Propulsion fan and drive system

The propulsion fan system addresses noise pollution by tensioning blades at both tips and roots, maintaining consistent angles to reduce audible noise and enhance efficiency.

JP7849524B2Active Publication Date: 2026-04-21WHISPER AERO INC
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
WHISPER AERO INC
Filing Date
2025-01-31
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Conventional propulsion fans with open rotors and propellers face limitations in reducing noise pollution due to the change in blade angle at higher speeds, leading to audible noise and increased pollution.

Method used

A propulsion fan system with multiple blades tensioned at both the tips and roots, using a tension ring and lock ring to maintain consistent blade angles during operation, reducing noise by keeping the pitch stable.

Benefits of technology

The system effectively reduces noise pollution by maintaining blade angles within a predetermined tolerance range, emitting less than 65 dBA at a sideline, and improving thrust efficiency.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a propulsion fan and an operation method of the propulsion fan for reducing noise contamination.SOLUTION: A method for operating a propulsion fan includes: proving a propulsion fan, in which a first ring and a second ring tension twisted blades such that the pitch of the blades during operation is substantially the same as the pitch of the blades at rest, each twisted blade having a first end connected to the first ring at a first angle and a second end opposite the first end, and a second end comprising a blade tip and connected to a second ring at a second angle different from the first angle; and rotating the propulsive fan at a blade tip speed of about 300 to 450 feet per second to provide an ultrasonic blade passing frequency.SELECTED DRAWING: Figure 2A
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Description

Technical Field

[0001] This disclosure generally relates to a propulsion fan and a drive system.

Background Art

[0002] Cross - reference to Related Applications This application claims priority to U.S. Provisional Patent Application No. 63 / 155,968, filed Mar. 3, 2021; U.S. Provisional Patent Application No. 63 / 156,063, filed Mar. 3, 2021; U.S. Provisional Patent Application No. 63 / 156,067, filed Mar. 3, 2021; and U.S. Provisional Patent Application No. 63 / 156,076, filed Mar. 3, 2021, each of which is incorporated herein by reference in its entirety.

[0003] Conventional propulsion fans typically include an open rotor and a propeller. These types of conventional propulsion fans have reached the acoustic limit. Conventional propellers include two to five blades supported on a single side, thereby limiting the number of blades to five or less. In order for a conventional propeller to emit sound at frequencies that are less perceptible to the human ear, it is necessary to increase the speed of the fan. However, since a conventional propeller is supported only by a single - sided structure, it cannot be driven at higher speeds. Furthermore, since a conventional propulsion fan is supported only on a single side, the angle of the fan blades can change as the blade fan rotates at a higher speed, resulting in a change in pitch that is audible to the human ear. As a result, noise pollution increases.

Summary of the Invention

[0004] A propulsion fan and drive system for reducing noise pollution are disclosed. The propulsion fan includes a blade fan having multiple blades. The blade fan is tensioned at the tips of the multiple blades. In one embodiment, a tension ring connected to the tips of the blades tensions the tips of the blades. Furthermore, the propulsion fan includes a lock ring configured to be connected to the roots of the multiple blades and to tension the roots of the blades. By tensioning the tips and roots of the multiple blades, the same shape and twist of the blades are maintained during thrust generation and at rest, thereby reducing noise that may be caused by changes in the angle of the blades. [Brief explanation of the drawing]

[0005] [Figure 1] Figure 1 is a perspective view of a propulsion fan according to one embodiment. [Figure 2A] Figure 2A is a first exploded view of a propulsion fan according to one embodiment. [Figure 2B] Figure 2B is a second exploded view of a propulsion fan according to one embodiment. [Figure 3A] Figure 3A shows a perspective view of the duct lip of a propulsion fan according to one embodiment. [Figure 3B] Figure 3B shows a front view of the duct lip of a propulsion fan according to one embodiment. [Figure 3C] Figure 3C shows a side view of the duct lip of a propulsion fan according to one embodiment. [Figure 3D] Figure 3D shows a cross-sectional view of the duct lip of a propulsion fan according to one embodiment. [Figure 4A] Figure 4A shows a perspective view of a cross-section of the nose cone of a propulsion fan according to one embodiment. [Figure 4B] Figure 4B shows a front view of a cross-section of the nose cone of a propulsion fan according to one embodiment. [Figure 4C] Figure 4C shows a cross-sectional view of the nose cone of a propulsion fan according to one embodiment. [Figure 4D] Figure 4D shows a perspective view of a cross-section of the nose cone of a propulsion fan according to one embodiment. [Figure 5A] Figure 5A shows a front view of the hub of a propulsion fan according to one embodiment. [Figure 5B] Figure 5B shows a side view of the hub of a propulsion fan according to one embodiment. [Figure 6A] Figure 6A shows a perspective view of a blade fan of a propulsion fan according to one embodiment. [Figure 6B] Figure 6B shows a front view of the blade fan of a propulsion fan according to one embodiment. [Figure 7A] Figure 7A shows a perspective view of a blade included in the blade fan shown in Figures 6A and 6B, according to one embodiment. [Figure 7B] Figure 7B shows a front view of a blade included in the blade fan shown in Figures 6A and 6B, according to one embodiment. [Figure 7C] Figure 7C shows a side view of a blade included in the blade fan shown in Figures 6A and 6B, according to one embodiment. [Figure 7D] Figure 7D shows a top view of a blade included in the blade fan shown in Figures 6A and 6B, according to one embodiment. [Figure 8A] Figure 8A shows a perspective view of the lock ring of a propulsion fan according to one embodiment. [Figure 8B] Figure 8B shows a front view of the lock ring of a propulsion fan according to one embodiment. [Figure 8C] Figure 8C shows a side view of the lock ring of a propulsion fan according to one embodiment. [Figure 9A] Figure 9A shows a perspective view of the tension ring of a propulsion fan according to one embodiment. [Figure 9B] Figure 9B shows a side view of the tension ring of a propulsion fan according to one embodiment. [Figure 10A] Figure 10A shows a perspective view of the internal duct body housing of a propulsion fan according to one embodiment. [Figure 10B] Figure 10B shows a front view of the internal duct body housing of a propulsion fan according to one embodiment. [Figure 10C]Figure 10C shows a side view of an internal duct body housing of a propulsion fan according to an embodiment. [Figure 11A] Figure 11A shows a perspective view of a stator of a propulsion fan according to an embodiment. [Figure 11B] Figure 11B shows a front view of a stator of a propulsion fan according to an embodiment. [Figure 11C] Figure 11C shows a side view of a stator of a propulsion fan according to an embodiment. [Figure 11D] Figure 11D shows a cross-sectional view of a stator of a propulsion fan according to an embodiment. [Figure 12A] Figure 12A shows a perspective view of a tail cone of a propulsion fan according to an embodiment. [Figure 12B] Figure 12B shows a front view of a tail cone of a propulsion fan according to an embodiment. [Figure 12C] Figure 12C shows a side view of a tail cone of a propulsion fan according to an embodiment. [Figure 12D] Figure 12D shows a cross-sectional view of a tail cone of a propulsion fan according to an embodiment. [Figure 13A] Figure 13A shows a perspective view of a circumferential drive system of a propulsion fan according to an embodiment. [Figure 13B] Figure 13B shows a front view of a circumferential drive system of a propulsion fan according to an embodiment. [Figure 13C] Figure 13C shows a side view of a circumferential drive system of a propulsion fan according to an embodiment. [Figure 14] Figure 14 shows a circumferential drive system of a propulsion fan according to another embodiment. [Figure 15A] Figure 15A shows a front view of an array of propulsion fans according to an embodiment. [Figure 15B] Figure 15B shows a perspective view of an array of propulsion fans according to an embodiment. [Figure 16] Figure 16 shows an exemplary application of an array of propulsion fans according to an embodiment. [Figure 17A] Figure 17A shows a front view of a hover drone including an array of propulsion fans according to an embodiment. [Figure 17B] Figure 17B shows a side view of a hover drone including an array of propulsion fans according to one embodiment. [Figure 17C] Figure 17C shows a top view of a hover drone including an array of propulsion fans according to one embodiment. [Figure 18A] Figure 18A shows a front view of a cinema drone including an array of propulsion fans according to one embodiment. [Figure 18B] Figure 18B shows a side view of a cinema drone including an array of propulsion fans according to one embodiment. [Figure 18C] Figure 18C shows a top view of a cinema drone including an array of propulsion fans according to one embodiment. [Figure 19A] Figure 19A shows a front view of a transport aircraft including an array of propulsion fans according to one embodiment. [Figure 19B] Figure 19B shows a side view of a transport aircraft including an array of propulsion fans according to one embodiment. [Figure 19C] Figure 19C shows a top view of a transport vehicle including an array of propulsion fans according to one embodiment. [Figure 20A] Figure 20A shows a front view of a vertical take-off and landing (VTOL) aircraft including a propulsion fan array according to one embodiment. [Figure 20B] Figure 20B shows a side view of a vertical take-off and landing (VTOL) aircraft including a propulsion fan array according to one embodiment. [Figure 20C] Figure 20C shows a top view of a vertical take-off and landing (VTOL) aircraft including a propulsion fan array according to one embodiment. [Figure 21A] Figure 21A shows a front view of a transport drone including an array of propulsion fans according to one embodiment. [Figure 21B] Figure 21B shows a side view of a transport drone including an array of propulsion fans according to one embodiment. [Figure 21C] Figure 21C shows a top view of a transport drone including an array of propulsion fans according to one embodiment. [Modes for carrying out the invention]

[0006] The drawings and the following description illustrate specific embodiments for illustrative purposes only. Those skilled in the art will readily recognize from the following description that alternative embodiments of the structures and methods illustrated herein can be employed without departing from the principles described herein. Several embodiments are described in detail below, with examples of these shown in the accompanying drawings. It should be noted that, wherever possible, similar or identical reference numerals are used in the drawings to indicate similar or identical functionality.

[0007] Propulsion fan and drive system In one embodiment, a propulsion fan and drive system is disclosed. Generally, a propulsion fan and drive system is configured to generate thrust. A propulsion fan and drive system can generate thrust for a variety of applications, from aircraft to hand tools such as leaf blowers. However, the applications of a propulsion fan and drive system are not limited to those described herein.

[0008] Figure 1 shows a perspective view of a propulsion fan 100 according to one embodiment. Generally, the propulsion fan 100 includes a plurality of components that collectively reduce the noise emitted by the propulsion fan 100 during thrust generation. Thus, the propulsion fan 100 reduces noise pollution. For example, the propulsion fan 100 includes a tensioned blade fan with a plurality of fan blades. By tensioning the blade fan, the angle of the fan blades is maintained substantially the same whether the propulsion fan is generating maximum thrust or not operating (e.g., stationary). As a result, noise pollution is reduced and thrust efficiency is improved compared to conventional propulsion fans. The propulsion fan 100 reduces noise pollution by taking into account that the angle of the fan blades is maintained within a predetermined tolerance range. For example, the propulsion fan 100 emits less than 65 dBA of noise at a sideline of 300 feet / 5,000 pounds.

[0009] Figure 2A shows a first exploded view of the propulsion fan 100, and Figure 2B shows a second exploded view of the propulsion fan 100 according to one embodiment. The propulsion fan 100 includes several different components as shown in Figures 2A and 2B. In one embodiment, the propulsion fan 100 includes a duct lip 201, a nose cone 203, a hub 205, a blade fan 209, a lock ring 210 (shown in Figures 8A to 8C), a tension ring 211, a motor 215, a main housing 217, several outer casings 213A and 213B, a stator 219, and a tail cone 221. Other embodiments of the propulsion fan 100 may include other components not shown in Figures 2A and 2B. In one embodiment, the duct lip 201, the outer casing 213, and a portion of the stator 219 (e.g., 219C) collectively form a circulating duct housing the components of the propulsion fan, as shown in Figure 1.

[0010] Figures 3A, 3B, 3C, and 3D show perspective, front, side, and cross-sectional views, respectively, of a duct lip 201 of a propulsion fan 100 according to one embodiment. In one embodiment, the duct lip 201 is configured to provide a clean air inflow to the propulsion fan 100. In one embodiment, the duct lip 201 is configured to connect to a main housing 217. The duct lip 201 may include a plurality of mounting holes 223 on its rear surface, as shown in Figure 2B. Fasteners (e.g., nuts and bolts, rivets, etc.) are placed in the mounting holes 223 to connect the duct lip 201 to the first end 1001 of the main housing 217, as will be further described below.

[0011] The duct lip 201 may include a plurality of panels that form the duct lip 201 collectively. For example, the duct lip 201 may include a first plurality of panels that form the inner surface 309 of the duct lip 201 collectively, and the duct lip 201 may include a second plurality of panels that form the outer surface 307 of the duct lip 201 collectively, such that the duct lip 201 has a hollow center through which air is channeled to the blade fan 209. The first and second plurality of panels may be connected to each other via various fastening means such as fasteners (e.g., screws, nuts, bolts) or by welding. The first and second plurality of panels may be made of metal such as aluminum or titanium, or composite materials such as carbon fiber. Alternatively, the duct lip 201 may be made from a single material, for example, by 3D printing.

[0012] In one embodiment, the duct lip 201 includes a first end 303 (e.g., an inlet) and a second end 305 (e.g., an outlet). The first end 303 receives air, and the air exits through the second end 305. As shown in Figure 3C, the diameter of the first end 303 is smaller than the diameter of the second end 305, but in other embodiments they may be the same. The diameters of the first end 303 and the second end 305 of the duct lip 201 depend on the application of the propulsion fan 100. For example, the diameters of the first end 303 and the second end 305 of the duct lip 201 are larger for aircraft applications compared to leaf blower applications.

[0013] Figure 3D is a cross-sectional view of a duct lip 201 along the plane A-A' shown in Figure 3B, according to one embodiment. As previously stated, the duct lip 201 includes an outer surface 307 and an inner surface 309. Both the outer surface 307 and the inner surface 309 extend from the first end 303 of the duct lip 201 toward the second end 305 of the duct lip 201. Air flows through the inner surface 309 of the duct lip 201. The curvature 311A ​​of the inner surface 309 of the duct lip 201 and the curvature 311B of the outer surface 307 of the duct lip 301 are designed to balance various factors such as different conditions (e.g., flight conditions such as cruising, takeoff, and landing) and the Reynolds number. Those skilled in the art will be able to adjust the duct lip radius for a favorable pressure gradient across speed regimes and flight modes of interest.

[0014] Figures 4A, 4B, 4C, and 4D show a perspective view, front view, cross-sectional view, and perspective view, respectively, of a cross-section of the nose cone 203 of the propulsion fan 100 according to one embodiment. The nose cone 203 is configured to regulate the opposing airflow behavior and reduce aerodynamic drag. The nose cone 203 may also be configured to include an impeller that helps cool the air mass flow without significantly contributing to broadband or tone noise.

[0015] In one embodiment, the nose cone 203 is configured to connect to the motor 215 using a hub 205 positioned between the nose cone 203 and the motor 215. The nose cone 203 may include a plurality of mounting holes on its back surface, as shown in Figure 2B. Fasteners 207 (e.g., nuts and bolts, rivets, etc.) are positioned in the mounting holes to connect the nose cone 203 to the first end of the hub 205. As will be further described below, the fasteners 207 extend through the hub 205 and connect to the first end of the motor 215.

[0016] In one embodiment, the nose cone 203 is conical. However, in other embodiments, the nose cone 203 can have a different shape. As shown in Figures 4A to 4D, the nose cone 203 includes an opening 403 (e.g., a hole) at the first end of the nose cone 203. As the blade fan 209 rotates, air is drawn through the opening 403 in the nose cone 203 to cool the motor 215. The secondary mass flow required to cool the internal components determines the inner diameter of the opening 403 in the nose cone 203. Those skilled in the art will be able to derive this diameter depending on the thermal requirements of different electric motors and the air required to cool them under the most restrictive conditions, typically at maximum continuous operation.

[0017] Figure 4C is a cross-sectional view of the nose cone 203 along the plane B-B' shown in Figure 4B, according to one embodiment. In one embodiment, the nose cone 203 is not solid but contains a cavity. For example, in one embodiment, the nose cone 203 includes an air channel 405. The air channel 405 extends from an opening 403 in the nose cone 203 to a plurality of openings 407 (e.g., 407A and 407B) arranged around the circumference of a second end (e.g., the back) of the nose cone 203. Air flows from the opening 403 through the air channel 405 and out of the plurality of openings 407 to cool the motor 215. In one embodiment, the air channel 405 is formed between the outer surface 409 of the nose cone 203 and a projection 411 formed in the nose cone 211, as shown in Figures 4C and 4D.

[0018] In one embodiment, the projection 411 protrudes inward from the second end of the nose cone 203 toward the opening 403 of the nose cone 203. The projection 411 may have a shape similar to that of the nose cone 203. For example, the projection 411 may also be conical. However, in other embodiments, the projection 411 may have a shape different from that of the nose cone 203.

[0019] Generally, the projection 411 has a size and shape that is adjusted to accommodate the mass airflow for cooling the motor 215. In one embodiment, the projection 411 includes an air channel 413 formed through the projection 411, through which air flows from the opening 415 of the air channel 413 to the opening 417 at the second end of the nose cone 203. In one embodiment, the center of the air channel 413 is aligned with the center of the opening 403 in the nose cone 203.

[0020] Figures 5A and 5B show a front and side view, respectively, of the hub 205 of the propulsion fan 100 according to one embodiment. The hub 205 is the central part of the propulsion fan 100 and is located at the center of the blade fan 209, as will be further described below. In one embodiment, the hub 205 is configured to connect to the nose cone 203, the lock ring 210, and the motor 215.

[0021] As shown in Figures 5A to 5C, in one example, the hub 205 is cylindrical. In one embodiment, the diameter of the first end 507 of the hub 205 matches the diameter of the second end of the nose cone 203. The first end 507 of the hub 205 (e.g., the front) includes a number of mounting holes 501A to 501F formed through the thickness of the hub 205. The mounting holes 501 are positioned such that they align with the mounting holes of the nose cone 203 when the second end of the nose cone 203 is fitted into the first end 507 of the nose hub 205. The fasteners 207 are configured to pass through the mounting holes 501A to 501F and connect to the first end (e.g., the front) of the motor 215. For example, the fasteners 207 are screwed into threaded holes 225 of the first end of the motor 215.

[0022] In one embodiment, the hub 205 also includes a plurality of openings 503 extending through the thickness of the hub 205, such as openings 503A and 503B. The plurality of openings 503 have a shape and size that matches (e.g., are the same as) the opening 407 on the rear surface of the nose cone 203. The openings 503 are configured to align with the opening 407 on the rear surface of the nose cone 203 when the nose cone 203 and the hub 205 are fitted together. Thus, air exiting from the opening 407 of the nose cone 203 flows through the openings 503 included in the hub 205. In one embodiment, the plurality of openings 503 included in the hub have different sizes. For example, opening 503A is smaller than opening 503B.

[0023] In one embodiment, the hub 205 also includes an opening 505 extending through the thickness of the hub 205. The opening 505 is located at the center of the hub 205. In one embodiment, the center of the opening 205 is configured to align with the center of the air channel 413 of the nose cone 203. Thus, the airflow exiting the air channel 413 of the nose cone 203 flows through the opening 505 in the hub 205, cooling the motor 215.

[0024] In one embodiment, the second end 511 of the hub 205, opposite the first end 507, includes a connecting mechanism 509 around the outer circumference of the second end 511 of the hub 205. The connecting mechanism 509 is configured to connect the hub 205 to a locking ring 210. In one embodiment, the connecting mechanism 509 is a thread such that the hub 205 screws onto the locking ring 210. Once the hub 205 is connected to the locking ring 210, the locking ring 210 surrounds the outer circumference of the hub 205. The motor 215 is configured to fit onto the outer surface of the second end 511 of the hub 211.

[0025] In one embodiment, the hub 205 includes an intermediate region 511 located between a first end 507 and a second end 511 of the hub 205. In one embodiment, the blade fan 209 is configured to be positioned around the circumference of the intermediate region 511, while the hub 205 is positioned through the center of the blade fan 209.

[0026] Figures 6A and 6B show perspective and front views, respectively, of the blade fan 209 of the propulsion fan 100 according to one embodiment. As shown in Figures 6A and 6B, the blade fan 209 includes a plurality of blades 601. The total number of blades 601 included in the blade fan 209 is significantly greater than the number of blades included in a conventional propulsion fan having 2 to 5 blades. In one embodiment, the blade fan 209 may include a range of blades 601 from 20 to 840 blades. However, any number of blades greater than 5 can be used. In general, the total number of blades 601 included in the blade fan 209 depends on the application. In one embodiment, the material for the blades of the multi-blade fan also depends on the type of application of the multi-blade fan. The blades can be made of metals such as aluminum or titanium, or composite materials such as carbon fiber.

[0027] In one embodiment, the blade fan 209 reduces overall blade noise when the blade fan 209 rotates at a low tip speed (approximately 300–450 feet / second). As described herein, the tensioned fan blades 209 allow more blades to be within the mechanical material limits while still achieving an ultrasonic signature and low subsonic tip speed. Furthermore, a higher number of blades 601 raises the tonal noise to ultrasonic frequencies outside the upper limit of human hearing (above 16,000 Hz for a typical adult). In addition, the lower blade load due to a higher number of blades also reduces the severity of vortex-to-vortex collisions that cause broadband noise.

[0028] As shown in Figures 6A and 6B, the multiple blades 601 are arranged to form a circular ring shape with a hollow center on which the hub 205 is located. Each blade 601 is arranged such that at least a portion of its leading and trailing edges overlaps with that of an adjacent blade 601. For example, the leading edge of a given blade overlaps with the trailing edge of the blade to its left, and the trailing edge of a given blade overlaps with the leading edge of the blade to its right. The overlapping arrangement of the multiple blades 601 provides increased robustness for working against incoming airflow. This robustness can be adjusted to account for local aerodynamic effects and the effects of the Reynolds number, which may affect the layered coupling of flows within and between the blades.

[0029] Figures 7A, 7B, 7C, and 7D show perspective, front, side, and top views, respectively, of a blade 601 included in the blade fan 209 shown in Figures 6A and 6B, according to one embodiment. In one embodiment, each blade 601 comprises a first locking end 605, a second locking end 603, and a vane 607 positioned between the first locking end 605 and the second locking end 603. The blade 601 may include other features not described herein in other embodiments.

[0030] In one embodiment, the first locking end 605 is positioned at the tip of the blade 601. The first locking end 605 is inserted into the tension ring 211 and configured to lock the blade 601 into the tension ring 211 so that the tip of the blade 601 is tensioned. By tensioning the tip of the blade 601, the pitch (e.g., angle) of the tip of the blade 601 remains substantially the same during thrust generation or while the propulsion fan 100 is stationary, thereby reducing noise pollution.

[0031] As shown in Figures 7A to 7D, the first lock end 605 has a rectangular shape with a chamfered edge, but other shapes can be used for the first lock end 605. In one embodiment, the first lock end 605 has a width and thickness greater than the width and thickness of the tip of the blade 607. However, in other embodiments, the first lock end 605 may be the same width as or narrower than the tip of the blade 601. Those skilled in the art will adjust the edge, chamfer, surface treatment, and bezeling to account for local stress and strain due to tension.

[0032] In one embodiment, the second locking end 603 is positioned at the root of the blade 601. The second locking end 606 is inserted into the locking ring 210 and configured to lock the blade 601 to the locking ring 210. By applying tension to the root of the blade 601, the pitch (e.g., angle) of the root of the blade 601 is substantially the same during thrust generation or while the propulsion fan 100 is stationary, thereby reducing noise pollution. As shown in Figures 7A to 7D, the second locking end 603 has multiple different surfaces (e.g., straight and curved surfaces) to increase the surface area in contact with the locking ring 210 to reduce blade deflection. In one embodiment, the second locking end 603 is wider than the root of the blade 601 and wider than the width of the first locking end 605. However, in other embodiments, the second locking end 603 may be the same width as or narrower than the root of the blade 601.

[0033] The blade 607 is positioned between a first locking end 605 and a second locking end 603. In one embodiment, the blade 607 includes a geometric twist 609 within the blade 607. The geometric twist 609 is a change in the angle of incidence of the blade measured with respect to the root of the blade 601. That is, the blade 607 includes a number of different angles of incidence over the length of the blade 607 due to the geometric twist 609. For example, the blade 607 may have a first angle of incidence on a first side of the geometric twist 609 (e.g., below the geometric twist 609 in Figures 7A-7C) and a second angle of incidence on a second side of the geometric twist 609 (e.g., above the geometric twist 609 in Figures 7A-7C).

[0034] As a result of the geometric twist 609, the first lock end 605 and the second lock end 609 are offset from each other when viewed from a top view of the blade 601, as shown in Figure 7D. In one embodiment, the geometric twist 609 begins in the portion of the wing 607 closer to the root of the blade 601 than to the tip of the blade 601. The geometric twist 609 between the root cord and the tip cord can vary up to 45 degrees.

[0035] Referring back to Figures 6A and 6B, in one embodiment, the blades 601 are positioned such that the second locking ends 603 are arranged parallel to each other around the circumference, thereby forming a hole in the center of the blade fan 209. As a result, the first locking ends 605 are also arranged parallel to each other, and the blades 607 of each blade 601 overlap with another blade of an adjacent blade 601 due to the geometric twist 609 within the blade 607.

[0036] Figures 8A, 8B, and 8C show perspective, front, and side views, respectively, of a lock ring 210 of a propulsion fan 100 according to one embodiment. Generally, the lock ring 210 is configured to connect to a blade fan 209 and a hub 205, applying beneficial tension to the roots of the blades 601. Thus, the blades 601 of the blade fan 209 are tensioned at both the tips and roots to maintain the blade angle during operation. The lock ring 210 may be made of a metal such as aluminum or titanium, or a composite material such as carbon fiber.

[0037] The locking ring 210 includes a first end 801 and a second end 803. In one embodiment, the first end 801 has a smaller diameter than the second end 803, thereby forming a conical shape. Adjustment of this shape is determined by the need for primary internal flow to the fan (i.e., not cooling flow) and may take into account any boundary layer pressure gradient along the central body in the presence of the fan. In one embodiment, the first end 801 of the locking ring 210 is configured to connect the blade fan 209 directly to the locking ring 210, thereby locking the blade fan 209 to the locking ring 210. The first end 801 of the locking ring 210 includes a plurality of locking teeth 805. In one embodiment, the locking teeth 805 are projections extending from the body of the locking ring 210 at an angle to a reference perpendicular to the second end 803 of the locking ring.

[0038] Multiple slots 807 are formed between locking teeth 805. For example, a slot 807 is formed between a pair of locking teeth, including locking tooth 805A, and locking tooth 805B. The slots 807 have a width and depth that match the dimensions of the second locking end 603 of the blade fan 209. The slots 807 extend partially through the thickness of the locking ring 210, for example, three-quarters of the thickness of the locking ring 210.

[0039] In one embodiment, each of the multiple slots 807 is configured to connect to a corresponding one of the multiple blades 601 of the blade fan 209. In particular, the second locking end 603 of each blade 601 is inserted into one of the slots 807, thereby securing the blade 601 to the locking ring 210 via directional contact between the surface of the second locking end 603 and the locking teeth 805 that form the slot. In one embodiment, a fastener such as epoxy is also applied to the second locking end 603 of each blade 601 to further reinforce the connection between the blade 601 and the locking ring 210. By locking the second locking end 603 of the blade 601 to the locking ring 210, the pitch of the root of the blade 601 is maintained substantially the same during thrust generation or at rest, thereby reducing the audible noise emitted from the propulsion fan 100, as changes in pitch are perceptible to the human ear.

[0040] In one embodiment, the second end 803 of the lock ring 210 includes a connecting mechanism 809 on the inner circumference of the second end 803 of the lock ring 210. The connecting mechanism 809 is configured, for example, to connect the lock ring 210 to a connecting mechanism 509 of the hub 205. In one embodiment, the connecting mechanism 809 has threads that match the threads of the connecting mechanism 509 of the hub 205, thereby allowing the hub 205 to be screwed onto the lock ring 210. Since the motor 215 is connected to the hub 205, the hub 205 rotates, thereby rotating the lock ring 210 and the blade fan 209 as well.

[0041] Figures 9A and 9B show perspective and side views, respectively, of a tension ring 211 of a propulsion fan 100 according to one embodiment. The tension ring 211 is configured to connect to the blade fan 209 by being positioned around the circumference of the blade fan 209. More specifically, the tension ring 211 is configured to connect to all of the first locking ends 605 of the blade fan 209 according to one embodiment. By fixing the first locking ends 605 of the blades 601 to the tension ring 211, the pitch of the tips of the blades 601 is maintained substantially the same during thrust generation or deceleration, thereby reducing audible noise emitted from the propulsion fan 100, as changes in pitch are perceptible to the human ear. Thus, pre-tensioning the blades 601 using the tension ring 211 reduces inefficiencies caused by the tip gap. In one embodiment, the tension ring 211 is made of a metal such as aluminum or titanium, or a composite material such as carbon fiber. However, in other embodiments, other materials may be used.

[0042] As shown in Figures 9A and 9B, the tension ring 211 includes a first end 903 and a second end 905. In one embodiment, the first end 903 has substantially the same diameter as the second end 905. The body 909 of the tension ring 211 is positioned between the first end 903 and the second end 905.

[0043] In one embodiment, the body 909 of the tension ring 211 includes a plurality of openings (e.g., slots) 907 extending throughout the entire thickness of the tension ring 211. Each opening 907 is configured to connect to a first locking end 605 of one of the plurality of blades 601. Thus, there is a one-to-one relationship between each opening 907 of the tension ring 211 and the blade 601. In one embodiment, a fastener such as epoxy is also applied to the first locking end 605 of each blade 601 to further reinforce the connection between the blade 601 and the tension ring 211.

[0044] In one embodiment, the multiple openings 907 are formed at an angle to a reference perpendicular to the first end 903 or the second end 905. The angle at which the openings 907 are formed corresponds to the pitch of the first locking end 605 of the blade 601. The dimensions of the openings 907 substantially coincide with the dimensions of the first locking end 605 such that when the first locking end 605 is inserted into the openings 907 of the tension ring 211 and comes into direct contact with the tension ring 211, the first locking end 605 is locked into the tension ring 211.

[0045] Figures 10A, 10B, and 10C show a perspective view, a front view, and a side view, respectively, of the internal duct body housing 217 (hereinafter referred to as the "body housing") of a propulsion fan 100 according to one embodiment. In one embodiment, the body housing 217 is configured to house (for example, partially surround) the components of the propulsion fan 100. For example, in one embodiment, the blade fan 209, hub 205, tension ring 211, lock ring 210, and motor 215 are housed within the body housing 217. In other embodiments, other components of the propulsion fan 100 may be included within the body housing 217. In one embodiment, the body housing 217 is made of a metal such as aluminum or titanium, or a composite material such as carbon fiber. However, other materials may be used in different embodiments.

[0046] In one embodiment, the main housing 217 is cylindrical and includes a first end 1001 (e.g., an inlet) and a second end 1003 (e.g., an outlet). In one embodiment, the first end 1001 has a larger diameter than the second end 1003. The first end 1001 includes a plurality of mounting holes 1005 formed around the circumference of the first end 1001 of the main housing 217. In one embodiment, the first end 1001 of the main housing 217 is configured to connect to the second end 305 of the duct lip 201 such that the mounting holes 223 of the duct lip 201 align with the mounting holes 1005 of the main housing 217. As described above, fasteners 207 may be used to secure the duct lip 201 to the first end 1001 of the duct main housing 217.

[0047] In one embodiment, the second end 1003 of the main housing 217 includes a plurality of mounting holes 1007 formed around the circumference of the second end 1003 of the main housing 217. In one embodiment, the second end 1003 of the main housing 217 is configured to connect to the first end (e.g., inlet) of the stator 219. While the second end 1003 of the main housing 217 is connected to the first end of the stator 219, the mounting holes 1007 of the second end 1003 of the main housing 217 are aligned with the mounting holes of the first end of the stator 219. The second end 1003 of the main housing 217 can be secured to the first end of the stator 219 using fasteners (e.g., nuts, bolts, rivets).

[0048] In one embodiment, the main housing 217 includes a plurality of intermediate sections 1009, each configured to house different components of a propulsion fan. The plurality of intermediate sections 1009 include a first intermediate section 1009A extending from a first end 1001 and a second intermediate section 1009B extending from a second end 1003. The intermediate sections 1009 of the main housing 217 are positioned between the first end 1001 and the second end 1003 of the main housing 217.

[0049] As shown in Figure 10C, the first intermediate portion 1009A has a different diameter from the second intermediate portion 1009B. For example, the diameter of the first intermediate portion 1000A is larger than the diameter of the second intermediate portion 1000B. Furthermore, the first intermediate portion 1009A has a smaller diameter than the first end portion 1001, and the second intermediate portion 1009B has a smaller diameter than the second end portion 1003.

[0050] In one embodiment, the first intermediate section 1009A is configured to house the hub 205, the blade fan 209, the lock ring 210, and the tension ring 211. Since the tension ring 211 has the largest diameter of the components housed in the first intermediate section 1009A, the diameter 1009A of the first intermediate section 1009A is based on the diameter of the tension ring 211. In one embodiment, the diameter of the first intermediate section 1009A is substantially the same as the diameter of the tension ring 211, thereby allowing the tension ring 211 to be securely fixed within the first intermediate section 1000A, for example, by press-fitting.

[0051] In one embodiment, the second intermediate section 1009B is configured to house a portion of the motor 215 and the stator 219. The length of the second intermediate section 1009B is based on the length of the motor 215 and the length of the portion of the stator 219 to be housed in the intermediate section. The second intermediate section 1000B has a length at least the same as the portions of the motor 215 and the stator 219 in order to house the portions of the motor 215 and the stator 219 in the second intermediate section 1009B. In one embodiment, the diameter of the second intermediate section 1009B is based on the mass airflow of air entering and leaving the stator 219. Those skilled in the art will be able to adjust the diameter to induce a favorable pressure gradient over multiple design speeds in order to minimize flow separation or vortexing. The internal cavity of the second section 1009B may also be adjusted to reduce noise.

[0052] Figures 11A, 11B, 11C, and 11D show perspective, front, side, and cross-sectional views, respectively, of the stator 219 of a propulsion fan 100 according to one embodiment. In one embodiment, the stator 219 comprises a plurality of stator blades 219A, a motor housing 219B, and a stator housing 219C. In other embodiments, the stator 219 may include components other than those shown in Figures 11A to 11D.

[0053] In one embodiment, the motor housing 219B is cylindrical and includes a first end 1101 and a second end 1103, as shown in Figure 11D. Figure 11D shows a cross-sectional view of the stator 219 along the plane C-C' of Figure 11B according to one embodiment. As shown in Figure 11D, the motor housing 219B includes a cavity 1105 located between the first end 1101 and the second end 1103. The cavity 1105 may extend from the first end 1101 toward the second end 1103, but not toward the second end 1103. In one embodiment, the cavity 1105 is configured to house a motor 215. That is, the motor 215 is located within the cavity 1105 of the motor housing 219B. Therefore, the shape and size of the cavity 1105 depend on the shape and size of the motor 215. Since the motor 215 is located within the cavity 1105 and is indirectly connected to the hub 205, the stator 219 also functions as a structural component for supporting the hub 205 and other components of the thruster 100.

[0054] In one embodiment, the motor housing 219B includes a hole 1113 passing through the center of the motor housing 219B, as shown in Figures 11B and 11D. The diameter of the hole 1113 is smaller than the diameter of the motor 215 to prevent the motor 215 from falling through the hole 1113. The hole 1113 is located within the motor housing 219B to assist in heat dissipation and thus cool the motor 215.

[0055] Referring to Figure 11B, the stator 219 includes a plurality of stator blades 219. The stator blades 219A extend radially from the motor housing 219B. That is, the root of each blade 219A is connected to the motor housing 219B, and the wings of the stator blades 219 extend outward from the motor housing 219B. In one embodiment, each blade 219A extends away from the motor housing 219B at an angle measured with respect to a reference line extending perpendicularly from a point on the motor housing 219B from which the stator blade 219A extends.

[0056] In one embodiment, the stator blades 219 conduct heat away from the motor 215. Since the blades 219 are in contact with the motor housing 219B that houses the motor 215, the air passing through the blades 219 dissipates the heat generated by the motor 215. In one embodiment, the arrangement of the blades 219 also reduces the noise generated by the blade fan 209 and controls the thrust generated by the propulsion fan 100. The number of blades in the stator blades 219 can be selected so that the harmonics of the stator cancel out the harmonics of the blade fan 209. In the case of an ultrasonic fan, due to the locally low Reynolds number along the blades, those skilled in the art will understand that the blade fan 209 may carry a number of blades 601 greater than the stator blades 219 (e.g., total number) for preferred acoustics. This can vary anywhere from 50% to 200% more blades for a particular set of design tones.

[0057] In one embodiment, the stator housing 219C is configured to house the stator blades 219 and the motor housing 219B. That is, the stator blades 219 are positioned within the stator housing 219C such that the stator housing 219C surrounds the circumference of the blades 219. In one embodiment, the stator housing 219C includes a first end 1107 (e.g., an inlet) and a second end 1109 (e.g., an outlet). As shown in Figure 11C, the first end 1107 has a larger diameter than the second end 1109. Thus, the stator housing 219C may have a conical shape. However, in other embodiments, the stator housing 219C may have other shapes.

[0058] Referring to Figure 11D, in one embodiment, the tip of the blade 219A is in contact with the inner surface 1111 of the stator housing 219C. Therefore, the stator blades 219A are stationary. By bringing the blades 219A into contact with the inner surface 1111 of the stator housing 219C, the position of each blade 219A is static.

[0059] Figures 12A, 12B, 12C, and 12D show perspective, front, side, and cross-sectional views, respectively, of the tail cone 221 of the propulsion fan 100 according to one embodiment. In one embodiment, the tail cone 221 is configured to produce a correct change in the area of ​​the stator housing 219C along with the air exiting the propulsion fan 100. The tail cone 221 may be made of a metal such as aluminum or titanium, or of a composite material such as carbon fiber.

[0060] The tail cone 221 includes a first end 1201 (e.g., an inlet) and a second end 1203 (e.g., an outlet). In one embodiment, the first end 1201 has a larger diameter than the second end 1203. In one embodiment, the diameter of the tail cone 221 varies along its length. As shown in Figure 12C, the diameter of the tail cone 221 decreases from the first end 1201 to the second end 1203 until it reaches a midpoint 1205. From the midpoint 1205 to the second end 1203, the diameter of the tail cone 221 is relatively constant.

[0061] In one embodiment, the first end 1201 of the tail cone 221 is configured to connect to the second end 1103 of the motor housing 219B of the stator 219. Thus, the diameter of the second end 1201 of the tail cone 221 substantially matches the diameter of the second end 1103 of the motor housing 219B of the stator 219. In one embodiment, the first end 1201 of the tail cone 221 includes a mounting surface 1209 that engages with (e.g., contacts) the second end 1103 of the motor housing 219B. The mounting surface 1209 can be attached to the motor housing 219B, for example, using fasteners. However, in other embodiments, other mounting mechanisms may be used.

[0062] Referring to Figure 12D, a cross-sectional view of the tail cone 221 along the plane D-D' shown in Figure 12B is provided. In one embodiment, the tail cone 221 includes a cavity 1207 formed throughout the length of the tail cone 221, starting from a first end 1201 of the tail cone to a second end 1203 of the tail cone. The shaping of the rear end of the tail cone 221 is controlled by an exhausted secondary flow from inside the tail cone 221 with respect to the expansion of the jet following the blade disc and / or stator.

[0063] In one embodiment, the propulsion fan 100 includes a central hub drive motor 215. That is, in one embodiment, a single motor 215 is used to drive the propulsion fan 100. An exemplary motor used in the propulsion fan 100 is an electric motor. However, in other embodiments, other types of motors, such as a gas motor or a jet turbine, may be used in the propulsion fan 100. Generally, different motor types and sizes may be used depending on the application of the propulsion fan 100.

[0064] Multi-motor drive system In another embodiment, the propulsion fan 100 may be driven by multiple motors, not just the single motor 215 described above. Figures 13A, 13B, and 13C show perspective, front, and side views, respectively, of a peripheral multi-motor drive system for the propulsion fan 100 according to one embodiment.

[0065] Instead of driving thrust with a single motor 215, multiple auxiliary motors 1303A, 1303B, 1303C, and 1303D are arranged within the main housing 217 and drive the blade fan 209 via a ring gear 1305. In one embodiment, the multiple auxiliary motors 1303 may be electric motors. However, other types of motors may be used.

[0066] In one embodiment, the ring gear 1305 may be connected to the tension ring 211. The auxiliary motor 1303 may replace the motor 215 described above, or may be used in conjunction with the motor 215. The multi-motor redundancy enables exceptional fault tolerance of the propulsion fan 100 system. For example, with four auxiliary motors 1303, the loss of a single auxiliary motor is negligible for the normal operation of the thruster. Even with the loss of another motor, the remaining auxiliary motors 1303 may be over-speed to generate sufficient thrust.

[0067] As shown in Figures 13A to 13C, the auxiliary motors 1301A to 1301D are radially spread around the circumference of the thruster 100, instead of all being located at the thruster's hub 205. Each end of the auxiliary motor 1301 includes a gear connected to the ring gear 1305. The radial arrangement does not need to be limited to equal angular spacing. For example, a fan may be driven by three motors biased toward the lower quadrant of the duct. Furthermore, instead of requiring the stator 219 to support the hub 205 to support the centrally housed motor 215, the thruster can leverage the duct structure itself to handle the motors and their loads. In addition to eliminating weight and drag, this also results in less broadband noise typically caused by the interaction of flow in the stator. In one embodiment, the auxiliary motor 1303 can operate more at higher speeds of 20,000 rpm and produce a better specific power of 15 kW / kg compared to a heavier, lower-speed motor with a specific power of 5 kW / kg. The auxiliary motor 1303 drives the ring gear 1303 simultaneously to eliminate gear slip (axial and radial). This low bearing results in lower gear noise.

[0068] Figure 14 shows yet another embodiment of the circumferential drive system for the propulsion fan 100, according to a different embodiment. The embodiment shown in Figure 14 is similar to the example described in Figure 13. However, the drive system shown in Figure 14 omits the central drive motor 215 and relies on an auxiliary motor 1303 for thrust generation.

[0069] Propulsion array Figures 15A and 15B show a front view and a perspective view, respectively, of an array of propulsion fans according to one embodiment. In one embodiment, the array of propulsion fans 1500 includes a plurality of propulsion fans 100 arranged laterally to form a row of propulsion fans. In the example shown in Figures 15A and 15B, the array of propulsion fans 1500 includes a first propulsion fan 100A, a second propulsion fan 100B, and a third propulsion fan 100C. Each of the plurality of propulsion fans 100A to 100C includes a propulsion fan structure as described herein. Although three propulsion fans 100 are included in the array of propulsion fans 1500, the array may include any number of propulsion fans more than two.

[0070] Figure 16 shows an exemplary application of a propulsion fan array according to one embodiment. As shown in Figure 16, the propulsion fan array 1600 includes a plurality of propulsion fans as described herein. In one embodiment, the propulsion fan array 1600 is integrated into a duct wing 1603 of an aircraft 1605. The plurality of propulsion fans can be combined laterally to form the duct wing 1603. The duct wing 1603 can be molded to create a passive lifting dihedron, to which two-plane offsets, sweeps, tapers, and dihedrons can be added as needed. The total number of propulsion fans included in the array 1600 and the size of the propulsion fans depend on the requirements of the aircraft, such as the number of passengers on board, speed requirements, and altitude requirements of the aircraft 1605.

[0071] Combining the propulsion fans into an array opens up several opportunities for control and thrust vectorization. Thrust can be simply varied between each individual propulsion fan 100 to induce yawing, rolling, or pitching moments. The relative spanwise pitch difference between the propulsion fans can be used to catalyze faster ascents and descents. This can be further enhanced by additional control surfaces installed on the trailing edges.

[0072] The duct spanwise combination is suitable for integration along the wing or even as the biplane itself. The array can be positioned and extended as a biplane with sweep, offset, dihedral, and tapered shapes to suit the system's needs. Whether to integrate the thrust fan array as a complete biplane depends on the required thrust (minus drag) and the relative size of the thrust fans.

[0073] Uses of propulsion fans Figures 17A, 17B, and 17C show a front view, side view, and top view, respectively, of a hover drone 1700 according to one embodiment. The hover drone 1700 includes an array of propulsion fans, including a first propulsion fan 100A, a second propulsion fan 100B, and a third propulsion fan 100C. Although the hover drone 1700 includes only three propulsion fans, the hover drone 1700 may include additional or fewer propulsion fans than those shown in Figures 17A to 17C.

[0074] The hoverdrone 1700 is a quiet, electrically powered vertical take-off and landing (VTOL) drone including an array of propulsion fans as described herein. The hoverdrone 1700 can be used for short distances, such as in urban environments. The hoverdrone 1700 may have a 360-degree camera and sensors and may be used for hover flight times exceeding 15 minutes, for example. In one example, propulsion fans 100A-100C may each have a diameter of 1 foot with an increased disk load of 6.4 pounds / square foot. The hoverdrone 1700 may have a maximum take-off weight of 30 pounds.

[0075] In the example shown in Figure 17A, each propulsion fan 100A to 100C includes a centrally located motor 215 and an auxiliary motor 1301, as described above. However, the hover drone 1700 may include only the centrally located motor 215, omitting the auxiliary motor 1301, or it may include only the auxiliary motor 1301, omitting the centrally located motor 215.

[0076] Figures 18A, 18B, and 18C show front, side, and top views, respectively, of a cinema drone 1800 including an array of propulsion fans, according to one embodiment. Generally, the cinema drone 1800 is a quiet, deflection-slipstream VTOL drone used for cinematic purposes. The cinema drone 1800 can be all-electric or hybrid. The cinema drone 1800 may have a gimbal payload of up to 35 pounds (e.g., main camera). The cinema drone 1800 may have secondary cameras and sensors. The cinema drone 1800 can be used for hover flight times exceeding 20 minutes. In one embodiment, the cinema drone may have a maximum cruising speed exceeding 50 mph.

[0077] In one embodiment, the cinema drone 1800 is a biplane and has a neutral stagger. As shown in Figure 18A, the cinema drone 1800 includes a first wing 1801 and a second wing 1803. Each of the first wing 1801 and the second wing 1803 includes an array of propulsion fans, each containing a plurality of propulsion fans. For example, the array of propulsion fans included in wing 1801 includes propulsion fans 100A, 100B, 100C, and 100D, and the array of propulsion fans included in wing 1803 includes propulsion fans 100E, 100F, 100G, and 100H. Thus, half of the propulsion fans are located on the first side of the fuselage 1805, and the other half of the propulsion fans are located on the second side of the fuselage 1805. In the example shown in Figures 18A to 18C, the thruster array includes eight thrusters, but any number of thrusters may be used.

[0078] Each wing 1801, 1803 of the cinema drone 1800 shown in Figures 18A to 18C has an angular sweep formed between the two wings toward the front of the fuselage 1805. In the example shown in Figures 18 to 18C, wings 1801 and 1803 may have a 20-degree wing surface and a 30-degree wing sweep. However, other angles may be used in different embodiments.

[0079] In one embodiment, the cinema drone 1800 shown in Figures 18A to 18C has, in one example, a maximum takeoff weight of 75 pounds and a target maximum payload of 30 pounds. Each propulsion fan 100 may have a fan diameter of 1 foot with an increased disc loading of, for example, 60 pounds / square foot. The fuselage 1805 of the cinema drone 1800 may have a length of 5.5 feet and a width of 0.6 feet. The wingspan of the cinema drone 1800 may be 8.8 feet with a wing area of ​​17.4 square feet with a wing loading of, for example, 4.3 pounds / square foot.

[0080] Figures 19A, 19B, and 19C show a front, side, and top view, respectively, of a transport aircraft 1900 including an array of propulsion fans, according to one embodiment. The transport aircraft 1900 is optionally a manned VTOL aircraft. The transport aircraft 1900 may be hybrid or fully electric. The transport aircraft 1900 may have a range of 20 to 60 nautical miles at an operating altitude of 1,000 to 2,000 feet and a cruising speed of 130 to 250 knots.

[0081] In one embodiment, the transport aircraft 1900 is a biplane with a slight negative stagger. The transport aircraft 1900 includes a first wing 1901 and a second wing 1903. An angle is formed between the two wings 1901 and 1903 toward the front of the fuselage 1905. In the example shown in Figures 19A to 19C, the wings may have a 5-degree dihedron and a -25-degree sweep. However, other angles may be used in different embodiments.

[0082] In one embodiment, the propulsion fan arrays are integrated into each wing 1901 and 1903. The first array of propulsion fans is located on the first side of the fuselage 1905 and integrated into the wing 1901, while the second array of propulsion fans is located on the second side of the fuselage 1905 and integrated into the wing 1903. For example, the array of propulsion fans included in wing 1901 includes propulsion fans 100A, 100B, 100C, and 100D, while the array of propulsion fans included in wing 1903 includes propulsion fans 100E, 100F, 100G, and 100H. Thus, half of the propulsion fans are located on the first side of the fuselage 1905, and the other half are located on the second side of the fuselage 1905. In the example shown in Figures 19A to 19C, the propulsion array includes eight propulsion fans, but any number of propulsion fans may be used.

[0083] In one embodiment, the transport aircraft 1900 has, in one example, a maximum takeoff weight of 1,000 pounds and a target maximum payload of 220 pounds. Each propulsion fan 100 may have a fan diameter of 1 foot with an increased disc loading of, for example, 6.0 pounds / square foot. The fuselage 1905 of the transport aircraft 1900 may have a length of 9.2 feet and a width of 3.75 feet. The wingspan of the transport aircraft 1900 may be 28.7 feet with a wing area of ​​106.3 square feet and a wing loading of 9.4 pounds / square foot.

[0084] Figures 20A, 20B, and 20C show front, side, and top views, respectively, of a vertical take-off and landing (VTOL) aircraft including a propulsion fan array according to one embodiment. The VTOL aircraft 2000 is optionally a manned VTOL aircraft. The VTOL aircraft 2000 may be hybrid or fully electric. The VTOL aircraft 2000 can fly in the range of 20 to 400 nautical miles at a cruising speed of 130 to 250 knots at an operating altitude of 1,000 to 2,000 feet. In one embodiment, the VTOL aircraft 2000 is capable of hovering.

[0085] In the example shown in Figures 20A to 20C, the VTOL aircraft 2000 is a biplane with a slight negative stagger. The VTOL aircraft 2000 includes a first wing 2001 and a second wing 2003. In one embodiment, an angle is formed between the two wings 2001, 2003 toward the front of the fuselage 2005. The wings 2001, 2003 may have a 5-degree dihedron and a -25-degree sweep. However, other angles may be used in different embodiments.

[0086] In one embodiment, the propulsion fan arrays are incorporated into the respective wings 2001 and 2003. The first array of propulsion fans is located on the first side of the fuselage 2005 and incorporated into the wing 2001, while the second array of propulsion fans is located on the second side of the fuselage 2005 and incorporated into the wing 2003. For example, the array of propulsion fans included in wing 2001 includes propulsion fans 100A, 100B, 100C, and 100D, while the array of propulsion fans included in wing 2003 includes propulsion fans 100E, 100F, 100G, and 100H. Thus, half of the propulsion fans are located on the first side of the fuselage 2005, and the other half are located on the second side of the fuselage 2005. In the example shown in Figures 20A to 20C, the propulsion array includes eight propulsion fans, but any number of propulsion fans can be used.

[0087] The VTOL aircraft 2000, in one example, has a maximum takeoff weight of 5,000 pounds and a target maximum payload of 1,000 pounds (e.g., 3-4 passengers). Each propulsion fan 100 may have a fan diameter of 5 feet with an increased disc loading of, for example, 11.0 pounds / square foot. The fuselage 2005 of the VTOL aircraft 2000 may have, for example, a length of 24.7 feet and a width of 5 feet. The wingspan of the VTOL aircraft 2000 may be 49 feet with a wing area of ​​300 square feet and a wing loading of, for example, 16.7 pounds / square foot.

[0088] Figures 21A, 21B, and 21C show a front, side, and top view, respectively, of a delivery drone 2100 including an array of propulsion fans, according to one embodiment. The delivery drone 2100 may have a 360-degree camera and sensors and may be used for hovering flight times exceeding 20 minutes. In one embodiment, the delivery drone 2100 may have a maximum cruising speed exceeding 50 mph.

[0089] The delivery drone 2100 is an example of an electric tailsitter VTOL drone configured to deliver cargo inside. In the example shown, the delivery drone 2100 is a biplane and has a neutral stagger. In one embodiment, the delivery drone 2100 includes a first wing 2101 and a second wing 2103 having an angular sweep formed between the two wings toward the rear of the fuselage 2105.

[0090] In one embodiment, the propulsion fan arrays are incorporated into the respective wings 2101 and 2103. The first array of propulsion fans is located on the first side of the fuselage 2105 and incorporated into the wing 2101, while the second array of propulsion fans is located on the second side of the fuselage 2105 and incorporated into the wing 2103. For example, the array of propulsion fans included in wing 2101 includes propulsion fans 100A, 100B, and 100C, while the array of propulsion fans included in wing 2103 includes propulsion fans 100D, 100E, and 100F. Thus, half of the propulsion fans are located on the first side of the fuselage 2105, and the other half are located on the second side of the fuselage 2105. In the example shown in Figures 21A to 21C, the propulsion array includes six propulsion fans, but any number of propulsion fans can be used.

[0091] In one example, the delivery drone 2100 has a maximum takeoff weight of 55 pounds and a target maximum payload of 5.5 pounds. Each propulsion fan 100 may have a fan diameter of 1 foot with an increased disc loading of, for example, 6.0 pounds / square foot. The fuselage 2105 of the delivery drone 2100 may have a length of 6.7 feet and a width of 1.3 feet. The wingspan of the delivery drone 2100 may be 8.8 feet with a wing area of ​​21.9 square feet with a wing loading of, for example, 2.5 pounds / square foot.

[0092] Freeblade Since the propulsion fan 100 described herein has a higher speed capability exceeding 150 mph, it is desirable to provide increased propulsion efficiency through either blade angle variability or mass flow adjustment. As mentioned above, the propulsion fan 100 includes a significantly higher number of blades than conventional propulsion systems. Implementing a typical variable-pitch propeller mechanism would be excessively burdensome in terms of mechanical complexity.

[0093] In one embodiment, the array of propulsion fans described above is incorporated into an aircraft using a free-wing blade structure. The free-wing blade structure may be implemented in any of the aircraft described above, for example, in Figures 17 to 21. For example, a free-wing blade is a propulsion fan that can rotate freely along its radial axis due to the mass balance in front of the aerodynamic center of each blade. That is, the blade fan 209 can rotate freely along their radial axes by balancing the mass in front of the aerodynamic center of each blade. The free-wing blade achieves the ability of the wing to freely turn by combining the airfoil design, wing mass balance, and wing pivot to self-trim to zero pitch moment at a constant CL under all flight conditions.

[0094] The combination of the free-blade structure and the propulsion fan 100 creates a passive system for variable blade angle of attack (AoA) while maintaining a constant blade load. This can provide a unique synergy to the electric motor-driven propulsion fan 100, as the electric motor can operate efficiently over a wide range of rpm. The electric motor can operate at higher or lower radial speeds over different inflow velocities, allowing the blades to "float" and align the AoA, maintaining the same trimmed lift coefficient (CL). This feature can also provide a value for achieving low noise, as a way to avoid blade stall, which results in high noise at different flight conditions and turbulence levels.

[0095] The use of free blades offers numerous advantages. For example, free blades are pitch-balanced so that they are always close to their L / DmaxCL (typically 0.5–1.0) at AoA by adding tip blade mass. This ensures that the blade AoA always coincides with the inflow and there is no separated flow. Furthermore, because they are rim-driven, mass balancing is possible in the propulsion fan 100 when the internal hub region is empty, providing volume in front of the blades (and not exposed to the flow) for the lightest mass balance counterweight. This allows the propulsion fan 100 to vary its rpm by approximately 50% in different flight sections, enabling the blades to always be close to their optimal forward ratio. Using free blades in combination with an electric motor is particularly advantageous because, unlike turbines or IC engines, electric motors have a wide range of rpms at high efficiency. Thus, while turbines or IC engines must operate at a fixed rpm for a given power, electric motors do not. This allows the propulsion to vary its rpm by approximately 50% in different flight sections, enabling the blades to always be close to their optimal forward ratio. Finally, free blades can also help enable larger VTOL integrations for wider AoA variation and thrust needs.

[0096] Circulation duct control In one embodiment, the circulation control mechanism is located in the duct lip 201. The circulation control mechanism is configured to blow a jet of air at the duct lip 201. By adding air to the duct lip 201, the amount of lip suction that the duct lip 201 can achieve is increased. In one embodiment, an electric motor combined with a centrifugal or axial compressor is embedded in the remaining duct volume to increase the blowing and / or suction of the circulation control at the duct lip 201. By applying Distributed Electric Propulsion (DEP) for the internal circulation control blowing at the duct lip 201, static and low-speed thrust enhancements can be achieved with lower power than adding additional power to the thruster. This internal application of DEP maximizes the benefits of aircraft integration at both the propulsion fan 100 and the aircraft integration level. Applying circulation control to the duct lip 201 increases static thrust by up to 40% at the same fan power, for example.

[0097] In one embodiment, an emergency power ram air turbine with high PR and intake velocity is required, which involves a high circulation-controlled jet blowing velocity (i.e., a jet with nearly sonic noise). A quiet, low-speed jet (~300 feet / sec) can be used, and power can be supplied by a small internal ducted electric centrifugal blower.

[0098] Lower-velocity recirculating jets can similarly impact thrust enhancement of the propeller, given the much lower PR and static duct inflow velocities. The effectiveness of recirculating control is a function of Vjet / Vintake. Another interesting aspect of recirculating duct lip blowouts is the avoidance of lip separation in the duct at high angles of attack (i.e., during transition). This is a critical consideration for ducted eVTOLs. If the intake flow separates at the duct lip, the fan blades experience oscillating flow conditions that result in periodic blade loading, leading to a significant increase in noise.

[0099] By applying circulation control to the duct lip 201 with a jet speed of approximately 300 feet / second, the duct lip suction force can be increased to account for approximately 75% of the total static thrust. Blowing air through the duct lip 201 effectively provides aerodynamic deformation of the duct lip, accompanied by additional ambient air. With the blow on, the incoming air can "see" a much larger bell mouth duct lip than desired under static conditions. Using a real bell mouth duct inlet would create significant resistance during cruising. The duct circulation control blow can be turned off during cruising flight if the blow is relatively ineffective. A compact high-speed centrifugal blower operates at an ultrasonic blade pass frequency and provides internal blowing. While the circulation control blow is most effective at high nozzle jet speeds (near the speed of sound is optimal), our nozzle jet is designed for low jet speeds to achieve low noise (jet noise varies up to the 10th power of nozzle speed). The goal of applying this to the tip of the duct is to maximize the inflow rotation angle and prevent stalling of the tip duct lip.

[0100] In one embodiment, a circulation control duct may be applied to a duct lip 201 in any of the aircraft embodiments discussed herein.

[0101] Any reference in this specification to “one embodiment” or “embodiment” means that a particular feature, structure, or characteristic is included in at least one embodiment of this disclosure. The phrase “in one embodiment” appearing in various parts of this specification does not necessarily refer to the same embodiment.

[0102] While this disclosure is shown and described in particular with reference to one embodiment and several alternative embodiments, it will be understood by those skilled in the art that various modifications of form and detail can be made without departing from the spirit and scope of the invention.

Claims

1. A method for operating a propulsion fan, I am a fan of the promotion, A first ring having a first diameter, A second ring having a second diameter larger than the first diameter, The apparatus comprises a large number of torsional blades extending radially between the first ring and the second ring and connected to the first ring and the second ring, wherein the first ring and the second ring apply tension to the torsional blades such that the pitch of the blades in operation is substantially the same as the pitch of the blades when stationary, and each torsional blade is A first end connected to the first ring at a first angle, To provide a propulsion fan comprising a second end opposite to the first end, the second end having a blade tip and connected to the second ring at a second angle different from the first angle, The propulsion fan is rotated at a blade tip speed of approximately 300 to 450 feet per second to provide an ultrasonic blade passing frequency, A method that includes this.

2. The method according to claim 1, wherein the ultrasonic blade passing frequency is between approximately 16,000 Hz and approximately 20,000 Hz.

3. The method according to claim 2, wherein the propulsion fan is rotated using a motor operating at approximately 20,000 revolutions per minute (RPM) to approximately 40,000 RPM.

4. The method according to claim 2, wherein each twisted blade has a wing between the first end and the second end.

5. The method according to claim 2, wherein a portion of each helical blade of the helical blade overlaps with a portion of another helical blade of the helical blade, and the twist of each helical blade begins at a position of the helical blade closer to the first ring than to the second ring.

6. The method according to claim 2, wherein the propulsion fan has a diameter between approximately 0.5 feet and approximately 5.5 feet.

7. The method according to claim 6, wherein the propulsion fan has a diameter between approximately 0.5 feet and approximately 1 foot.

8. The method according to claim 2, wherein the twisted blade comprises twisted blades between 20 and 840.

9. The method according to claim 8, wherein the twisted blade comprises between 20 and 50 twisted blades.

10. The method according to claim 2, wherein the first ring, the second ring, and the twisted blade are made of a composite material.

11. I am a fan of the promotion, A first ring having a first diameter, A second ring having a second diameter larger than the first diameter, A large number of twisted blades extend radially between the first ring and the second ring and are connected to the first ring and the second ring, Equipped with, The first and second rings are configured to apply tension to the torsion blades such that the pitch of the blades in operation is substantially the same as the pitch of the blades when stationary, and the numerous torsion blades are configured to provide an ultrasonic blade passage frequency based on the propulsion fan rotating at a blade tip velocity of approximately 300 to 450 feet per second, and each torsion blade is, A first end connected to the first ring at a first angle, A propulsion fan comprising a second end opposite to the first end, the second end having a blade tip and connected to the second ring at a second angle different from the first angle.

12. The propulsion fan according to claim 11, wherein the ultrasonic blade passing frequency is between approximately 16,000 Hz and approximately 20,000 Hz.

13. The propulsion fan according to claim 12, wherein the large number of twisted blades are configured to provide an ultrasonic blade passing frequency, further based on the fact that the propulsion fan is rotated by a motor operating at approximately 20,000 revolutions per minute (RPM) to approximately 40,000 RPM.

14. The propulsion fan according to claim 12, wherein each twisted blade has a wing between the first end and the second end.

15. The propulsion fan according to claim 12, wherein a portion of each twisted blade of the twisted blade overlaps with a portion of another twisted blade of the twisted blade, and the twist of each twisted blade begins at a position of the twisted blade closer to the first ring than to the second ring.

16. The propulsion fan according to claim 12, wherein the propulsion fan has a diameter between approximately 0.5 feet and approximately 5.5 feet.

17. The propulsion fan according to claim 16, wherein the propulsion fan has a diameter between approximately 0.5 feet and approximately 1 foot.

18. The propulsion fan according to claim 12, wherein the number of the twisted blades is between 20 and 840.

19. The propulsion fan according to claim 18, wherein the number of the twisted blades is between 20 and 50.

20. The propulsion fan according to claim 12, wherein the first ring, the second ring, and the twisted blade are made of a composite material.

Citation Information

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