This application claims the priority of European Patent Application, Serial No. 18157884.0, filed Feb. 21, 2018, pursuant to 35 U.S.C. 119(a)-(d), the disclosure of which is incorporated herein by reference in its entirety as if fully set forth herein.
The present invention relates to an oil conveying and storage device for reducing an oil level in a gearbox oil sump during operation of the gearbox. The present invention further relates to a gearbox having an oil sump and an oil conveying and storage device of this kind.
The following discussion of related art is provided to assist the reader in understanding the advantages of the invention, and is not to be construed as an admission that this related art is prior art to this invention.
Different designs of oil-lubricated gearboxes are known from the prior art. They normally include in the lower part of the gearbox casing an oil sump in which oil collects when the gearbox is idle. The oil level in the oil sump is usually selected such that, in idle state, even the smallest gears of the gearbox dip into the oil sump in order to ensure emergency running properties. During operation, due to the movement of the gears in the oil, this results in churning and splashing losses. These differ depending on the direction of rotation and adversely affect the energy balance and thermal behavior, which is basically undesirable.
It would therefore be desirable and advantageous to address these problems and to obviate other prior art shortcomings.
According to one aspect of the present invention, an oil conveying and storage device for reducing an oil level in an oil sump of a gearbox during operation of the gearbox includes a first piston mounted for executing a forward and backward movement, an intake chamber having a volume which varies in response to movement of the first piston, a work cylinder, a thermal transfer wax received in the work cylinder, and a second piston received in the work cylinder and connected to the first piston, the second piston being moved in a temperature-dependent manner via the thermal transfer wax such that the volume of the intake chamber is increased as the temperature rises.
According to another aspect of the present invention, a gearbox includes a gearbox casing, an oil sump accommodated inside the gearbox casing, and an oil conveying and storage device for reducing an oil level in the oil sump during operation of the gearbox, the oil conveying and storage device including a first piston mounted for executing a forward and backward movement, an intake chamber having a volume which varies in response to the forward and backward movement of the first piston, an oil line connected to the intake chamber, a work cylinder, a thermal transfer wax received in the work cylinder, and a second piston received in the work cylinder and connected to the first piston, said second piston being moved in a temperature-dependent manner via the thermal transfer wax such that the volume of the intake chamber is increased as the temperature rises, wherein the oil line of the oil conveying and storage device is configured to dip into the oil sump, and wherein the work cylinder is disposed at a position in which the thermal transfer wax is heated by power dissipated during operation of the gearbox.
When arranging an oil conveying and storage device according to the present invention on a gearbox fitted with an oil sump in such a way that an oil line of the oil conveying and storage device dips into the oil sump and the thermal transfer wax is heated by the power dissipated during operation of the gearbox, oil is automatically conveyed from the oil sump into the intake chamber during initial operation of the gearbox as the temperature increases, thereby minimizing churning and splashing losses of the gear box. At the same time, it is also ensured that the level in the oil sump is not reduced until the gearbox has heated up. Reduction of the oil level in the oil sump while the gearbox oil is cold is eliminated. Conversely, oil delivered to the intake chamber is automatically returned to the oil sump as soon as the gearbox cools down due to the thermal transfer wax contracting accordingly, causing oil to be forced out of the intake chamber.
An important advantage of an oil conveying and storage device according to the present invention is that it can operate autonomously without an additional energy source. In addition, orientations of the intake chamber and work cylinder are variable. Thus, the intake chamber and the work cylinder can be mounted both horizontally and vertically, thereby permitting a high degree of flexibility for installing an oil conveying and storage device according to the invention. This is particularly advantageous when an oil conveying and storage device according to the present invention is to be retrofitted to an existing gearbox.
According to another advantageous feature of the present invention, a piston rod can connect the second piston to the first piston.
According to another advantageous feature of the present invention, a spring element can be provided to maintain the first piston under tension in a predetermined direction, in particular in the direction of retraction of the second piston, when in the event the thermal transfer wax cools down, the tractive force of the work cylinder is insufficient to drain the oil present in the intake chamber.
According to another advantageous feature of the present invention, provision can be made for an oil line connected to the intake chamber, a first non-return valve disposed in the oil line, a separate oil drain line connected to the intake chamber, and a second non-return valve disposed in the separate oil drain line. Accordingly, as it is drained from the intake chamber, oil can escape via the oil drain line via which, for example, predetermined components of the gearbox can be supplied with oil.
According to another advantageous feature of the present invention, the oil conveying and storage device can be disposed above the oil sump. This ensures proper filling of the intake chamber as the temperature of the gearbox rises.
According to another advantageous feature of the present invention, the oil conveying and storage device can be disposed inside the gearbox casing. This is space-saving and the gearbox temperature can be transferred directly to the thermal transfer wax, thereby ensuring a good response characteristic of the oil conveying and storage device.
Other features and advantages of the present invention will be more readily apparent upon reading the following description of currently preferred exemplified embodiments of the invention with reference to the accompanying drawing, in which:
Throughout all the figures, same or corresponding elements may generally be indicated by same reference numerals. These depicted embodiments are to be understood as illustrative of the invention and not as limiting in any way. It should also be understood that the figures are not necessarily to scale and that the embodiments may be illustrated by graphic symbols, phantom lines, diagrammatic representations and fragmentary views. In certain instances, details which are not necessary for an understanding of the present invention or which render other details difficult to perceive may have been omitted.
Turning now to the drawing, and in particular to
When the gearbox 1 is taken out of operation again, the temperature in the interior of the gearbox casing 2 drops to ambient temperature again. The thermal transfer wax 12 contracts accordingly, so that the pistons 8 and 9 are returned to the position shown in
An important advantage of the gearbox 1 described above is that the level in the oil sump 3 is varied in a temperature-dependent manner. The level in the oil sump 3 is only reduced when the temperature inside the gearbox casing 2 increases. This eliminates the possibility of the level being reduced with the gearbox in a cold state. Other advantages conferred by the oil conveying and storage device 4 described above are that it can be operated autonomously without any additional energy source and that the positioning and orientation of the oil conveying and storage device 4 inside the gearbox casing 2 are freely selectable. The oil conveying and storage device 4 merely has to be disposed above the oil sump 3. Accordingly, installation of the oil conveying and storage device 4 inside the gearbox casing 2 is very simple, inexpensive and unproblematic. This also applies to the case of retrofitting the oil conveying and storage device 4 to an existing gearbox 1.
When the thermal transfer wax 12 contained in the work cylinder 10 expands due to a rise in temperature inside the gearbox casing 2 of the gearbox 30, the pistons 8 and 9 interconnected via the piston rod 11 are moved from the position shown in
While the invention has been illustrated and described in connection with currently preferred embodiments shown and described in detail, it is not intended to be limited to the details shown since various modifications and structural changes may be made without departing in any way from the spirit and scope of the present invention. The embodiments were chosen and described in order to explain the principles of the invention and practical application to thereby enable a person skilled in the art to best utilize the invention and various embodiments with various modifications as are suited to the particular use contemplated. Thus, for example, the gearbox 30 shown in
What is claimed as new and desired to be protected by Letters Patent is set forth in the appended claims and includes equivalents of the elements recited therein:
Number | Date | Country | Kind |
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18157884.0 | Feb 2018 | EP | regional |