This invention relates to a hydraulic propulsion system for four-wheel-drive land vehicles, and specifically to the means used in the application of force to the shafts of one or more transmission systems to move or propel the vehicle to which the system of the invention is applied.
The purpose of the invention is to save fuel, which involves a significant reduction of polluting gases (CO2, CO, SO2, etc.), for exerting a force that can move a vehicle, by reducing the revolutions of the main motor or engine.
Under a conventional system for propelling vehicles, a motor is supplied with fuel. When the speed of the vehicle is increased via a gearbox, the revolutions of the motor also increase and, by extension, so too does fuel consumption.
The means used to propel the vehicle are therefore as follows: fuel-gearbox-transmission-wheels.
The necessary force will not be exerted and the vehicle will not therefore be propelled unless the main motor operates at a high rpm, which requires significant fuel consumption.
In turn, the combustion of this fuel produces a large amount of polluting gases, which is obviously undesirable.
As part of the propulsion system referenced under the invention, the issue related to consumption and pollution is resolved on the basis of a simple and effective solution.
Specifically, the system referenced under the invention involves a hydraulic variable-displacement piston pump that is associated with the main motor and produces pressure via a hydraulic circuit to move one or more hydraulic variable-displacement motors associated with the corresponding differential.
Consequently, there is no need for a gearbox as the hydraulic pump exploits the kinetic energy of the oil flow to move part of the liquid which will, in turn, drive the hydraulic motors which convert hydraulic pressure into angular displacement, i.e. rotation or revolution which, by virtue of being connected to the transmission system, will rotate or turn the vehicle propulsion means.
This system will therefore require less force, i.e. lower fuel consumption, to propel the vehicle than in any conventional propulsion system, as the hydraulic motor generates at least twice as many revolutions as the main motor or engine and as the hydraulic pump; moreover, despite the hydraulic motor increasing revolutions by more than double, it does not produce any pollution.
The system described above can be applied to any kind of vehicle, whether it is powered by combustion, electricity or any other means.
Finally, as the system incorporates a hydraulic variable-displacement piston pump, the flow applied to the pump may be variable which means that the flow applied to the hydraulic variable-displacement piston motor(s) may vary to allow the number of transmission revolutions to be adjusted for some of the main motor revolutions. This is not possible for traditional systems whose transmission characteristically includes a gearbox. As a result, consumption is able to be reduced by approximately 60%. However, when the vehicle travels a long distance at a constant speed, there is no reason for the hydraulic pump to operate at maximum power and the main motor is reduced to such an extent that the hydraulic motor(s), by virtue of the hydraulic pump, are able to maintain the required speed, with consumption being further reduced by approximately 20%.
Consequently, gas emissions are reduced and a modern vehicle that meets all regulatory gas emissions requirements is produced.
To supplement the description below and with a view to further clarifying the characteristics of the invention, in accordance with a standard model used for preferred embodiment purposes, a set of drawings is attached as an integral part of this description. The drawings particularly, but not exclusively, represent as follows:
The references classified under the relevant nomenclature are listed below in a bid to explain more fully the components of the system to which the invention relates and the components of the vehicle to which the system is applied:
According to the corresponding nomenclature,
In turn, the hydraulic circuit (6) includes a radiator (15) which cools the hydraulic liquid circulating therein and a pressure control gauge (20).
Moreover, the circuit is assisted by an electric pump (13) whose purpose is to maintain the loaded circuit such that there is no shortage of pressure in the hydraulic pump (5).
The acceleration key (14) is activated via the acceleration pedal (14A), and exerts pressure, via the circuit (6), on the front and rear hydraulic motors (8), such that if the key (14) does not open fully, the remaining pressure will return to the hydraulic pump (5)
dividing the circuit (6) in two, while the rear (29) and front (30) shut-off solenoid valves are open and the rear (29A) and front (30A) shut-off solenoid valves are closed.
set up in the control panel of the vehicle, such that, in pushing the switch, the front disconnecting solenoid valves (30) are instructed to close and the front disconnecting solenoid valve (30A) opens to form a closed circuit, regardless of whether the vehicle is in forward or reverse movement. The switch must be pressed again to re-establish connection.
Finally,
In accordance with the description of the aforementioned figures, the system referenced under the invention is designed to be applied to any kind of vehicle, such as, for instance, a passenger car which includes a main engine (1) supplied by a fuel tank, with a manual or automatic accelerator (2), circuit (6), braking pump and pedal (3), output power shaft (4), the joint purpose of which is to rotate the wheels (11) via the corresponding differential (9) to allow the vehicle to move.
On the basis of these characteristics, the novelty of the invention is that a hydraulic pump (5) is inserted between the main engine (1) and the differentials (9) and this hydraulic pump (5), which is used to activate hydraulic motors (8), involves variable-displacement pistons and exploits the kinetic energy of the oil flow to move part of the liquid to a higher level and in turn to move the hydraulic motors (8) connected to the corresponding differentials (9) to rotate the corresponding shaft (10) of the wheels (11), whereby the vehicle is propelled, with greater power and safety being obtained in a 4x4 vehicle.
This system will require less force in the main motor (1) and therefore less fuel to propel the vehicle, as the hydraulic motors (8), which represent the novelty of the system, do not pollute and generate at least twice as many revolutions as the main motor (1) and the hydraulic pump (5).
The following example sets out the benefits of the system referenced under the invention in relation to a conventional system.
Specifically, a vehicle measuring a length of approximately 4.5 metres, weighing a total of 1,500 kg, characterised by its 130 KW turbo-diesel engine, operating at 2,500 rpm and at a speed of 120 km/h, consumes 7.5 litres/hour for a conventional propulsion system.
However, where the system referenced under the invention is applied to the same vehicle, it travels at a faster speed, such that when it operates at 1,500 rpm, the main motor (1) causes the hydraulic variable-displacement piston pump (5), in this case 105 cc, to reach its maximum power, and the hydraulic variable-displacement motor (8) of 75 cc operates at up to 3,800 rpm, thereby generating 200 KW via the hydraulic pump (5) and reaching a speed of more than 160 km/hour, with a consumption of three litres/hour, i.e. a saving in the region of 60%.
There are obvious advantages to hydraulic propulsion when driving at a constant speed where the motor is able to operate at a lower rpm, as the pump does not require the whole power of the motor, and thereby enables the main motor to reduce consumption by 20%.
The aforementioned hydraulic propulsion system for four-wheel-drive vehicles enables an economic, safe, robust and easily maintainable hydraulic drive, without the need for any special infrastructure, and may be applied to any type of transport.
In short, in accordance with the example indicated above, it is discernible that, by using a single main motor (1) in conjunction with the system under the invention, a considerable amount of fuel can be saved and that this main motor requires less maintenance, as it operates at a low rpm, reduces its gas emissions and pollutes to a much lesser extent.
As a result, the proposed hydraulic propulsion system can be integrated into any newly-manufactured vehicle with a view to making its more efficient, economical and environmentally friendly.
Number | Date | Country | Kind |
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U201831064 | Apr 2018 | ES | national |
Filing Document | Filing Date | Country | Kind |
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PCT/ES2019/070218 | 4/1/2019 | WO | 00 |