic actuators using a pressure higher than "high pressure", e.g., 7 MPa (70 bar or roughly 1000 PSI) in normal operation. The use of such a high pressure hydraulic suspension system means that the amount of fluid that has to move around in the system is small (hydraulic power is proportional to pressure multiplied by fluid flow) compared to a lower pressure system of comparable power, e.g., the flow rate can be less than 20 liters per minute at peak power output. Reducing the amount of fluid that needs to move around the system allows for a smaller suspension system and / or a more responsive suspension system. Additionally or alternatively, a "high pressure" system reduces the risk of cavitation effects.
[0013] The hydraulic system may be configured to supply fluid at a total pressure of greater than 10 MPa (100 bar), for example greater than 15 MPa (150 bar), during normal operation. The higher the pressure, the less fluid required for the suspension system.
[0014] An active suspension system for a vehicle can be defined as a system in which actuators (such as hydraulic actuators) are energized to control the relative movement of the vehicle wheels and chassis in response to road conditions. The actuators can apply a force in a first direction and / or an opposite second direction. The actuators can increase and / or decrease length. Thus, a four-quadrant control can be defined as: increase length during application of a force in a first direction, increase length during application of a force in a second direction, decrease length during application of a force in a first direction, and decrease length during application of a force in a second direction. An active suspension system can be defined as being able to operate in more than two quadrants of control. For example, an active suspension system can operate in four quadrants of control. This contrasts with a passive system, which operates in only two, namely, increase length during application of a force in a first direction, and decrease length during application of a force in a second direction. Without wishing to be bound by theory, this is because an active device both inputs energy to and removes energy from the hydraulic actuator.
[0015] The suspension system includes a common flow path connecting the hydraulic system to the hydraulic actuators, e.g., allowing fluid to flow between the hydraulic system and the hydraulic actuators via the common flow path. The common flow path may be a bidirectional flow path.
[0016] The hydraulic system may include a number of gas accumulators. Each gas accumulator may include a gas reservoir (containing a compressible gas) and a fluid reservoir (containing an incompressible fluid). The gas reservoir and the fluid reservoir may be separated by a barrier such that pressure is transferred between the gas reservoir and the fluid reservoir. In use, the gas reservoir may contain a compressible gas. In use, the fluid reservoir may contain an incompressible fluid that is used in a common flow path and the remainder of the hydraulic system. Each accumulator may include at least one air charge valve configured to connect to a source of compressible gas. The gas accumulators may sometimes be referred to herein simply as "accumulators."
[0017] Each of the gas accumulators (e.g., the fluid reservoir of each accumulator) can be connected to a common flow path, e.g., such that changes in fluid pressure in the common flow path are transmitted to the gas in the accumulator. The common flow path can be connected to a hydraulic actuator of the hydraulic system, e.g., such that each gas accumulator is connected to the actuator via the common flow path. Each gas accumulator can be independently connected to the common flow path, e.g., connected to allow fluid to flow between the accumulator and the common flow path, independent of whether fluid flows between another accumulator and the common flow path. The hydraulic system can include one or more valves. A valve can be associated with each one of the gas accumulators. A valve can be said to be associated with an accumulator such that opening or closing the valve determines whether fluid can flow from the gas accumulator to the common flow path. A valve can be associated with more than one accumulator. It should be understood that "connected" as used herein means that there is a potential path for fluid to flow between the connected elements. Of course, whether or not fluid will flow along this potential path will depend on the position (eg, open or closed) of any valves along this path.
[0018] The hydraulic system may, for example, include a pump connected to each gas accumulator via a common flow path.
[0019] A common flow path may include a portion of a flow path (a nexus or common portion) through which fluid flows to or from multiple gas accumulators and / or pumps, such that the pressure supplied by the hydraulic system to a hydraulic actuator at any given time can be defined as the fluid pressure at the common portion.
[0020] The suspension system is configured such that pressure in the common flow path is transferred to gas in the gas reservoir of the accumulator when the associated valve is open. In this manner, the gas in the accumulator may be compressed when pressure in the common flow path increases and / or expanded when pressure in the common flow path decreases. Thus, the gas in each accumulator may act as a compression spring when compressed by the fluid in the system. In other words, the volume of compressible gas in the gas accumulator in fluid communication with the common flow path may determine the stiffness of the hydraulic system (and thus the stiffness of the hydraulic actuator). The system may be configured such that the accumulators may be switched in and out of fluid communication with the common flow path to vary the volume of gas in communication with the common flow path and thereby vary the stiffness of the actuator.
[0021] The multiple gas accumulators can be connected to a common flow path at locations spaced apart from one another along the length of the flow path, and the common portion can be disposed in the flow path between the multiple gas accumulators (on one side) and the hydraulic actuator (on the other side).
[0022] The plurality of accumulators may comprise a first accumulator configured to contain a first volume of gas at a reference pressure and a second accumulator configured to contain a second volume of gas at the same reference pressure, where the first volume and the second volume may be different, and the first volume may be less (lower) than the second volume (in which case the first and second accumulators may be referred to as small volume and large volume accumulators, respectively).
[0023] The use of multiple accumulators allows for the use of smaller pumps in the hydraulic circuit to supply a given total pressure to the hydraulic actuators, i.e., the pressurized fluid can accumulate gradually in several accumulators rather than being supplied instantaneously. Additionally or alternatively, this approach may result in a more efficient suspension system and / or reduce the shock experienced by the driver by avoiding peaks and valleys in the power required from the pump. The use of multiple accumulators allows for a space-efficient and mechanically simple method to be achieved. Additionally or alternatively, providing accumulators with different volumes of compressible gas connected to a common flow path allows for variable stiffness active suspension systems and more responsive active suspension systems, i.e., different accumulators can be quickly connected and disconnected, thereby rapidly changing the characteristics of the suspension system. The use of multiple accumulators may result in a more responsive system compared to a hydraulic system where the spring rate is changed, for example, by changing the pumping rate of the hydraulic system or by increasing or decreasing the stiffness of the system through the use of actuators or the like. This can be particularly advantageous for active suspension systems where having a fast response time is essential to being able to react to the surface conditions present on the road ahead.
[0024] Preferably, the active device has a response time of less than 10 ms, more preferably less than 5 ms. Response time may be defined as the time required between a control system initiating a change in a property of a hydraulic actuator (e.g. stiffness, force, length or damping) and the change being achieved.
[0025] The suspension system can be configured such that hydraulic pressure in the common flow path is transmitted to the hydraulic actuators, such that the stiffness (spring rate κ) of the hydraulic actuators is determined (at least in part, e.g., primarily or substantially determined) by the total volume of compressible gas in fluid communication with the common flow path.
[0026] The apparatus communicates changes in fluid pressure between the hydraulic actuators, the common flow path, and the gas accumulator, whereby the hydraulic actuators may be configured to have a first stiffness when the hydraulic system is in a first configuration and a different second stiffness when the hydraulic system is in a second configuration. The suspension apparatus may be configured such that fluid pressure in the common flow path is communicated to at least one chamber of the hydraulic actuators without significant pressure losses, for example beyond normal pipe flow losses.
[0027] Each accumulator of the multiple accumulators may have a spring rate or spring constant associated therewith. For example, a gas accumulator configured to hold a smaller volume of gas at a reference pressure may have a higher associated spring rate (constant) compared to a gas accumulator holding a larger volume of gas at the same reference pressure. The suspension system may be configured such that varying which of the multiple gas accumulators are in fluid communication with a common flow path varies the spring rate of the hydraulic actuator. The common flow path allows the connection of the gas accumulators to the common flow path to sum the spring rates of the gas accumulators (i.e., similar to a series connection of springs). Each gas accumulator may be configured to contain a different volume of gas at a reference pressure than any other accumulator. Thus, each of the multiple gas accumulators may have a spring constant associated therewith.
[0028] The hydraulic system may be arranged to switch between a first configuration in which a valve associated with a first gas accumulator is in an open position and a valve associated with a second, different gas accumulator is in a closed position, and a second configuration in which the valve associated with the first gas accumulator is in a closed position and / or the valve associated with the second, different gas accumulator is in an open position. The valve associated with the first gas accumulator may be in an open position in the second configuration.
[0029] The hydraulic system may be arranged to switch to a (third or other) configuration in which the valve associated with the first gas accumulator is closed and the valve associated with the second gas accumulator is open. The hydraulic system may be arranged to switch to a (fourth or other) configuration in which the valve associated with the first gas accumulator and the valve associated with the second gas accumulator are closed.
[0030] The hydraulic system may be configured to switch between any of the first, second, third, and fourth configurations.
[0031] The plurality of gas accumulators may further include a third accumulator, e.g., a variable accumulator. The variable accumulator may be configured such that the volume of gas contained in the gas reservoir at a reference pressure is variable. For example, the volume of the gas reservoir may be increased or decreased by changing the relative position of a barrier between the gas reservoir and the fluid reservoir in response to a control signal. The variable accumulator may have a variable representative spring rate associated therewith. The variable accumulator may be connected to a common hydraulic path. There may be a valve associated with the variable accumulator that controls the fluid flow between the accumulator and the common hydraulic path. The variable accumulator may be connected to a pump. For example, the hydraulic system may be configured such that fluid can flow bidirectionally between the pump and the variable accumulator (i.e., to and from the pump). Of course, the provision of another accumulator results in additional modes / forms of operation based on whether a valve associated with that accumulator is open or closed.
[0032] Providing a variable accumulator allows for adjustment of the stiffness of the hydraulic actuator, for example, to account for temperature or other effects that may affect the hydraulic actuator stiffness achieved by a fixed volume (e.g., first and / or second) accumulator. Providing a variable accumulator may thus allow the system to achieve target characteristics of the hydraulic actuator over a wide range of environmental conditions and / or over an extended period of time (e.g., compensating for any "drift" as a result of wear and tear of the system over extended periods of use). Additionally or alternatively, providing a variable accumulator as a source of pressurized fluid to the pump may allow for more efficient operation of the pump and / or increased power efficiency of the system by allowing for the preservation of fluid pressure that might otherwise be lost. Additionally or alternatively, the variable accumulator may be used to accommodate different gas volumes based on the operating mode, thereby reducing the number of fixed volume accumulators required. The gas volume in the variable accumulator may be controlled (indirectly) by increasing or decreasing the amount of fluid forced into the variable accumulator. Additionally or alternatively, the volume of gas in the variable accumulator can be controlled by increasing or decreasing the amount of gas delivered to the variable accumulator by air charging.
[0033] Different accumulators (e.g., each accumulator) in the plurality of gas accumulators may be associated with one or more different valves. The one or more valves may be multiple individual valves. For example, an individual valve may be positioned between each accumulator and a common flow path. Each of the individual valves may be part of a servo valve, as described below.
[0034] Additionally or alternatively, the hydraulic system may include a main valve associated with more than one accumulator. For example, the hydraulic system may include a (single) valve associated with each of a plurality of accumulators, with the same valve controlling fluid flow from the first, second, third (if any), and / or any other accumulators. Thus, the system may be switched between a first and second configuration (and optionally a third, fourth, and any other configurations) by the valve. In this manner, a single valve may be associated with more than one accumulator. The use of a single valve may allow for a more compact and / or mechanically simpler suspension system. If the single valve includes a spool mounted for movement relative to a sleeve (as if the single valve were a servo valve, as described below), the position of the spool relative to the sleeve may determine, for each of the first, second, and / or third accumulators, whether or not that accumulator is in fluid communication with the common flow path.
[0035] The or each valve may be a servo valve. Multiple individual valves may be mechanically contained within a servo valve. The servo valve may include a spool mounted for movement relative to a sleeve. The servo valve may control fluid flow through the valve by movement of the spool relative to the sleeve. For example, one or more inlet ports and one or more outlet ports may be formed in the sleeve and movement of the spool may determine the flow path between the ports. The spool may have one or more lands or grooves formed therein and, in use, fluid may flow between the inlet and outlet ports via the lands or grooves. The servo valve may be configured such that the position of the spool determines which of the multiple accumulators is in fluid communication with a common flow path. The servo valve may be a multi-way (e.g., six-way) servo valve. In this manner, a single servo valve may control the operating state of the hydraulic system and thus determine which of the multiple accumulators along a common flow path is in fluid communication with the common flow path. The use of a single servo valve allows the suspension system to be more compact and / or mechanically simple. Additionally or alternatively, the use of a servo valve can result in a more responsive suspension system because the servo valve allows for rapid switching between configurations. Additionally or alternatively, the use of such a valve can improve the power efficiency of the system because only a small amount of power is required to move the valve between different states (and thus change the damping, length and / or stiffness of the hydraulic actuator). The servo valve sleeve can be integrally formed with the manifold or housing of the active suspension system. The servo valve sleeve can be formed using additive manufacturing techniques.
[0036] The servovalve may be a rotary servovalve in which a spool is mounted for rotation relative to the sleeve. The servovalve may be a linear servovalve in which a spool is mounted for axial displacement relative to the sleeve. The spool may be mounted to the accumulators such that the accumulators are arranged in series generally parallel to the axial length of the spool.
[0037] The servo valves may allow for independent inclusion and exclusion (ie, allowing or disallowing fluid communication) of a given accumulator in a multiple accumulator common hydraulic line.
[0038] The servo valve can be a direct drive valve. As such, the servo valve can include a motor configured to move a spool relative to a sleeve. The use of direct drive valves (i.e., valves in which the spool is directly driven by an actuator) allows for further manipulation of the system and allows for precise switching between operating states with high frequency and rapid response times.
[0039] The hydraulic system may include one or more proportional valves, e.g., proportional valves disposed in a flow path between one or more accumulators (e.g., first and / or second accumulators) and a common flow path and / or between the common flow path and one or both chambers of the hydraulic actuator. A proportional valve may be defined as a valve that can have more than one open position, and a non-zero flow rate of fluid through the valve may be varied. The suspension device may be configured to vary the damping ratio of the hydraulic actuator by varying the position of the proportional valve. Of course, a pressure drop or loss across such a valve corresponds to a loss of hydraulic power, and thus such a valve may cause vibrations in the actuator to disappear. Varying the flow rate through the proportional valve(s) may also vary the spring rate of the hydraulic actuator. The suspension device may be configured to vary the position of the proportional valve to vary the spring rate of the hydraulic actuator.
[0040] The use of proportional valves allows the damping provided by the suspension system to vary in response to road conditions, thereby improving the performance of the automotive vehicle. Additionally or alternatively, the use of proportional valves to provide such damping allows the damping characteristics to be changed with minimal power output (only the position of the valve needs to be actively changed), thus improving the power efficiency of the system. This is in contrast to other systems that require large amounts of fluid to be pumped around the system to change the damping characteristics. Additionally or alternatively, the use of proportional valves to provide such damping allows the damping characteristics to be changed quickly (i.e., only the position of the valve needs to be changed, which is more abrupt than when large amounts of fluid must be moved around the circuit). Additionally or alternatively, the use of proportional valves allows variable damping to be obtained in a space-efficient and / or mechanically simple manner (the only additional mechanical element required may be the proportional valve).
[0041] The hydraulic system may include a valve associated with one or more accumulators and / or that is a proportional control valve(s) as described above. That is, the same valve (a single valve) may control (on / off and / or proportional) the fluid flow between one or more accumulators and a common flow path and / or may provide proportional control of the flow between the hydraulic actuators and the common flow path. The valve may be a servo valve as described above. The use of a single valve to perform most or all of the switching in a hydraulic system may reduce mechanical complexity and / or result in a more cost and / or space efficient system. Thus, when the or each valve is a servo valve, the servo valve may include one or more proportional valves that allow independent proportional control (i.e., may allow for a relatively large amount of fluid communication or a relatively small amount of fluid communication) of a given one of the accumulators from a common hydraulic line.
[0042] The hydraulic actuator may include a piston, comprising a rod and a piston head attached to the rod, and a piston housing. The piston may be mounted for movement within a cavity defined in the piston housing. A first side and a second side of the piston head may divide the cavity into a first chamber and a second chamber. The effective surface area of the first side of the piston head may be greater than the effective surface area of the second side of the piston head. The effective surface area refers to the surface area of the piston head on which a pressure component acts parallel to the longitudinal axis of the rod. For surfaces perpendicular to the longitudinal axis of the rod, the effective surface area is equivalent to the surface area exposed to the fluid pressure. For surfaces inclined to the longitudinal axis of the rod, the effective surface area is a function of the angle and the surface area of the surface exposed to the fluid pressure. For surfaces parallel to the longitudinal axis of the rod, the effective surface area is zero. The hydraulic actuator may have a first side of the piston head defining at least a portion of a first chamber and a second side of the piston head defining at least a portion of a second chamber, and the rod may be configured such that movement of the rod in a first direction relative to the sleeve results in an increase in the length of the actuator (i.e., extending the actuator) and movement of the rod in a second direction relative to the sleeve results in a decrease in the length of the actuator (i.e., retracting the actuator).
[0043] The first chamber may be connected to the common flow path via at least one first piston flow path. The second chamber may be connected to the common flow path via at least one second piston flow path. The system may be configured to allow bidirectional fluid flow along the first piston flow path(s) and the second piston flow path(s). The system may be configured such that a pressure change in the common flow path is transferred to both the first and second chambers, e.g., via the first and second piston flow paths, respectively, e.g., the same pressure change is applied to both chambers. Thus, a pressure increase in the common flow path may result in a pressure increase in both the first and second chambers, and / or a pressure decrease in the common flow path may result in a pressure decrease in both the first and second chambers. This means that when the pressure in the common flow path is increased (or decreased), e.g., by increasing (or decreasing) the flow output of the motor, an equal pressure change (pressure decrease or pressure increase) is applied to the fluid in the first and second chambers. The system may be configured such that a pressure increase caused by operating the pump is transmitted simultaneously to both the first and second chambers along a common flow path.
[0044] The effective surface area of the first side of the piston head is different from the effective surface area of the second side of the piston head, so that the same pressure change applied to the first and second chambers will result in a net force on the piston head. This is because F=P×A, where F is force, P is pressure, and A is effective area. Thus, the first side of the piston head, where the first effective area is greater than the second effective area, will experience a greater force than the second side of the piston head. Thus, by increasing or decreasing the pressure in the common flow path (particularly the common portion), the magnitude and direction of the resultant force can be controlled, and the length of the hydraulic actuator can be increased or decreased. Unlike the prior art, a complex series of check valves (one-way or non-return valves) is not required to raise or lower the hydraulic actuator.
[0045] The suspension system comprises one or more variable resistance valves (e.g., one or more proportional valves - the degree to which the valve opens is inversely proportional to the resistance) disposed in either (i) the or each first piston flow path, or (ii) the or each at least one second piston flow path. The system may be configured such that varying the resistance of the variable resistance valve varies the damping rate of the hydraulic actuator. There may be no variable resistance valve in the second flow path, or a valve may be present but held in a fixed position, or the position of such a valve may be varied but in a different manner than in the first flow path. The variable resistance valve may be a two-way valve configured to provide damping in both directions. The variable resistance valve may be configured such that damping across the valve is approximately the same in both directions. There may be no check valves (one-way or non-return valves) disposed between the common flow path and the hydraulic actuator, for example along the first piston flow path and / or the second piston flow path.
[0046] The piston head may fit within the housing such that there is substantially no flow between the first and second chambers around the piston head (substantially no flow may be defined as less than 0.5 litres per minute). The maximum diametral clearance between the piston head and the sleeve may be 0.030mm. The first and / or second chamber may be configured to hold a fluid at a total pressure of 70 bar or more. The first and / or second chamber may be configured to hold a fluid at a total pressure of 10 bar or more.
[0047] A first portion of the rod may be located in the first or second chamber and a second portion of the rod may be located outside the piston housing. Thus, the rod may be partially located within the piston housing. The piston housing may include a sealing region, which may be an area between the first or second chamber and the exterior of the housing from which the rod projects. For example, the piston housing may include an end region having a through hole through which the piston projects. The piston housing may include at least one seal located in the sealing region, e.g., in the through hole, and arranged to form a seal between the piston housing and the rod. The piston housing may include at least one drain port, e.g., multiple drain ports, which may be located in the sealing region. The drain port may be located in the sealing region between the at least one seal and the first or second chamber such that, in use, fluid entering the sealing region from the piston chamber can exit the sealing region via the drain port.
[0048] Placing the drain port(s) between the orifice where the rod exits the chamber and the seal that prevents fluid from leaking (losing from the hydraulic system) from inside the piston housing to outside the piston housing can reduce the pressure the seal must withstand and the friction between the seal (which must withstand higher pressures that require a tighter fit around the rod than seals rated for lower pressures) and the rod. This can reduce the energy lost to overcome that friction and / or reduce hysteresis in the movement of the rod. The or each at least one seal can be configured to withstand a pressure of 0.2 MPa (2 bar) or less. Examples of suitable seals include Trelleborg Glyd Ring Hz and / or Trelleborg Double Delta, which can be used in combination. The maximum diametral clearance between the rod and the sealing area can be 0.01 mm or less. The or each seal can have a working friction with the rod in the region of 20N to 30N.
[0049] The suspension device may, for example, comprise an oil scavenge reservoir connected to at least one oil scavenge port via an oil scavenge passage, such that in use, fluid flows from the oil scavenge port to the oil scavenge reservoir. The oil scavenge reservoir may be an accumulator and may be referred to as an oil scavenge accumulator. The oil scavenge reservoir may be configured to contain fluid at a total pressure of 0.2 MPa (2 bar) or less. Thus, the suspension device may comprise a first gas accumulator, a second gas accumulator, and an oil scavenge accumulator. The oil scavenge reservoir may be connected to a common passage and / or a pump. Thus, in use, fluid leaking from the piston chamber around the rod may return to the hydraulic system (e.g. a common path) via the oil scavenge port(s) and the reservoir, and optionally the pump. Such an arrangement may prevent loss of hydraulic fluid from the system in a mechanically simple and compact manner. Additionally or alternatively, the scavenge reservoir may provide damped and / or pressurized fluid to the hydraulic actuator through a common line, thereby allowing for greater control over the properties (e.g., stiffness, force, damping and / or length) of the hydraulic actuator, while reducing fluid loss from the system, thereby allowing the scavenge systems described herein to provide two functions from the same reservoir. The suspension device may include a valve disposed in the flow path between the scavenge accumulator and / or pump to control the flow of fluid therebetween.
[0050] The hydraulic system may include a pump. The pump may be connected to the common flow path and, in use, allow fluid to flow between the pump and the common flow path, e.g. bidirectionally. The pump may be connected to the or each accumulator and / or scavenge reservoir and, in use, allow fluid to flow between the pump and the accumulator, e.g. bidirectionally. One or more valves may be associated with the pump to control fluid flow to or from the pump and / or between the pump and the common line, the accumulator and the scavenge reservoir. The suspension device may be configured such that an increase or decrease in total pressure in the common flow path can be communicated to the hydraulic actuator. The hydraulic system may be configured such that the pump can increase or decrease pressure in the common flow path. The pump may be configured to operate in both forward and reverse directions. The pump may be directly connected to the common flow path. The pump may be configured to provide pressurized fluid at a total pressure of 10 MPa (100 bar) or more.
[0051] The pump may be a variable displacement pump. The variable displacement pump may be configured to output fluid at different flow rates and / or total pressures at different times and based on a control signal. The variable displacement pump may be a more power efficient suspension device. The variable displacement pump may include a series of fixed displacement pumps (e.g., two or more fixed displacement pumps) controlled by a geared motor to control the displacement of the variable displacement pumps.
[0052] The pump may be a radial piston pump. The pump may be a radial piston pump including a rotor having a plurality of pump piston chambers, a first set of pistons and / or a second set of pistons housed within the pump piston chambers. The radial piston pump may further include a first cam surface and / or a second cam surface. The rotor may be mounted for rotation relative to the first cam surface (if present) and the second cam surface (if present), the first cam surface being arranged to control radial movement of the first set of pistons and the second cam surface being arranged to control radial movement of the second set of pistons. The radial piston pump may include a valve configured to control fluid flow to the first set of pistons and / or to the first set of pistons. The radial piston pump may include a valve configured to control fluid flow to or from both the first set of pistons and the second set of pistons. The or each valve may be configured to switch the radial piston pump from a first configuration to a second configuration by varying fluid flow to or from the second set of pistons independently of the first set of pistons.
[0053] Thus, in a radial piston pump, the same valve may independently switch flow to or from both sets of pistons (e.g., switch flow to one set of pistons without substantially changing flow to or from the other set of pistons). The use of a single valve to control flow associated with various different layers may result in a variable displacement pump with fewer parts than other variable displacement pumps and / or may allow for a more compact variable displacement pump for a given flow rate.
[0054] The pump may be a dual displacement pump including a first pump assembly and a second positive displacement pump assembly, each pump assembly configured to deliver fluid at a different flow rate and / or total pressure. The first set of pistons may form part of the first pump assembly and the second set of pistons may form part of the second pump assembly.
[0055] The pump may include a motor configured to drive the pump. The motor may include a rotor mounted for rotation relative to a stator and the pump. A piston of the pump may be contained within a piston chamber formed in the rotor of the motor.
[0056] The same (main) valve may control fluid flow to or from the piston (switching the pump between different configurations) and may be associated with the accumulator, the scavenge reservoir (if present). Thus, the hydraulic system may include valves associated with the first, second, and third accumulators and the scavenge reservoir (if present) and configured to control the output of the variable displacement pump.
[0057] The hydraulic system may include a return valve disposed in a flow path between the common flow path and the scavenge reservoir so that fluid from the common flow path flows to the scavenge reservoir when both the return valve and a valve associated with the scavenge reservoir are open. The provision of such a return valve allows for a rapid reduction in the total pressure in the common flow path, thereby improving the versatility of the suspension system and allowing for rapid retraction of the actuator.
[0058] The fluid may be a hydraulic fluid, for example an incompressible fluid.
[0059] The suspension device may include a control system configured to operate the or each valve of the device. The control system may be configured to control each valve to an open, shut or zero position. The control system may be configured to control the operation of a pump, e.g., to control a motor driving the pump. The control system may be configured to accept one or more inputs, e.g., user input or sensor input, and based on the inputs so accepted, change the position of one or more valves or drive the pump to achieve a desired set of characteristics (stiffness, force, length and / or damping) for the hydraulic actuator. The control system may include a feedback system that provides one or more instructions regarding the characteristics of the hydraulic actuator.
[0060] In a second aspect of the present invention there is provided a suspension arrangement for an automotive vehicle, the suspension arrangement comprising: a hydraulic actuator for mounting between the wheel assembly and the body of the motor vehicle; and a hydraulic system configured to supply fluid to the hydraulic actuator and thereby control the length, force, stiffness and / or damping characteristics of the hydraulic actuator; Equipped with the suspension system includes a common flow path connecting the hydraulic system to the hydraulic actuators; The hydraulic system includes a first gas accumulator and a second gas accumulator, each accumulator connected to the common flow path via an associated valve, and in use, when the associated valve is open, fluid can flow from each accumulator via the common flow path to the hydraulic actuator, and the hydraulic system operates during the following modes of operation: a first mode of operation in which the valve is configured such that fluid can flow between the first gas accumulator and the common flow path and fluid cannot flow between the second gas accumulator and the common flow path; a second mode of operation in which the valve is configured such that fluid can flow between the first gas accumulator and the common flow path and fluid can flow between the second gas accumulator and the common flow path; It is configured to switch between The suspension system of the second aspect may have any other feature of the suspension system described in relation to the first aspect, or any other aspect of the method or apparatus.
[0061] In a third aspect of the present invention there is provided a suspension arrangement for a motor vehicle comprising a hydraulic actuator for mounting between a wheel assembly and a body of the motor vehicle, said hydraulic actuator comprising: A piston housing and a piston mounted for movement within a cavity defined in the piston housing, the piston including a rod and a piston head attached to the rod, first and second sides of the piston head dividing the cavity into a first chamber and a second chamber; and the piston housing further comprises: a sealing region between the first chamber or the second chamber and the exterior of the housing through which the rod passes; at least one seal disposed in the sealing region and configured to form a seal between the piston housing and the rod; and at least one oil drain port disposed in the sealing region between the at least one seal and the first chamber or the second chamber, wherein in use fluid entering the sealing region from the chamber can exit the sealing region via the oil drain port; has. The suspension system of the third aspect may have any other feature of the suspension system described in relation to the first aspect, or any other aspect of the method or apparatus.
[0062] According to a fourth aspect of the present invention there is provided a suspension unit comprising the suspension arrangement of any other aspect, which may be a self-contained stand-alone unit, wherein the hydraulic system is contained within a housing of the unit and at least a part of the hydraulic actuator, for example a rod of the hydraulic actuator, is partially located within the housing of the unit.
[0063] Providing the active suspension system in a self-contained unit may facilitate mounting the active suspension system to a vehicle and / or reduce the risk of leakage / pressure loss associated with suspension systems utilizing centralized or decentralized hydraulic systems. When the hydraulic actuator is fully retracted, the length of the unit (longest dimension of the unit) may be less than 400 mm, e.g., less than 300 mm. The weight of the unit (including hydraulic fluid) may be less than 7 kg, e.g., less than 4 kg.
[0064] The hydraulic actuator may have a rod mounted for axial movement within the housing and extending parallel to a longitudinal axis of the unit. The hydraulic system may include a first gas accumulator, a second gas accumulator, and (optionally) a third gas accumulator, the accumulators may be arranged in a line along a portion of the length of the unit. Adjacent accumulators may share a common wall. The rod may extend along and adjacent a first side of the unit. The accumulators may be spaced adjacent a second side of the unit opposite the first side. The piston housing or sleeve and the one or more accumulators share a common wall. Such a layout may be particularly space efficient and / or allow for integral formation of structures defining different elements, thereby saving weight and / or cost.
[0065] The pump and / or (main) valve may be arranged in-line with the first, second and (if present) third gas accumulators. For example, the valve may be arranged coaxially (e.g., concentrically and / or internally) with the rotor of the pump, and the pump / valve assembly may be arranged along the length of the unit, e.g., opposite the rod side of the unit, in-line with the accumulators. Again, such a layout may be particularly efficient in terms of both space and structure.
[0066] The suspension unit may include a pump manifold including a cavity arranged to house a pump. The pump manifold may include a plurality of flow galleries, each extending between an inlet or outlet port of the manifold and a cavity to form a flow path for fluid to flow to or from the pump. One or more of the flow galleries may be curvilinear. A curvilinear flow gallery may be defined as a flow gallery that is curved along a majority of its length (from the inlet or outlet port to the cavity), the curvature being in two planes such that the flow gallery follows a non-linear path in all three dimensions. The use of such curvilinear flow galleries allows the flow galleries to be arranged in a more space-efficient manner within the pump manifold. The pump manifold may be of single piece construction. The pump manifold (including the curvilinear flow gallery) may be formed as a single piece using additive manufacturing. The use of additive manufacturing can facilitate cost-effective production of manifolds, including curved flow galleries, having complex geometries.
[0067] The pump and / or the (main) valve may be located in a pump and control unit of the suspension unit. The pump and control unit may further include a pump manifold. The pump and control unit may include one or more ports (e.g., an inlet port and / or an outlet port) through which fluid may flow between the accumulator and the pump. The pump and control unit may be a modular unit configured to mount to the rest of the suspension unit.
[0068] The suspension unit may include at least one accumulator, e.g., a plurality of accumulators. Each accumulator may be a modular accumulator. The modular accumulator may be a self-contained unit that defines a gas reservoir and a fluid reservoir and includes a barrier. Each accumulator may include an accumulator housing and a port in the housing that allows hydraulic fluid to enter and exit the accumulator. The modular accumulators may be configured such that the accumulators may overlap one another, e.g., a portion of one accumulator may be received in a recess in a surface of another accumulator. For example, an end portion of one accumulator may be received in a recess formed in an end surface of another accumulator. The hydraulic system may include a first gas accumulator, a second gas accumulator, and a third gas accumulator, and each of the first gas accumulator, the second gas accumulator, and the third gas accumulator may be a modular accumulator. The first gas accumulator, the second gas accumulator, and the third gas accumulator (if present) may be modular accumulators stacked in-line with one another. The use of modular accumulators in the suspension unit may reduce manufacturing costs and / or allow for the production of a wide range of suspension units, i.e., different sized modular accumulators may be easily included in the suspension unit in different combinations to obtain the required hydraulic system performance.
[0069] The pump and control unit may be provided at one end of a bank of modular accumulators.
[0070] The unit may further include one or more pipes, e.g., straight pipes, that make the fluid connections between the inlet or outlet ports of the pump and control unit and the ports of the accumulator. The combination of pump manifold additive manufacturing to conventional pipes in the rest of the suspension unit may allow for cost-effective production of high performance suspension units. The relatively more expensive additive manufacturing can be used to produce the complex flow paths required to obtain a space-efficient pump manifold, while more conventional components (e.g., straight pipes) are used elsewhere in the suspension unit, for example to connect the pump and control unit to the modular accumulator.
[0071] According to a fifth aspect of the present invention, there is provided a method of controlling relative movement between a wheel assembly and a body of a motor vehicle using a suspension arrangement comprising: a hydraulic actuator connecting between a wheel assembly and a body of the motor vehicle; and a hydraulic system configured to provide a fluid supply to the hydraulic actuator, the hydraulic system being configured to supply fluid to the hydraulic actuator at a total pressure equal to or greater than 7 MPa (70 bar) for a first period of time.
[0072] The hydraulic system may include a first accumulator and / or a second accumulator connected to a common flow path. The stiffness of the hydraulic actuator may be determined by the total volume of compressible gas in fluid communication with the primary flow path at a reference pressure. During a first period, the first accumulator may hold a first amount of gas (corresponding to a first volume of gas at the reference pressure) and the second accumulator may hold a different second amount of gas (corresponding to a second volume of gas at the reference pressure). During a first period, fluid flow between one or both of the first and second accumulators and a common line may be stopped or started, thereby varying the amount of compressible gas in fluid communication with the common flow path and therefore varying the stiffness of the hydraulic actuator. Of course, during a first period, while the total pressure in the common flow path may vary, the total pressure remains equal to or greater than 70 bar.
[0073] Of course, the volume that the amount of gas occupies will vary based on pressure, and the relative amount of gas in each accumulator is determined by comparing the volume that the gas occupies in each accumulator at a given base pressure.
[0074] The time periods during which a particular combination of accumulators are in fluid communication with the common flow path (i.e., their associated valves are open) may be referred to as sub-periods. Thus, a first period may include multiple sub-periods, and one sub-period may end and the next sub-period may begin when fluid flow to one or more of the accumulators is stopped or started.
[0075] The method may comprise varying a non-zero position of a variable resistance valve disposed in a piston flow path during a first time period, such as a sub-period of the first time period, to vary a damping rate of the hydraulic actuator. The method may comprise varying a zero position of the valve during a sub-period.
[0076] The method may comprise operating the pump to vary the length of the hydraulic actuator to vary the total pressure in the common flow path during a first period, for example during a sub-period of said first period, optionally including a plurality of such sub-periods, one sub-period ending and another sub-period beginning when fluid flow to the at least one accumulator is stopped or started during a sub-period of the first period.
[0077] The hydraulic actuator includes a piston having a first piston chamber at one side of the piston head and a second piston chamber at the other side of the piston head, the first side of the piston head at the first piston chamber having an effective surface area greater than the effective surface area of the second side of the piston head at the second piston chamber, the first and second chambers being connected to a common flow path by different piston flow paths. A pressure increase in the common path will cause a pressure increase in the first and second chambers, and the difference in effective surface area may result in a net force on the piston head, causing the piston head to move away from the first chamber and for fluid to flow from the common path into the first chamber and out of the second chamber. A pressure decrease in the common path will cause a pressure decrease in the first and second chambers, and the difference in effective surface area may result in a net force on the piston head, causing the piston head to move away from the second chamber and for fluid to flow out of the first chamber and out of the second chamber. In this manner, varying the pressure in the common flow path causes the hydraulic actuator to increase or decrease in length.
[0078] The method according to the invention therefore allows the length of the hydraulic actuator to be varied by varying the total pressure in the common flow path. In other words, varying the total pressure in the common flow path allows the average length of the actuator to be varied. However, in steady state, the length of the actuator is independent of the pressure in the common flow path. Thus, when fitted to a car, such a system allows the average ground clearance of the car to be adjusted, while still allowing the hydraulic actuator to move up or down from its average position to act as a suspension. Such a method can therefore provide an active suspension device. This arrangement of the pump and the common flow path in fluid communication with the two chambers in the hydraulic actuator, and the difference in surface area of the pistons in the hydraulic actuator, combined with the high total pressure in the common flow path, allows large actuator movements to be achieved with low power and / or quickly, i.e., without the need to pump large amounts of fluid around the circuit, but instead small changes to the total pressure in the common flow path drive the displacement.
[0079] The method includes operating the pump to increase or decrease the total pressure in the common flow path, e.g., during a first time period or a sub-time period, the pump exchanging fluid with the variable accumulator. Operating the pump to increase or decrease the total pressure in the common flow path, the pump exchanging fluid with the scavenge reservoir. In this regard, operating the pump may result in fluid collecting in the scavenge reservoir returning to the common flow path.
[0080] A tire may be mounted on the wheel assembly. A scavenge accumulator may be connected to a common flow path in fluid communication with the hydraulic actuator. The method includes starting fluid flow between the scavenge accumulator and the common path during a first period of time, thereby displacing high pressure fluid from the hydraulic actuator such that the length of the hydraulic actuator decreases, causing the tire to retract and the wheel assembly and the vehicle body to accelerate towards each other. Retraction of the tire causes the acceleration of the wheel assembly towards the vehicle body to be greater than the acceleration of the vehicle body towards the wheel assembly. For example, the magnitude of the acceleration of the wheel assembly towards the vehicle body may be approximately 7g or greater. The magnitude of the acceleration towards the wheel of the vehicle assembly may be approximately 1g (g is 9.81 ms -2 ) The wheel assembly may experience greater acceleration than the vehicle body due to tire retraction. Tire retraction causes the hydraulic actuator to rapidly apply force to the wheel assembly as it compresses. Rapid fluid removal from the hydraulic actuator results in the tire compressing force being removed, causing the tire to rapidly retract and thereby pushing the wheel assembly off the ground.
[0081] The steps of operating the pump and / or varying the non-zero position of the variable resistance valve may be performed at multiple times during a first period or sub-periods thereof. The steps of operating the pump and / or varying the non-zero position of the variable resistance valve may be performed within different sub-periods. The steps of operating the pump and / or varying the non-zero position of the variable resistance valve may be performed simultaneously and / or at different times during a sub-period or time period.
[0082] The steps of operating the pump, varying the accumulator in fluid communication with the common line, and / or varying the non-zero position of the variable resistance valve may be performed by a control system of the suspension device in response to one or more inputs. The inputs may be from a driver of the vehicle, such as the driver selecting a different suspension mode (e.g., changing from an "economy" drive mode to a "sport" drive mode) or operating the steering wheel, accelerator, and / or brakes in a particular manner. The inputs may be sensor inputs from one or more sensors in the vehicle, such as an accelerometer, a speed sensor, and / or a remote sensing device configured to detect oncoming road hazards.
[0083] The method comprises the hydraulic system supplying fluid to the hydraulic actuator at a total pressure of at least 70 bar for a second period of time. The second period of time may occur before or after the first period of time. The second period of time may include one or more sub-periods as described above. The method may include performing any of the steps described above during the second period or sub-periods thereof. The or each first period of time may have a duration of greater than 1 minute, for example greater than 10 minutes.
[0084] The method may comprise the steps of: during a third time period, the return valve is open and the valve associated with the scavenge reservoir is open so that fluid from the common flow path flows to the scavenge reservoir, thereby reducing the total pressure in the shared line and contracting the hydraulic actuator. The valve associated with the or each accumulator may be closed throughout the third time period. The pump may be stopped during the third time period. Just prior to the third time period, the total pressure in the scavenge reservoir may be less than the pressure in the accumulator, for example the pressure in the scavenge reservoir may be less than 2 bar. The variable resistance valve may be fully open throughout the third time period. This aspect of the method may result in a rapid contraction of the hydraulic actuator in response to, for example, an incoming pothole or bump in the road. The step of switching the valve to an appropriate position during the third time period may be performed by a control system of the suspension device in response to one or more of the inputs described above. The third time period may occur before or after the first time period. The third period may occur between the first and second periods.
[0085] The method may comprise operating a pump to pressurize the variable accumulator to a higher pressure than the first and second accumulators for a fourth time period, and then opening a valve associated with the variable accumulator to increase the pressure in the common path while the valves associated with the first and second accumulators are closed, thereby extending the hydraulic actuator. The variable resistance valve may be fully open for the entire fourth time period. This aspect of the method may result in a rapid extension of the hydraulic actuator, for example causing the body of the vehicle to "jump". The hydraulic actuator may be fully retracted in less than 15 milliseconds, for example less than 10 milliseconds. The step of switching the valve to an appropriate position for the fourth time period may be performed by a control system of the suspension device in response to one or more of the inputs described above. The fourth time period may occur before or after the first time period. The fourth time period may occur between the first and second time periods.
[0086] During the first and / or second time periods, the method may comprise leaking fluid from a chamber of the hydraulic actuator into a sealed area of the piston housing (as described for the apparatus). The method may comprise flowing fluid from the sealed area to a scavenge reservoir via one or more scavenge outlets located in the sealed area. This may maintain the pressure in the sealed area below 0.5 MPa (5 bar). The method may comprise periodically opening a valve associated with the scavenge reservoir and operating a pump to return fluid from the scavenge reservoir to the common flow path. The method according to this aspect of the invention may therefore reduce the pressure seen by the seals in the piston housing, allowing more flexible seals to be used and reducing their friction.
[0087] According to a sixth aspect of the present invention there is provided a motor vehicle comprising a suspension arrangement according to any other aspect described herein.
[0088] An automotive vehicle may include a plurality of wheels coupled to a chassis. The vehicle may include a plurality of said suspension devices or suspension units, one associated with each wheel, e.g., mounted on each wheel assembly. Each wheel assembly may include a wheel. The automotive vehicle may be a passenger car, e.g., a passenger car configured to seat not more than ten passengers. Active suspension devices may find particular application in passenger cars in view of the need to obtain a good ride comfort.
[0089] Of course, it will be appreciated that features described with respect to one aspect of the invention may be incorporated in other aspects of the invention, for example a method of the invention may incorporate any feature described with respect to an apparatus of the invention, and vice versa. [Brief description of the drawings]
[0090] Embodiments of the invention will now be described, by way of example only, with reference to the accompanying schematic drawings in which: [Figure 1] 1 shows a hydraulic schematic of an active suspension system according to a first embodiment of the present invention; [Diagram 2] FIG. 2 shows a mechanical schematic of a quarter-car model of the active suspension system of FIG. 1. [Diagram 3] 2 illustrates the flow paths around the active suspension device of FIG. 1 when the device is in a "fast extend" mode of operation. [Figure 4] 2 shows the flow paths around the active suspension device of FIG. 1 when the device is in a "high stiffness" mode of operation. [Diagram 5] 2 illustrates the flow paths around the active suspension device of FIG. 1 when the device is in a "low stiffness" mode of operation. [Figure 6] 2 illustrates the flow paths around the active suspension system of FIG. 1 when the system is in a "hydraulic balancing" mode of operation. [Figure 7] 2 illustrates the flow paths around the active suspension device of FIG. 1 when the device is in a "fast retract" mode of operation. [Figure 8] 2 shows a hydraulic actuator suitable for use in the apparatus of FIG. 1; [Figure 9] 9 shows an enlarged view of a portion of the actuator of FIG. 8. [Figure 10] 2 shows a cross-sectional view of an exemplary active suspension unit incorporating the apparatus of FIG. 1. [Figure 11] 11 shows an enlarged view of a portion of the unit in FIG. 10. [Figure 12] A flow gallery of a portion of the unit in Figure 10 is shown. [Figure 13] 2 shows a cross-sectional view of an exemplary active suspension unit incorporating the apparatus of FIG. 1. [Figure 14a] 14 shows a part of the pump and control unit in the suspension unit of FIG. 13. [Figure 14b] 14 shows the internal volume of the flow gallery within the pump manifold of the pump and control unit in the suspension unit of FIG. 13. [Figure 15] FIG. 14 shows an exploded view of the suspension unit of FIG. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0091] FIG. 1 shows a schematic diagram of an active suspension system according to a first exemplary embodiment. The active suspension system 201 comprises a hydraulic circuit 210 and a hydraulic actuator 205 connected via a primary flow gallery AB (i.e., a flow gallery defining a flow path between references A and B in FIG. 1). All fluid output from the hydraulic circuit 210 to the hydraulic actuator 205 passes through point A. Connected to the primary flow gallery AB are a high volume accumulator 222, a low volume accumulator 232, and a variable volume accumulator 242. Additionally, a pump 203 is connected to the primary flow gallery AB. As used herein, "connected" should be understood to mean that there is a potential path for fluid to flow between the elements that are connected. Of course, whether or not fluid flows along that potential path will depend on any valve positions (e.g., open or closed) along that path. In this manner, fluid may flow to primary flow gallery AB from each of high volume accumulator 222, low volume accumulator 232, variable volume accumulator 242, and pump 203. Each accumulator (222, 232, 242) is in fluid communication with a source of compressed air (not shown) via a check valve 122, 132, 142, respectively.
[0092] A first independent switching valve 223 is disposed in the flow path between the high volume accumulator 222 and the primary flow gallery AB. The switching valve 223 is a variable resistance valve and can have a fully open position, a fully closed position, and a number of intermediate positions. A second independent switching valve 233 is disposed in the flow path between the low volume accumulator 232 and the primary flow gallery AB and has an open position and a closed position. A third switching valve 243 is disposed in the flow path between the variable volume accumulator 242 and the primary flow gallery AB. The high volume accumulator 222 is connected to the primary flow gallery AB at a point located between point A and a point connecting the low volume accumulator 232 to the flow gallery AB. The variable accumulator 242 is connected to the primary flow gallery AB at a point B on the other side of the point connecting the low volume accumulator 232 to the flow gallery AB.
[0093] In this embodiment, the pump 203 includes a low displacement stage 212a and a high displacement stage 212b. In other embodiments, the two stages can be provided by separate pumps or by using a variable displacement pump. The variable accumulator 242 is directly connected to the high displacement stage 212b by a direct flow path 254. The other side of the high displacement stage 212a is connected to the primary flow gallery AB at point B (i.e., the same point as the variable pressure accumulator). One side of the low displacement stage 212a is directly connected to the primary flow gallery AB between point B and the point where the low volume accumulator 232 is connected to the flow gallery AB. The other side of the low displacement stage 212a is connected to the scavenge accumulator 270 via a scavenge flow gallery 281.
[0094] A fourth selector valve 273 is disposed in the scavenge flow gallery 271 which connects to a scavenge inlet 272 of the hydraulic actuator 205 and to a point in the flow path between the fourth selector valve 273 and the scavenge reservoir 270. A fifth selector valve 283 is disposed in a return flow gallery 282 which extends between the primary flow gallery AB (at a point between the connection to the high volume accumulator 222 and the low volume accumulator 232) and the scavenge flow gallery 281 (between the pump 203 and the fourth valve 273).
[0095] The hydraulic actuator 205 is connected at one end to the vehicle body 207 (see FIG. 2) and at the other end to a wheel assembly 209 (see FIG. 2). The hydraulic actuator 205 includes a rod 257 that is connected at a distal end to the vehicle body and has a piston head 258 at the other end. The piston head 258 is contained within a cylinder of the actuator 205, thereby dividing the cylinder interior into two chambers, an upper chamber 205a and a lower chamber 205b. The effective surface area of the piston head 258 adjacent the lower chamber 205b is greater than the effective surface area of the piston head 258 adjacent the upper chamber 205a, and the presence of the rod 257 on the side of the upper chamber 205a results in a reduced area of the upper chamber 205a exposed to fluid pressure.
[0096] A first flow gallery 262 connects point A in the primary flow gallery AB to the upper chamber 205a. A second flow gallery 261 connects point A to the lower chamber 205b. A variable resistance valve 255 is disposed in the first flow gallery between point A and the upper chamber 205a.
[0097] FIG. 2 shows a mechanical schematic of a quarter car model of an active suspension system 201 in the first embodiment of the invention shown using a hydraulic schematic in FIG.
[0098] The quarter car model shows the accumulators (222, 232, 242) represented as springs in series with the low displacement stage 212a between the mass of the car body 207 and the wheel assembly 209 located on the ground 202. The tires 204 of the wheel assembly 209 are represented in FIG. 2 as both springs and dampers. A damper and switch corresponding to the third changeover valve 223 is shown in parallel with the spring representing the high volume accumulator 222. The high displacement stage 212b is shown in parallel with a switch representing the valve 243 and a spring representing the variable accumulator 242. The switch representing the valve 233 is in parallel with the spring representing the low volume accumulator 232. A switch representing the feedback valve 283 is shown in parallel with the low displacement stage 212a. A variable resistance valve 255 is shown in parallel with the springs representing all three accumulators 232, 242, 222.
[0099] As is evident from Figures 1 and 2, when a valve associated with an accumulator is blocked, the gas in that accumulator does not experience any change in pressure in the common flow path AB, and from a mechanical point of view, this is equivalent to locking out the corresponding spring in Figure 2. In this way, by changing the position of the valve in the arrangement of Figures 1 and 2, the stiffness and damping characteristics of the hydraulic actuator 205 can be varied. Thus, the suspension arrangement according to this embodiment provides a suspension with different characteristics at different times.
[0100] In this embodiment, the switching valves 223, 233, 243, 273 and 283 form part of a single main valve 250 which is a rotary direct drive servo valve. In other embodiments, separate valves can be used. This main valve 250 has a pool (not shown in FIG. 1) that is directly driven by a motor (not shown in FIG. 1). An example of such a valve is shown in FIG. 11. The use of a single valve to control the flow of fluid to various different components in the system allows for a more compact and / or lighter weight active suspension system. Additionally, it results in a more responsive system.
[0101] The high volume accumulator 222 contains a larger amount of gas (a larger volume of compressible gas at a base pressure) than the low volume accumulator 232. The low volume accumulator 232 contains a smaller amount of gas (a smaller volume of compressible gas at a base pressure) than the high volume accumulator 222. The amount of gas contained within the variable accumulator 242 (gas volume at a base pressure) can vary.
[0102] Low displacement stage 212a provides a lower flow rate than high displacement stage 212b. For example, in some embodiments, the low and high displacement stages each provide a flow rate in the range of 0.5 to 5 liters per minute.
[0103] A control system 211 controls the main valve 250, the variable resistance valve 255, and the variable displacement pump 203. The control system 211 is conventional and can receive user and / or sensor inputs, including accelerometers and speed sensors. The control system can output commands to the main valve 250, the variable resistance valve 255, and the variable displacement pump 203 to control the length, stiffness, damping, and force exerted by the hydraulic actuator 205.
[0104] The operation of the active suspension system 201 of Figures 1 and 2 is described below in terms of a number of different operating configurations or modes.
[0105] FIG. 3 shows the flow paths around the active suspension system of FIG. 1 when the active suspension system in the first embodiment of the present invention is used in the "fast extend" mode of operation. Before switching to the "fast extend" mode, the variable accumulator 242 is filled with pressurized fluid by the high displacement stage 212b. In the "fast extend" mode, the switching valves (223, 233, 273) of the high volume accumulator 222, the low volume accumulator 232, and the scavenge reservoir 270 are all fully closed. Both the high displacement stage 212a and the low displacement stage 212a of the pump are stopped (in other embodiments, the fluid can be recirculated between the primary flow gallery and the variable accumulator 242). Before switching to the "fast extend" mode, the weight of the body 207 is supported by the reaction force at the piston rod 256. In this initial equilibrium state, the pressure in the chamber is equal to the pressure along the primary flow path AB. When a "fast extension" is initiated, the switching valve 243 associated with the variable accumulator 242 switches to a fully open position, creating a pressure change in the flow gallery AB that is transmitted to the hydraulic actuator 205. This pressure change is initially the same in both the upper chamber 205a and the lower chamber 205b. However, the effective surface area of the piston head 258 in contact with the fluid in the lower chamber 205b is greater than the effective surface area of the piston head 258 in contact with the fluid in the upper chamber 205a. This results in a net upward force on the piston head 258. As the piston rises, the decreasing volume of the upper chamber 205a causes fluid to move from the upper chamber to the lower chamber 205b via the flow passage 262, thereby causing the hydraulic actuator 205 to extend more quickly.
[0106] FIG. 4 illustrates the flow paths around the active suspension system of the first embodiment of the present invention when the active suspension system is used in a "high stiffness" mode of operation.
[0107] In the "high stiffness" mode, the switching valves (223, 243, 273) of the high volume accumulator 222, the variable accumulator 242, and the scavenge reservoir 270 are all fully closed. The return valve 283 is fully open, which allows fluid to recirculate between the low displacement stage 212a and the primary flow path AB. The switching valve 233 associated with the low volume accumulator 232 is fully open. The switching valve 243 is closed, which allows fluid to flow from the variable accumulator 242 or from the primary flow path AB via the high displacement stage 212b. The variable resistance valve 255 is partially open. The total pressure at point A is greater than 10 MPa (100 bar) and the device is in the "high stiffness" mode, for example the spring rate can vary between 30 N / mm and 90 N / mm in this mode.
[0108] In the "high stiffness" mode, only the gas in the low volume accumulator 232 is exposed to pressure changes in the primary flow path AB, while the other accumulators are cut off by the associated changeover valve. Since only a relatively small amount of gas can be compressed by the action of the incompressible fluid in the hydraulic system, the hydraulic system is relatively stiff, and the actuator 205 translates to a relatively high stiffness. The stiffness can be further increased by activating the high displacement stage 212a. Activating the high displacement stage 212a can be used to raise or lower the vehicle's average ground clearance by varying the pressure in the primary flow path AB. When the pressure in the primary flow path AB is increased (e.g., by activating the high displacement stage 212a), the resulting pressure increase in both the upper and lower chambers 205a and 205b results in the movement of the piston head 258 and thus the actuator, as described above. When fluid moves between the upper and lower chambers, the additional resistance provided by the valve 255 creates a damping effect on the piston movement. This damping effect can be varied by changing the diameter of the variable orifice. Thus, the "high stiffness" mode of this embodiment of the device provides high stiffness, variable damping (by varying the resistance offered by valve 255), and ground clearance control to the active suspension.
[0109] The high stiffness mode of operation is, for example, high acceleration (2-4 m / s) in response to steering wheel movements by the driver. 2 A higher roll amount may be selected when such a load is anticipated by the control system.
[0110] FIG. 5 shows the flow paths around an active suspension system when it is in a "low stiffness" mode of operation.
[0111] In the "low stiffness" mode, the switching valves (243, 273) of the variable accumulator 242 and the scavenge reservoir 270 are fully closed. The return valve 283 is fully open, which allows fluid to recirculate between the low displacement stage 212a and the primary flow path AB. The switching valve 233 associated with the low volume accumulator 232 is fully open. The switching valve 223 associated with the high volume accumulator 222 is partially open. The switching valve 243 is closed, which allows fluid to flow from the variable accumulator 242 or through the high displacement stage 212a. The variable resistance valve 255 is partially open. While the device is in the "low stiffness" mode, the total pressure at point A is greater than 7 MPa (70 bar). For example, the stiffness in this mode can vary between 5 N / mm and 50 N / mm.
[0112] In the "low stiffness" mode, the connection of the low volume accumulator 232 and the high volume accumulator 222 to the primary flow path AB exposes a greater amount of gas to pressure changes in the flow path AB than in the "high stiffness" mode. More gas can be compressed by the action of the incompressible fluid in the hydraulic system, making it less stiff than in the "high stiffness" mode, turning it into a relatively low stiffness accumulator. When the pressure in the primary flow path AB rises from a steady state, the pressure differential between the weight of the vehicle against the piston rod 257 and the pressure rise along the primary flow path AB will result in fluid flowing into the hydraulic actuator 205. The same pressure change is exerted on both the upper chamber 205a and the lower chamber 205b, and again as a result of the difference in effective surface area on the different sides of the piston head 258, will result in the actuator movement as described above. Similarly, when pressure in primary flow path AB is decreased (e.g., by operating high capacity pump 212a to decrease the pressure of the fluid along common flow path AB), the decrease in pressure in each of the upper and lower chambers 205a and 205b will result in movement of the actuator in the other direction. Again, as fluid moves between the upper and lower chambers, additional resistance is provided by valve 255, creating a damping effect on the piston movement. The damping effect can be varied by changing the diameter of the variable orifice. In this manner, the device in "low stiffness" mode according to this embodiment provides a low stiffness, variable damping (by varying the resistance provided by valves 255 and 223), and ground clearance control for the active suspension.
[0113] The "low stiffness" mode is intended for general operation at relatively low levels of acceleration. The stiffness of the device is relatively low (compared to the high stiffness setup).
[0114] FIG. 6 shows the flow in the active suspension system in the first embodiment of the present invention when the active suspension system is used in a "hydraulic balancing" mode of operation in which fluid collected in the scavenge reservoir 270 is returned to the hydraulic circuit 210.
[0115] In this "hydraulic balancing" mode, the changeover valves (243, 273) of the variable accumulator 242 and the scavenge reservoir 270 are fully open. The return valve 283 is fully open and fluid is recirculated between the low displacement stage 212a and the primary flow path AB. The changeover valve 233 associated with the low volume accumulator 232 and the changeover valve 243 associated with the variable accumulator are fully open. The changeover valve 223 associated with the high volume accumulator 222 is partially open. The changeover valve 243 is open and fluid from the high displacement stage 212b is also recirculated to the variable volume reservoir 242 via point B. The variable resistance valve 255 is partially open. The total pressure at point A is the same as in the low stiffness mode and the pressure at point A is 70 bar in this mode. The stiffness of the hydraulic actuator 205 is similar to the stiffness in the "low stiffness" mode, and can vary between, for example, 5 N / mm and 50 N / mm.
[0116] In the "hydraulic balancing" mode, the amount of gas exposed to the action of the hydraulic fluid is the same as in the "low stiffness" mode, resulting in a similar stiffness and pressure changes in the primary flow path AB resulting in a similar actuator 205 movement. In contrast to the "low stiffness" mode, in the "hydraulic balancing" mode, the low displacement stage 212a is driven to return fluid from the scavenge reservoir 270 to the primary flow path AB. In this way, in the device in the "hydraulic balancing" mode, the performance of the device is equivalent, but allows fluid leaking from the accumulator to return to the hydraulic circuit via the scavenge system. In this hydraulic balancing mode, the length of the actuator 205 can be adjusted (e.g., the hydraulic actuator can be raised using the low displacement stage 212a driven to return fluid from the scavenge reservoir 270 to the primary flow path AB). When switching from the "hydraulic balancing" mode, no additional or continuous energy supply is required to maintain the changed actuator length.
[0117] 1 illustrates the flow paths around an active suspension system when the active suspension system is used in a "fast retract" mode of operation, for example in response to a pothole or bump in the road.
[0118] In the "fast deflation" mode, the changeover valves (223, 233, 243) of the high volume accumulator 222 and the low volume accumulator 232, and the variable accumulator 242 are all switched to the closed position. Both the high displacement stage 212a and the low displacement stage 212a are stopped (although other embodiments may recirculate fluid through the primary flow path AB). At the start, the "fast deflation" return valve 283 and the changeover valve 273 are fully opened and the pressure in the primary flow path AB drops rapidly as fluid flows to the low pressure scavenge reservoir 271. Considering that the vehicle body 207 acts to compress the actuator 205 and that the fluid in the hydraulic actuator 205 is at high pressure at steady state, this results in a sudden displacement of fluid from the hydraulic actuator 205; the relatively small amount of fluid in the hydraulic circuit 210 means that the displacement of fluid from the hydraulic actuator 205 is functionally instantaneous. The loss of pressure in the actuator 205 allows the body 207 and wheel assembly 209 to move towards each other. The sudden removal of the downward force from the hydraulic actuator on a tire (not shown) attached to the wheel assembly 209 causes the tire to be pushed away and pushed back from the ground. This results in the wheel assembly 209 accelerating towards the hydraulic actuator (and thus the body 207) at an acceleration faster than gravity, e.g., about 7g. Meanwhile, the body 207 moves towards the hydraulic actuator (and thus the ground 202) under the action of gravity (i.e., at an acceleration of g). Thus, the net effect of these acceleration differences means that when the fast retraction mode is activated, the wheel attachment point 209 suddenly retracts towards the body. In this way, the hydraulic actuator 205 in the "fast retraction" mode can be used to rapidly lift the wheel assembly 209 off the ground 202 to avoid deep holes, etc.
[0119] FIG. 8 illustrates an exemplary hydraulic actuator suitable for use in the first embodiment of the present invention. Within the sleeve 256 of the hydraulic actuator 205 is a rod 257. At the upper end (in FIG. 8) of the rod 257 is a first connection point for connection to the vehicle body 207. At the lower end of the rod 257 is a piston head 258. At the lower end (in FIG. 8) of the sleeve 256 of the hydraulic actuator 205 is a connection point for supporting the wheel assembly 209.
[0120] Figure 9 shows an enlarged view of the upper end region of the sleeve of the actuator of Figure 8. Only the outermost surface of the rod 257 is shown in this view. At the end of the sleeve 256 is a sealing region 280 extending between the end of the upper chamber 260 and the end of the sleeve 256. Two seals 281 are arranged adjacent to the ends of the sealing region 280, spaced apart from each other along the longitudinal axis of the rod 257 and extending circumferentially around the inner surface of the sleeve 256. A number of oil scavenge inlets 272 are formed on the inner surface of the sleeve 256 in the sealing region 280 and are connected to the oil scavenge flow gallery 271.
[0121] In use, some amount of fluid leaks from the upper chamber 260 into the sealed area and then exits from that area to the oil scavenge flow gallery 271 via the oil scavenge inlet 272. This results in a reduction in the pressure of any fluid in the sealed area and therefore the pressure that the seal 281 must withstand (e.g., in some embodiments, the seals 281, 282 are subjected to only 30N of force during normal operation). The fit between the seals 281, 282 is not as tight and the frictional force exerted by the rod 257 is correspondingly reduced compared to an arrangement without an oil scavenge inlet, and the power required to overcome the friction is likewise reduced. Thus, a suspension arrangement including a sealed area and an oil scavenge outlet according to this embodiment may be more efficient than a conventional suspension arrangement. The use of a sealed area including an oil scavenge inlet in this embodiment may find particular application in a suspension arrangement including a pump as described herein, which may be used to recirculate fluid passing through the oil scavenge area, thereby maintaining and conserving a source of hydraulic fluid in the hydraulic circuit.
[0122] FIG. 10 shows a cross-sectional view of an exemplary active suspension unit, a unit suitable for use, for example, as the apparatus of FIG. 1. The hydraulic circuit 210 is housed within a casing 290 of this unit. A rod 257 is partially disposed within the casing 290, extending adjacent to and parallel to the left side of the casing 290 in the unit of FIG. 10. Disposed in a line to the right of the rod 257 (starting from the end of the casing 290 from which the rod projects and in the order of working inward) are a low volume accumulator 232, a variable accumulator 242, a high volume accumulator 222, and a scavenge reservoir 270. The low volume accumulator 232 is adjacent the end of the casing 290, the other accumulators / reservoirs being adjacent in sequence along the length of the rod, and the scavenge reservoir 270 being adjacent the innermost end of the rod 257. The sleeve 256 forms a wall 291 that defines a portion of each of the accumulators (222, 232, 242) and the scavenge reservoir 270. The variable displacement pump 230 is disposed adjacent to the scavenge reservoir 270. The main valve 250 is disposed concentrically within the pump 230.
[0123] Deploying elements of an active suspension system according to the embodiment of Figure 10 can result in a particularly compact and / or lightweight active suspension system. For example, in some embodiments, the unit can have a length of 30 cm and impart a rod with 15 cm of travel when fully extended. Additionally or alternatively, providing such a compact unit can facilitate use of the active suspension system within the spatial constraints of a vehicle and / or result in shorter flow paths for hydraulic fluid, thereby reducing pressure losses and improving efficiency.
[0124] 11 shows an enlarged view of the pump 230 and the main valve 250 mounted concentrically within the pump 230. The main valve 250 has a main spool 293 with a number of spaced apart flat lands along the length of the spool, each corresponding to a respective one of the valve switches (223, 233, 243, 273, 283). The pump 230 includes a motor rotor 297 mounted for rotation within and relative to a motor stator 299. The pump is a radial piston pump including a first row of pistons housed within piston chambers formed within the motor rotor 297 and a second row of pistons spaced from the first row of pistons along the axis of rotation of the pump. The first set of pistons are part of a first pump assembly 212a and the second row of pistons are part of a second pump assembly 212b. In use, the main valve 250 controls whether the first or second row of pistons is used, and thereby varies the flow rate of fluid output from the pump.
[0125] Thus, having a main valve and high and low displacement pumps in this manner allows the main valve to provide fluid for a relatively large number of switching states in a compact configuration. This helps make the active suspension unit compact. Additionally, the use of spool valves, particularly direct actuated valves as shown in FIG. 11, allows for rapid switching between a very large number of states. This allows the active suspension system according to this embodiment to respond more quickly to road and / or driving conditions than prior art suspension systems and / or provide additional operating modes by providing a system with different characteristics at settling time, thereby improving valve efficiency.
[0126] 12 shows a flow gallery for an active suspension system formed within casing 290, with multiple flow galleries 1200 connecting the various components mentioned above. Flow galleries 1200 are curvilinear in shape and can be constructed using additive manufacturing techniques. The curvilinear nature of the flow galleries allows for a much more compact active suspension unit.
[0127] FIG. 13 shows a cross-sectional view of a second exemplary active suspension unit, a unit suitable for use in the system of FIG. 1. The hydraulic circuits are housed within the casing 290 of the unit. Those aspects of the unit of FIG. 13 that differ from the unit of FIG. 10 are detailed below. The layout of the unit of FIG. 13 is nearly identical to that of FIG. 10, with the low volume accumulator 232, the variable accumulator 242, the high volume accumulator 222, and the scavenge reservoir 270 arranged in a line to the right of the rod 257. However, in contrast to the unit of FIG. 10, the unit of FIG. 13 is constructed in a modular manner. The low volume accumulator 232, the variable accumulator 242, the high volume accumulator 222, and the scavenge reservoir 270 are formed as stand-alone modular accumulators consisting of gas and fluid reservoirs and walls defining barriers between them. The modular accumulators are stacked in a row along the side of the sleeve 256 where the rod 257 sits. An end plate 287 (see FIG. 15) closes the unit and defines a recess 287a in which the distal end of the low volume accumulator 232 is placed. The end plate 287 includes an aperture 285 through which the rod 257 passes. A pump and control unit 296 is located adjacent the scavenge reservoir 270 at the opposite end of the unit from the end plate 287. The pump and control unit 296 includes a main valve 250 that is concentrically located within the pump 230, which itself is located within a pump manifold 298 that is formed as a single piece using additive manufacturing. FIG. 14a shows a view of the pump 230 within the pump and control unit 296. The pump manifold 298 includes a number of curvilinear flow galleries 1200, and the interior volumes of these galleries are shown in more detail in FIG. 14b. Each of the accumulators 232, 242, 222 and the scavenge reservoir extends along the suspension unit generally parallel to the longitudinal axis of the rod 257 and is positioned in fluid communication with the pump and control module 296 via one or more straight pipes 289 that connect at their proximal ends to a curved flow gallery 1200 of the pump and control module 296.FIG. 15 shows an exploded view of the unit of FIG. 13, where the modular nature of the accumulator is evident.
[0128] The use of pumps and control units in combination with modular accumulators can provide an active suspension system that is easier to manufacture. A standard pump control module can be combined with different sized modular accumulators as a plug-and-play device to produce a wide variety of hydraulic systems with different capacities. The use of a standard pump control module can reduce the number of parts that must be maintained. Furthermore, the use of additive manufacturing to produce the complex flow galleries of the pump manifold allows the fluid connections in the rest of the suspension unit to be made using straight pipes that are directly manufactured and / or kept as standard stock. Combining additive manufacturing with the use of modular parts in this way can also reduce manufacturing costs, since the relatively expensive additive manufacturing can be limited to the pumps and control units, and the rest of the suspension unit can be completed by combining standard components.
[0129] While the invention has been described and illustrated with respect to specific embodiments, those skilled in the art will recognize that the invention itself is susceptible to many different modifications not specifically described. By way of example only, a few possible modifications are set forth below.
[0130] In the embodiment described above, the hydraulic actuator 205 is coupled at one end (FIG. 1 and the upper end) to the vehicle body (see FIG. 2) and at the other end to a wheel assembly (see FIG. 2). Although the invention embodiments have been described with respect to the hydraulic actuator being oriented in this manner, it will be appreciated that the end shown in the invention embodiments coupled to the vehicle body could instead be coupled to a wheel assembly, and vice versa.
[0131] In the above embodiments, the main valve is described as a rotary direct actuation valve, but in some embodiments, it may be a linear direct actuation valve. Although embodiments of the invention have been described with respect to the use of a single main valve, it will be appreciated that different types and numbers of valves may be used. For example, multiple distinct valves may be used in place of the main valve.
[0132] In the embodiment described above, the device includes three accumulators arranged in fluid communication with the primary flow path AB, however, a fewer number of accumulators (e.g., two accumulators) or a greater number of accumulators may alternatively be used.
[0133] In the above described embodiments, the device comprises a rod with a piston head, however, it should be understood that in some embodiments of the invention, a piston head is not required and instead a rod without a piston head may be used. This is possible since the device does not require a pressure difference on either side of the piston head (between the upper and lower chambers of the hydraulic actuator) to function.
[0134] In the above embodiment, only the large volume actuator 222 is shown as having a switching valve 223 with a proportional or variable flow setting, however, it should be understood that any switching valve of any accumulator may have a proportional or variable flow setting as well and / or instead.
[0135] In the embodiments described above, a single variable displacement pump having two stages is used, however, two or more fixed displacement pumps may be used, or a variable displacement pump that is not a dual displacement pump may be used as well and / or instead.
[0136] Although the embodiments described above include an oil scavenge system, the oil scavenge system may be absent in other embodiments.
[0137] In the embodiment described above, the oil scavenge system is shown as having two seals (281, 282), however, in other embodiments, the oil scavenge system may have only one seal.
[0138] Although the above-described embodiments describe an active suspension system, it will be appreciated that the teachings disclosed herein are equally applicable to suspension systems that are not active in this sense and which only control the stiffness or damping characteristics of the suspension system.
[0139] In the above description, entities or elements having known obvious or foreseeable equivalents are described, and such equivalents are incorporated herein as if separately described. Reference should be made to the claims to determine the scope of the invention, which should be understood to encompass any such equivalents. The reader will understand that entities or features of the invention described as preferred, advantageous, convenient, and the like are optional and do not limit the scope of the independent claims. Furthermore, it should be understood that such optional entities or features that may be advantageous in some embodiments of the invention may not be desirable and therefore may not be present in other embodiments.
Claims
1. A suspension device for an automobile vehicle, comprising: a hydraulic actuator for mounting between a wheel assembly and a body of the motor vehicle; and a hydraulic system configured to provide a fluid supply to the hydraulic actuator, the hydraulic system being configured to supply fluid to the hydraulic actuator at a total pressure greater than 70 bar during normal operation; A suspension device comprising:
2. 2. The suspension system of claim 1, wherein the suspension system is an active suspension system.
3. 2. The suspension arrangement of claim 1, wherein the hydraulic system comprises a plurality of gas accumulators, a common flow passage connecting the hydraulic system to the hydraulic actuator, and one or more valves, each gas accumulator connected to the common flow passage via an associated valve such that, in use, pressure changes in the common flow passage are transferred to pressure in the accumulator when the associated valve is open, and the hydraulic system is arranged to switch between a first configuration in which the valve associated with a first gas accumulator is in an open position and a valve associated with a different second gas accumulator is in a closed position, and a second configuration in which the valve associated with the first gas accumulator is in a closed position and / or the valve associated with the second gas accumulator is in an open position, and optionally the plurality of gas accumulators includes a third accumulator, and the hydraulic system is arranged to switch between further configurations by opening and closing a valve associated with the third accumulator.
4. 4. The suspension system of claim 3, wherein the system is configured to transmit changes in fluid pressure between the hydraulic actuators, the common flow path, and the gas accumulator to have a first stiffness when the hydraulic system is in the first configuration and a second stiffness when the hydraulic system is in the second configuration.
5. 4. The suspension system of claim 3, wherein the third accumulator is a variable accumulator, and optionally, the variable accumulator is connected to a pump in a hydraulic circuit, and the hydraulic system is configured to allow bidirectional fluid flow between the pump and the variable accumulator.
6. 4. The suspension system of claim 3, wherein a single valve is associated with each of the first, second and / or third accumulators, and optionally the single valve includes a spool mounted for movement relative to a sleeve, and the position of the spool relative to the sleeve determines, for each of the first and second (and optionally third) accumulators, whether the accumulator is in fluid communication with the common flow path.
7. 4. The suspension system of claim 3, further comprising a proportional valve disposed in the flow path between at least one of the accumulators and the common flow path, the system being configured such that varying a non-zero position of the proportional valve varies a damping ratio of the hydraulic actuator.
8. 4. The suspension device according to claim 3, wherein the hydraulic actuator comprises: a piston including a rod and a piston head attached to the rod; and a piston housing, the piston being mounted for movement within a cavity defined within the piston housing; having a first side and a second side of the piston head dividing the cavity into a first chamber and a second chamber, and optionally an effective surface area of the first side of the piston head is greater than an effective surface area of the second side of the piston head.
9. 8. The suspension device of claim 7, wherein the first chamber is connected to the common flow path via at least one first piston flow path and the second chamber is connected to the common flow path via at least one second piston flow path, whereby a pressure change in the common flow path is transmitted to both the first and second chambers, and optionally a pressure increase in the common flow path results in a pressure increase in both the first and second chambers.
10. 10. The suspension system of claim 9, further comprising a variable resistance valve disposed in either (i) the or each of the first piston flow passages or (ii) the or each of the at least one second piston flow passage.
11. 9. The suspension arrangement of claim 8, wherein a first portion of the rod is located within the first or second chamber and a second portion of the rod is located outside the piston housing, the piston housing including a sealing area, the sealing area being an area of the housing between the first or second chamber and an exterior of the housing from which the rod projects, at least one seal located in the sealing area and forming a seal between the piston housing and the rod, and at least one oil drain port, the at least one seal located in the sealing area and between the at least one seal and the first or second piston chamber, wherein in use fluid entering the sealing area from a piston chamber can exit the sealing area via the at least one oil drain port, and optionally further comprising an oil drain accumulator connected to the at least one oil drain port and to the common flow path, whereby fluid can flow from the oil drain port to the common flow path via the oil drain accumulator.
12. A suspension device for an automobile vehicle, comprising: a hydraulic actuator for mounting between the wheel assembly and the body of the motor vehicle; and a hydraulic system configured to supply fluid to the hydraulic actuator and thereby control the length, force, stiffness and / or damping characteristics of the hydraulic actuator; Equipped with the suspension system includes a common flow path connecting the hydraulic system to the hydraulic actuators; The hydraulic system includes a first gas accumulator and a second gas accumulator, each accumulator connected to the common flow path via an associated valve, such that, in use, when the associated valve is open, fluid can flow from each accumulator via the common flow path to the hydraulic actuator, and the hydraulic system operates during the following modes of operation: a first mode of operation in which the valve is configured such that fluid can flow between the first gas accumulator and the common flow path and fluid cannot flow between the second gas accumulator and the common flow path; a second mode of operation in which the valve is configured to allow fluid to flow between the first gas accumulator and the common flow path and to allow fluid to flow between the second gas accumulator and the common flow path; The suspension device is configured to switch between.
13. 1. A suspension system for a motor vehicle comprising a hydraulic actuator for mounting between a wheel assembly and a body of the motor vehicle, the hydraulic actuator comprising: A piston housing and a piston mounted for movement within a cavity defined in the piston housing, the piston including a rod and a piston head attached to the rod, first and second sides of the piston head dividing the cavity into a first chamber and a second chamber; and the piston housing further comprises: a sealing region between the first chamber or the second chamber and the exterior of the housing through which the rod passes; at least one seal disposed in the sealing region and configured to form a seal between the piston housing and the rod; and at least one oil drain port disposed in the sealing region between the at least one seal and the first chamber or the second chamber, wherein in use fluid entering the sealing region from the chamber can exit the sealing region via the oil drain port; A suspension device comprising:
14. A suspension unit comprising a suspension arrangement according to any one of claims 1 to 13 for mounting between a wheel assembly and a body of a motor vehicle, wherein the hydraulic system is housed within a housing of the unit and at least a part of the hydraulic actuator, for example a rod of the hydraulic actuator, is partially located within the housing of the unit.
15. 15. The suspension unit of claim 14, wherein the hydraulic actuator is mounted for axial movement within the housing and has a rod extending parallel to a longitudinal axis of the unit, and the hydraulic system includes a first gas accumulator, a second gas accumulator, and a third gas accumulator, the accumulators being arranged in a line along a portion of the length of the unit.
16. 1. A method of controlling relative movement between a wheel assembly and a body of a motor vehicle using a suspension arrangement, the suspension arrangement comprising: a hydraulic actuator connecting between the wheel assembly and the body of the motor vehicle; and a hydraulic system configured to provide a fluid supply to the hydraulic actuator, the hydraulic system configured to supply fluid to the hydraulic actuator at a total pressure equal to or greater than 7 MPa (70 bar) for a first period of time.
17. 17. The method of claim 16, wherein the hydraulic system includes a first accumulator and a second accumulator connected to a shared flow path, the first accumulator containing a first volume of gas at a reference pressure and the second accumulator containing a second volume of gas at a different reference pressure, and during the first period of time, flow of fluid between one or both of the first and second accumulators and the common flow path is stopped or started, thereby varying the amount of compressible gas exposed to forces in the common flow path and therefore varying the stiffness of the hydraulic actuator.
18. 18. A method according to claim 17, wherein the method comprises varying, during a sub-period, a non-zero position of a variable resistance valve disposed in a piston flow passage connecting the common flow passage to a piston chamber to vary a damping rate of the hydraulic actuator, and optionally the first period comprises a number of sub-periods, one sub-period ending and another sub-period beginning when fluid flow to the one or more accumulators is stopped or started, and the method comprises varying a zero position of the valve during a sub-period, and / or optionally, during a sub-period of the first period, operating a pump to vary a total pressure in the common flow passage to vary a length of the hydraulic actuator, the first period comprises a number of sub-periods, one sub-period ending and another sub-period beginning when fluid flow to at least one accumulator is stopped or started.
19. 19. The method of claim 18, wherein the hydraulic actuator includes a piston having a first piston chamber on one side of a piston head and a second piston chamber on the other side of the piston head, a first side of the piston head on the side of the first piston chamber having an effective surface area greater than an effective surface area of a second side of the piston head on the side of the second piston chamber, the first and second chambers being connected to the shared passage by different piston passages, a pressure increase in the common passage causes a pressure increase in the first and second chambers, and a pressure increase in the effective surface area of the first and second chambers being greater than an effective surface area of the second side of the piston head on the side of the first piston chamber, the first and second chambers being connected to the shared passage by different piston passages, a pressure reduction in the common path causes a pressure reduction in the first and second chambers, and a difference in effective surface area results in a net force on the piston head causing the piston head to move away from the second chamber and forcing fluid to flow out of the first chamber and forcing fluid to flow into the second chamber from the common path; and a pressure reduction in the common path causes a pressure reduction in the first and second chambers, and a difference in effective surface area results in a net force on the piston head causing the piston head to move away from the second chamber and forcing fluid to flow out of the first chamber and forcing fluid to flow into the second chamber from the common path.
20. 19. The method of claim 17 or claim 18, wherein the pump exchanges fluid with the variable accumulator while the pump operates to increase or decrease the total pressure in the common path, and / or the pump exchanges fluid with a scavenge accumulator while the pump operates to increase or decrease the total pressure in the common path.
21. 19. The method of claim 17 or 18, wherein a tire is mounted on the wheel assembly and a scavenge accumulator is connected to a common path, the common path is in fluid communication with the hydraulic actuator, and during the first period of time, fluid flow between the scavenge accumulator and the common path is started, thereby removing high pressure fluid from the hydraulic actuator such that a length of the hydraulic actuator decreases, causing the tire to retract and the wheel assembly and the vehicle body to accelerate towards each other, and the retraction of the tire causes an acceleration of the wheel assembly towards the vehicle body to be greater than an acceleration of the vehicle body towards the wheel assembly.
22. A motor vehicle equipped with a suspension device according to any one of claims 1 to 13, the motor vehicle including a plurality of wheels connected to a chassis and a plurality of said suspension devices or suspension units, one associated with each wheel.