The invention relates to a gear train with two or more gearwheels which respectively mesh with one another. Further elements of such a gear train are shafts, bearings and a housing. Such gear trains are liquid-lubricated and generally lubricated with oil
Considerable quantities of the medium encompassing the gearwheels will be moved and revolved in a turbulent fashion in the gear housing especially in the case of high-speed gears in turbo or railway gears. This usually concerns a two-phase mixture consisting of air and oil with a considerably higher air volume fraction.
In order to mainly cool the tooth contacts and to also maintain an oil film/lubrication film between the contact partners, the gearwheels are provided with an oil injection.
Depending on the oil injection, this leads both to a pressure difference between the tooth engagement and tooth exit without any noticeable influence on the ventilation losses, and to a conveying effect on the ambient medium depending on the circumferential speed on the gearing.
The aforementioned revolving of the medium in the conventional gears leads to a considerable energy loss by ventilation, i.e. ventilation losses.
Gear pumps usually consist of two mutually meshing gearwheels with the same number of teeth which comprise an extremely tightly contacting casing wall about the gearwheels with an inlet in the tooth exit and an outlet in the tooth entrance. As a result of the tightly contacting casing wall, a differential pressure builds up between the tooth exit and the tooth entrance. They are used for the purpose of conveying a fluid medium from the inlet to the outlet.
In comparison with gear pumps, conventional high-speed spur gears are provided with relatively large bearing plays for the transmission of high power and with long tolerance chains as a result of the large number of components. That is why it is not possible to a use a conventional high-speed spur gear effectively as a gear pump, especially for conveying gaseous media, without any special sealing measures because too large gaps would occur.
It is known to aspirate a gear by applying a negative pressure to the gear housing. Special efforts are necessary such as pumps, additional tubing, etc. This system is expensive and susceptible to malfunctions. It is also known that respective safeguarding measures need to be taken when insufficient negative pressure can be generated in the gear housing.
The invention is based on the object of providing a gear in which the ventilation losses are minimized or eliminated.
This object is achieved by the features of claim 1.
Such a gear has the following features:
This leads to the following advantages:
The casing wall can also be cooled via a medium such as water by cooling channels in a water circuit. The required quantity of oil for cooling the gearwheels can be reduced even further and the ventilation losses can be reduced.
The invention will be explained in closer detail by reference to the drawings, which show in detail:
The gear shown in
The two gearwheels 1 and 2 mesh with one another and form an engagement region 4 of the teeth. The engagement region comprises an entrance 4.1 and an exit 4.2. The engagement region 4 is covered by seals 5.
When the two gearwheels revolve as indicated by the curved arrows, a negative pressure is formed in the region of the exit 4.2 and an excess pressure in the region of the entrance 4.1. The seal or seals 5 will seal the overpressure space in a low-friction manner. The sealing can occur axially or radially, e.g. by non-contact labyrinth seals (see
The casing wall 6 comprises two partial walls 6.1 and 6.2. Partial wall 6.1 forms a negative-pressure space 8 in the exit region of the meshing.
An oil nozzle 10 is provided in the negative-pressure space 8 and a pressure-relief valve 11 on the overpressure space 9. The oil from the oil nozzle 10 is used for lubricating and cooling the system. The negative pressure in the negative-pressure space 8 has a positive effect on the oil conveyance by the oil nozzle 10.
The pressure-relief valve 11 in the overpressure space 9 will open upon exceeding a specific differential pressure between the overpressure space 9 and the remaining interior space which is enclosed by the housing 3. The sealing leakages, the oil supply, the pressure-relief valve flow and the pressure difference are adjusted to each other in such a way that the oil quantity injected from the oil nozzle 10 will flow through the pressure-relief valve 11 into the interior space of the gear and will leave the interior space of the gear through the oil drain 3.1, in order to be cooled, filtered and supplied again to the oil nozzle 10 in the circuit.
The gear according to
The gear according to
In the gear according to
The gear according to
The planet wheel 1 and the pinion 2 are associated with a casing wall 6, which in the present case consists of two partial walls 6.1 and 6.2.
The oil nozzle 10 as shown in
Number | Date | Country | Kind |
---|---|---|---|
10 2010 036 141.0 | Sep 2010 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP11/03731 | 7/26/2011 | WO | 00 | 5/24/2013 |