Large-Scale Semi-Rigid Structure Airship
20220089269 · 2022-03-24
Inventors
- Wujun CHEN (Shanghai, CN)
- Gongyi Fu (Changzhou City, CN)
- Xiaoliang Wang (Changzhou City, CN)
- Yanguang Wang (Changzhou City, CN)
- Weizhi Wang (Changzhou City, CN)
- Jiandong XU (Changzhou City, CN)
- Lingchen Tang (Changzhou City, CN)
- Jun YANG (Changzhou City, CN)
Cpc classification
Y02T50/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B64B1/58
PERFORMING OPERATIONS; TRANSPORTING
International classification
B64B1/20
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention discloses a large-scale semi-rigid structure airship, relating to the technical field of aerostats, which comprises a ship body, vector side thrusters, a vector tail thruster, an X-shaped inflatable tail fin, air cushions, and a pod, wherein the ship body comprises a pretensioned capsule and a tensegrity keel; the pretensioned capsule is sleeved onto an outer surface of the tensegrity keel in a pretensioning mode; the vector side thrusters are provided at lower-side portions of the ship body; the vector tail thruster is provided at the tail of the ship body; the X-shaped inflatable tail fin is arranged at the tail of the ship body in an X shape; the air cushions are provided at lower portions of the ship body; and the pod is provided at a lower portion of the ship body. The airship of the present invention uses a structure of integrated and synergistic force bearing by an integral keel of a tension-compression self-balancing system and the pretensioned capsule, and has characteristics of integral conformity of the capsule under a zero pressure, an integral rigidity under a low pressure, high load bearing, a flexible load arrangement, and high-efficiency transfer.
Claims
1. A large-scale semi-rigid structure airship, comprising a ship body, vector side thrusters, a vector tail thruster, an X-shaped inflatable tail fin, air cushions, and a pod, wherein the ship body comprises a pretensioned capsule and a tensegrity keel; the pretensioned capsule is sleeved onto an outer surface of the tensegrity keel in a pretensioning mode; the vector side thrusters are provided at lower-side portions of the ship body; the vector tail thruster is provided at the tail of the ship body; the X-shaped inflatable tail fin is arranged at the tail of the ship body in an X shape; the air cushions are provided at lower portions of the ship body; and the pod is provided at a lower portion of the ship body.
2. The large-scale semi-rigid structure airship of claim 1, characterized in that the tensegrity keel comprises stiffening rings, longitudinal tie rods and shuttle-shaped truss mandrels, wherein the stiffening ring is in a shape of a hub and comprises a circumferential triangular truss, radial tie rods, and a spindle-shaped and thin-walled tube shaft bossing; the circumferential triangular truss is provided on an outer circumference of the stiffening ring, and has a complete circular structure; the spindle-shaped and thin-walled tube shaft bossing is provided at the center of the stiffening ring; the central axis of the spindle-shaped and thin-walled tube shaft bossing, the central axis of the stiffening ring and the central axis of the tensegrity keel coincide; the radial tie rods connect an inner ring of the circumferential triangular truss and the spindle-shaped and thin-walled tube shaft bossing; the radial tie rods are evenly arranged in the circumferential direction of the stiffening ring; the radial tie rods are arranged symmetrically in two layers along the central plane of the stiffening ring; the circumferential triangular truss, the radial tie rods and the spindle-shaped and thin-walled tube shaft bossing form a self-balancing force system; the shuttle-shaped truss mandrels are provided along the central axis of the tensegrity keel; the longitudinal tie rods are provided on an outer ring of the circumferential triangular truss; and the stiffening ring, the longitudinal tie rods and the shuttle-shaped truss mandrel constitute a tension-compression self-balancing system.
3. The large-scale semi-rigid structure airship of claim 2, characterized in that the tensegrity keel comprises a plurality of the stiffening rings, and the stiffening rings are provided in parallel; the stiffening rings provided in the middle of the tensegrity keel are equidistantly arranged along the central axis of the tensegrity keel, and the diameters of the stiffening rings provided in the middle of the tensegrity keel are equal and larger than the diameters of the stiffening rings provided at head and tail ends of the tensegrity keel; and the number of the stiffening rings provided in the middle of the tensegrity keel is greater than or equal to 5 and less than or equal to 8.
4. The large-scale semi-rigid structure airship of claim 3, characterized in that the tensegrity keel comprises multiple sections of the shuttle-shaped truss mandrels, and the shuttle-shaped truss mandrels are sequentially connected to a nose cone at the ship head of the ship body, the spindle-shaped and thin-walled tube shaft bossings of the various stiffening rings, and a stern cone at the ship tail of the ship body, thus forming a mandrel from the ship head to the ship tail of the ship body.
5. The large-scale semi-rigid structure airship of claim 4, characterized in that the longitudinal tie rods are sequentially connected to the nose cone at the ship head of the ship body, the circumferential triangular trusses of the various stiffening rings, and the stern cone at the ship tail of the ship body; and the longitudinal tie rods are evenly provided in the circumferential directions of the circumferential triangular trusses, and the longitudinal tie rods correspond to the radial tie rods one by one.
6. The large-scale semi-rigid structure airship of claim 5, characterized in that the pretensioned capsule is a combined geometric body, the head of the pretensioned capsule is hemispherical, the middle portion of the pretensioned capsule is cylindrical, and the tail of the pretensioned capsule is conical.
7. The large-scale semi-rigid structure airship of claim 6, characterized in that the air cushions have double-layer and multi-air chamber structures, the supporting structures of the air cushions are connected to lower portions of the circumferential triangular trusses, two or three groups of air cushions are evenly provided in the fore and aft direction of the ship body, and each group of the air cushions are arranged symmetrically in the left and right directions of the ship body.
8. The large-scale semi-rigid structure airship of claim 7, characterized in that the supporting structure of the X-shaped inflatable tail fin is connected to the circumferential triangular truss; and the vector tail thruster realizes omnidirectional vector rotation, and the supporting structure of the vector tail thruster is connected to the shuttle-shaped truss mandrel.
9. The large-scale semi-rigid structure airship of claim 8, characterized in that the vector side thrusters realize pitch vector rotation, and the number of the vector side thrusters is 4, which are respectively provided at ±120° of the stiffening rings at the head and tail of the ship body; and the pod has a distributed structure, and the supporting structure of the pod is connected to two or three stiffening rings in a hanging manner.
10. The large-scale semi-rigid structure airship of claim 9, characterized by further comprising a solar cell array, cells of the solar cell array are semi-flexible monocrystalline cells, and the solar cell array is modularly embedded and connected to an upper portion of the pretensioned capsule.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024]
[0025]
[0026]
[0027]
[0028] In the figures: 1—pretensioned capsule; 2—tensegrity keel; 3—vector side thruster; 4—vector tail thruster; 5—X-shaped inflatable tail fin; 6—air cushion; 7—pod; 8—solar cell array; 201—stiffening ring, 202—longitudinal tie rod, 203—shuttle-shaped truss mandrel, 204—nose cone at ship head, 205—stern cone at ship tail; 20101—circumferential triangular truss, 20102—radial tie rod, 20103—spindle-shaped and thin-walled tube shaft bossing; 2010101—outer ring of circumferential triangular truss; 2010102—inner ring of circumferential triangular truss.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0029] Preferred embodiments of the present invention are described below with reference to the drawings of the description to make the technical contents clearer and easier to understand. The present invention can be embodied in various forms of embodiments, and the scope of protection of the present invention is not limited to the embodiments mentioned herein.
[0030] In the drawings, the same numeral indicates components having the same structure, and similar numerals indicate assemblies having similar structures or functions throughout. The size and thickness of each assembly shown in the drawings are shown arbitrarily, and the size and thickness of each assembly are not limited in the present application. In order to make the illustration clearer, the thickness of the component in some places of the drawings is appropriately exaggerated.
[0031] As shown in
[0032] As shown in
[0033] As shown in
[0034] The tensegrity keel 2 comprises multiple sections of shuttle-shaped truss mandrels 203, and the various sections of the shuttle-shaped truss mandrels 203 are sequentially connected to a nose cone 204 at the ship head of the ship body, the spindle-shaped and thin-walled tube shaft bossings 20103 of the various stiffening rings 201, and a stern cone 205 at the ship tail of the ship body, thus forming a mandrel from the ship head to the ship tail of the ship body.
[0035] The longitudinal tie rods 202 are sequentially connected to the nose cone at the ship head of the ship body, the circumferential triangular trusses 20101 of the various stiffening rings 201, and the stern cone at the ship tail of the ship body. The longitudinal tie rods 202 are evenly provided in the circumferential directions of the circumferential triangular trusses 20101, and the longitudinal tie rods 202 correspond to the radial tie rods 20102 one by one.
[0036] As shown in
[0037] The vector side thrusters 3 are provided at lower-side portions of the ship body; the vector tail thruster 4 is provided at the tail of the ship body; the X-shaped inflatable tail fin 5 is arranged at the tail of the ship body in an X shape; the air cushions 6 are provided at lower portions of the ship body; and the pod 7 is provided at a lower portion of the ship body.
[0038] The vector side thrusters 3 realize pitch vector rotation, and the number of the vector side thrusters 3 is 4, which are respectively provided at ±120° of the stiffening rings 201 at the head and tail of the ship body. The vector tail thruster 4 realizes omnidirectional vector rotation, and the supporting structure of the vector tail thruster 4 is connected to the shuttle-shaped truss mandrel 203. The supporting structure of the X-shaped inflatable tail fin 5 is connected to the circumferential triangular truss 20101, and the X-shaped inflatable tail fin 5 is an inflatable tail fin without a rudder control surface.
[0039] The air cushions 6 have double-layer and multi-air chamber structures. The supporting structures of the air cushions 6 are connected to lower portions of the circumferential triangular trusses 20101. Two or three groups of air cushions 6 are evenly provided in the fore and aft direction of the ship body. In this embodiment, there are preferably three groups of air cushions. Each group of the air cushions 6 are arranged symmetrically in the left and right directions of the ship body.
[0040] The pod 7 has a distributed structure, and the supporting structure of the pod 7 is connected to two stiffening rings in a hanging manner.
[0041] Cells of the solar cell array 8 are semi-flexible monocrystalline cells, and the solar cell array 8 is modularly embedded and connected to an upper portion of the pretensioned capsule 1.
[0042] In this embodiment, the pretensioned capsule 1 can be made of a composite fabric film with a high specific strength and a multi-functional layer, the tensegrity keel 2 can be made of CFRP thin-walled tubes and tie rods, and specific parameters of various members of the tensegrity keel 2 can be determined according to mechanical parameters of the structure.
[0043] The large-scale semi-rigid structure airship disclosed in the present invention has low aerodynamic damping, and each functional module adopts a modular and standardized design, which is easy to manufacture and integrate, and has a low cost. The pretensioned capsule 1 adopts a strain compensation design, which is integrated with the tensegrity keel 2 through pretensioning, so as to realize synergistic force bearing by the tensegrity keel 2 and the pretensioned capsule 1, which has characteristics of integral conformity of the capsule under a zero pressure, an integral rigidity and high load bearing under a low pressure, and has advantages of a flexible load arrangement, high-efficiency transfer, and a low difficulty for overall control.
[0044] The preferred and specific embodiments of the present invention have been described in detail above. It should be understood that a person of ordinary skill in the art would be able to make various modifications and variations according to the concept of the present invention without involving any inventive effort. Therefore, any technical solution that can be obtained by a person skilled in the art by means of logical analysis, reasoning or limited trials on the basis of the prior art and according to the concept of the present invention should fall within the scope of protection defined by the claims.