A DEVICE FOR REDUCING THE RESISTANCE OF AN OBJECT MOVING IN A FLUID MEDIUM

RU2026111736APending Publication Date: 2026-07-01РОДРИГЕС ЛУИС АЛИРИО +2
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Patent Information

Authority / Receiving Office
RU · RU
Patent Type
Applications
Current Assignee / Owner
РОДРИГЕС ЛУИС АЛИРИО
Filing Date
2023-12-20
Publication Date
2026-07-01
Patent Text Reader

Abstract

The present invention relates to a device for reducing the drag of an object moving inside a fluid, the device comprising a conduit that runs internally through the object from a front end to a rear end thereof. It may have a constant diameter throughout the same or increase from the inlet to the outlet in a divergent manner. It may have at least one straight or spiral-shaped groove. The conduit may branch toward two outlets that are arranged laterally or vertically. The cross-section may be circular, ovoid, polyhedral, etc. The inlet may have a gate closure system or similar. It reduces the parasitic drag of the object. It is mainly applicable to aircraft.
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Description

[0001] DEVICE FOR REDUCING THE DRAG OF AN OBJECT MOVING WITHIN A FLUID

[0002] FIELD OF INVENTION

[0003] The present invention relates to the field of object design, particularly objects that move within fluids, in order to minimize the drag caused by friction of the fluid against the exterior surfaces of the object.

[0004] BACKGROUND OF THE INVENTION

[0005] Drag is a force caused by friction between a fluid and a surface. This friction causes distortions in the ideally laminar flow that should exist between the surface of an object moving within the fluid and the surrounding fluid. These distortions exert a force that opposes the object's motion within the fluid, requiring greater energy expenditure to keep the object moving.

[0006] Distortions form low-pressure vortices, where the fluid moving within the vortex exerts a force on the moving object that is opposite to the object's direction of motion. Distortions are caused by imperfections or features located on the object's surface, which ideally should be completely smooth to prevent the formation of these distortions.

[0007] The drag caused by these distortions is known as paroxysmal drag, and its incidence is directly proportional to the object's speed within the fluid. In denser fluids, distortions form more regularly as the object's speed increases, reaching a point where they begin to cause cavitation, strongly impacting the object's displacement within the fluid.

[0008] In less dense fluids, cavitation does not occur, but the distortions gradually grow in frequency and size as the speed of the object increases, exponentially increasing the energy consumption needed to keep the object moving at the desired speed.

[0009] In order to reduce parasitic drag, objects moving through a fluid are designed to minimize the number of surface elements that can affect the laminar motion of the fluid over the object's surface, particularly at high speeds. However, it is not possible to eliminate it completely, and parasitic drag is a constant problem in the industry. In the state of the art, we find various documents that seek to reduce the drag generated by air movement over the surfaces of an aircraft. Thus, for example, United States Patent No. US 3,776,489 teaches a structure for eliminating sonic booms developed by the main substructures of a supersonic aircraft according to the selective positioning of the aircraft's exhaust gases, air inlets and outlets, and the ducts between the inlets and outlets.A supersonic aircraft utilizing the structure is revealed in which the main substructures of the aircraft incorporate the positioning of the exhaust, inlets, outlets, and ducts between the inlets and outlets.

[0010] On the other hand, U.S. Patent No. 6,612,524 teaches a front body for an aeronautical vehicle. The front body includes an exterior wall having a first half and a second half. The first half has a first porous section and the second half has a second porous section. The first half and second half also have a first exterior side experiencing a first fluidic pressure and a second exterior side experiencing a second fluidic pressure, respectively. A hollow internal cavity is fluidly coupled to the first exterior side and the second exterior side and allows fluid passage between the first exterior side and the second exterior side through the first porous section, the internal cavity, and the second porous section. The exterior wall equalizes the first fluidic pressure with the second fluidic pressure. Additional front bodies and methods of making the same are also provided.

[0011] Finally, patent application US 2010 / 0206038 teaches a method of manufacturing a surface that will reduce fluid flow resistance over exposed surfaces of aerodynamic or hydrodynamic structures. The surface will define a plurality of dimples. The dimples may not be aligned. Adjacent dimples may not have the same diameter.

[0012] However, the presence of parasitic drag is a constant problem in industry, for any object that moves within a fluid, as it increases energy consumption and reduces the distance it can travel.

[0013] BRIEF DESCRIPTION OF THE FIGURES

[0014] Figure 1. Corresponds to a perspective view of a first embodiment of a device of the present invention, arranged in an aircraft.

[0015] Figure 2 shows a top view of a first embodiment of a device of the present invention, arranged in an aircraft. Figure 3 shows a perspective view of a second embodiment of a device according to the present invention.

[0016] Figure 4. Corresponds to a top view of a second embodiment of a device of the present invention, arranged in an aircraft.

[0017] Figure 5. Corresponds to a view of different types of duct configurations according to different embodiments of the present invention.

[0018] Figure 6. Corresponds to a view of a device for closing the entrance of a duct according to an embodiment of the present invention.

[0019] DESCRIPTION OF THE INVENTION

[0020] A detailed description of the subject matter of the present invention will now be provided. For the purposes of this description, the following definitions are provided:

[0021] A "fluid" refers to any material capable of behaving as such, whether in liquid, gaseous, or both forms. When the present invention refers to an "object," it refers to a land vehicle, a projectile, an aircraft, a rocket, a boat, a submarine, a torpedo, or any other object whose shape is designed to move efficiently within a fluid.

[0022] It is an object of the present invention to provide a device for minimizing parasitic drag caused by disturbances in the flow of a fluid over the surface of an object moving therein.

[0023] It is a second objective of the present invention to provide a device that improves the displacement of an object through a fluid.

[0024] A third objective of the present invention is to reduce the shock caused when an object moving within a fluid exceeds the speed of sound in said fluid.

[0025] These and other objectives will become apparent to the average technician skilled in the art in light of the teachings of the present description.

[0026] According to one embodiment of the present invention, the device for reducing drag caused by the displacement of an object within a fluid comprises a duct running through the interior of the object from the front end to the rear end thereof. Said duct may have a circular, ovoid, polyhedral cross-section, or a combination thereof. Said duct has an inlet end located at the front of the object and an outlet end located at the rear of the object.

[0027] As shown in Fig. 1, the duct according to the present invention has its inlet end located at the tip of the nose of the object, which for this example is an aircraft, and its outlet end at a point on the rear of the object that is directly opposite the inlet end.

[0028] In an alternative embodiment, shown in Fig. 3, the duct branches approximately at between the inlet and up to approximately % L of the object and the outlets are located at a point located between % L and !4 L of the branching point, where L is the total length of the object. Said outlets can be located on the sides of the object, at the same height as the inlet of the duct, or at a point that is above or below an imaginary plane that horizontally bisects the inlet of the duct, where the outlet is located between 2R and 5R above or below said plane, where R is the radius of the duct outlet and the distance is measured from the plane to the closest point of the outlet to said plane.

[0029] The duct according to the present invention has a diameter (D) between 0.5% and 5% of the total diameter (DT) of the object's body. The diameter (D) of the duct must be large enough to prevent the Venturi effect, which would cause the fluid, at the object's maximum displacement, to be unable to enter the tube, thus nullifying its efficiency.

[0030] In one embodiment, the duct's internal surfaces are completely smooth. A smooth surface is one with a Reynolds number less than 2300, low enough to ensure constant laminar flow along the entire duct at the speed at which the object is traveling.

[0031] In an alternative embodiment of the present invention, the duct comprises at least one internal groove which has a spiral pattern, or is completely straight. In one embodiment, the internal groove has a clockwise rotational direction; in another embodiment, the spiral rotates counterclockwise. The groove has a width (A) of no more than 3 mm and a depth of no more than 1 mm. The spiral groove runs around the internal perimeter of the duct once every Vs of L. When the duct comprises more than one groove, they are parallel to each other, separated by between 1.5A and 3A from each other, where the separation distance is measured from a first edge of a groove to the edge of the adjacent one closest to said first edge.

[0032] In one embodiment, shown in Figs. 3 and 4, the object comprises at least two ducts that run parallel inside the object, along its sides. In one embodiment, shown in Fig. 5, the duct has a circular inlet and an oval, polygonal, or rhombohedral outlet, which allows the fluid flow to be redirected over the surface of the object's body to ensure a laminar flow and a more homogeneous detachment of the fluid from the object's body.

[0033] In one embodiment, shown in Fig. 5, the duct inlet diameter is between 5% and 15% smaller than the duct outlet diameter, which allows for thermal expansion of the fluid within the duct, preventing the formation of excessively turbulent flow within the duct, which can ultimately reduce the fluid's ability to flow through the duct. In such an embodiment, the outlet diameter is no more than 20% larger than the inlet diameter.

[0034] In one embodiment, shown in Fig. 6, the duct has an access closure system at the entrance, which may be a gate, a shutter, a valve, or a similar element known in the prior art. Said closure system serves to prevent the entry of foreign elements into the duct when the object moves through a region where there are a large number of such elements. These elements may include things such as, for example, but not limited to, plant debris, garbage, birds, fish, etc.

[0035] The implementation of a pipeline according to the modalities described above and those claimed in the attached claim chapter has the advantage of reducing the natural resistance of the object to passing through the fluid, caused by parasitic drag and other forms of drag. This reduction in resistance also achieves the advantageous technical effect of reducing the energy consumption required by the object to move through the fluid, which results in savings in the fuel needed to generate said energy.

[0036] Although a description of some of the embodiments of the invention has been made so far, it is not intended to be limiting. It will be evident to the person skilled in the art that a large number of modifications and variations can be made to the subject matter described herein without departing from the spirit of the present invention. The object and scope of this application are defined solely by the appended claims.

Claims

1. A device for reducing the resistance of an object moving within a fluid medium, characterized in that it contains at least one channel passing through the interior of the object from its front end to its rear end, wherein the channel has a constant diameter in the range from 0.5% to 5% of the diameter of the object, and wherein said channel has a circular cross-section and a smooth inner surface with a Reynolds number of less than 2300.

2. The device according to paragraph 1, characterized in that the diameter of the inlet opening of the channel is 5-15% smaller than the diameter of the outlet opening of the channel, which ensures the possibility of thermal expansion of the fluid medium inside the channel.

3. The device according to claim 1, characterized in that the channel contains at least one internal groove made completely straight.

4. The device according to paragraph 3, characterized in that the internal groove is made spiral-shaped, has a clockwise direction of rotation, has a width of no more than 3 mm and a depth of no more than 1 mm, and the spiral groove makes one revolution along the internal perimeter of the channel for every 1 / 5 to 1 / 2 of its length.

5. The device according to claim 1, characterized in that the channel is equipped with an access closing system at the inlet, which may be a damper, a shutter, a valve, or a similar element known in the art.

6. The device according to claim 1, characterized in that the channel branches from approximately the inlet to approximately 1 / 3 L of the object, and the outlet openings are located at a point located from 1 / 3 L to 1 / 2 L of the object from the branching point.

7. A device according to any of the preceding claims, characterized in that the cross-section of the channel is oval, polygonal, or a combination thereof.

8. A device according to any of the preceding paragraphs, characterized in that the channel has a circular inlet and an oval, polygonal or rhombohedral outlet, which provides the ability to redirect the flow of fluid along the surface of the object's body to ensure laminar flow and a more uniform separation of the fluid from the object's body.