Tube transport system for very high vehicle speeds and method for operating the tube transport system
The nested tube system with a choking effect and directional vehicle movement efficiently achieves high vacuum conditions, overcoming aerodynamic limitations and reducing tunnel diameters, enabling high-speed transportation.
Patent Information
- Application Number
- JP2023549133
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-10-26
- Filing Date
- 2021-10-26
- Publication Date
- 2026-04-16
- Estimated Expiration
- 2041-10-26
AI Technical Summary
Existing high-speed tube transport systems face limitations due to aerodynamic drag and the economic infeasibility of maintaining low pressures below 100 Pa, which hinder the achievement of speeds beyond the 'Kantrowitz limit', and current methods for vacuuming and sealing tubes are impractical for long distances.
A method involving a nested tube system with a choking effect to efficiently reduce and maintain pressure levels below 0.1 Pa by utilizing the annular gap between the vehicle and the inner tube, allowing gas particles to be compressed and extracted, and a vehicle that moves in both directions to achieve high vacuum conditions.
Enables high-speed transportation without aerodynamic resistance, reduces the number of vacuum pumps and seals, and allows for smaller tunnel diameters, improving system stability and reducing travel time.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a tube transport system for very high vehicle speeds and a method for operating such a system under high vacuum. Furthermore, the present invention relates to a tube transport system including a specific tube assembly. The tube assembly is suitable for operating as a standalone system above ground and, with adaptation, can also operate underground or inside tunnels, as well as underwater or on water. [Background technology]
[0002] High-speed tube transport systems under depressurized or pneumatic systems have been used and discussed for approximately 200 years. In 1799, George Medhurst proposed using pressurized air to move goods through steel pipes. In the late 19th century, several pneumatic railway systems operated in London, Dublin, New York, and Paris. In the early 20th century, rocket scientist Robert Goddard designed a magnetically levitating train in a sealed tunnel. In a comprehensive study conducted by Swissmetro from 1989 to 1998, Swissmetro made a very serious attempt to realize such a system. Due to political and financial priorities, this project was postponed. In 2012, Elon Musk revived the idea of high-speed tube transport systems under depressurized conditions by publishing a white paper outlining the idea of Hyperloop®. Hyperloop® was conceived as an open-source research project, attracting a group of scientists and companies to work on the best concept of a magnetic train under depressurized conditions. To the best of our knowledge, all vehicles in these systems operate under reduced drag within a sealed, depressurized tube system. The purpose is to transport passengers at high speeds in short travel times.
[0003] In the latest Hyperloop® concepts, the maximum speed of a vehicle is considered to be physically or economically limited by the so-called "Kantrowitz limit." This refers to the aerodynamic phenomenon called "choking," which occurs when the flow in the annular gap between the vehicle and the tunnel reaches the speed of sound. To increase feasible vehicle speeds, such systems operate under reduced pressure, with the pressure level as low as 100 Pa, i.e., the density is 1 / 1000th of that at atmospheric pressure. As described in U.S. Patents 10,286,927 and 10,286,928, in the tubes holding the vehicle, helium and hydrogen have speeds of sound of approximately 1000 m / s and 1300 m / s, respectively, so it has been proposed to combine the use of low pressure with the use of helium, hydrogen, or mixtures thereof.
[0004] Furthermore, the problem of friction between rails and wheels in high-speed tube transport systems is often addressed by magnetic levitation, as described, for example, in U.S. Patent No. 1020942. [Overview of the project] [Problems that the invention aims to solve]
[0005] Despite its long history, unique technical methods, and immense effort, there is no record of such a high-speed tube transport system ever being realized. The biggest obstacle appears to be aerodynamics. To date, the general understanding is that vehicle speeds cannot exceed the "Kantrowitz limit" (a term used to refer to the first occurrence of choking), and that lowering pressure levels below 100 Pa is not economically feasible.
[0006] The central method of this invention is suitable and necessary for overcoming these limitations. It is proposed to further reduce the pressure level so that a vehicle can move without aerodynamic resistance within a sealed tunnel system, i.e., until the Knudsen number exceeds 1.
[0007] While I agree that maintaining a high vacuum is difficult, high-speed transport in a partially depressurized tube presents aerodynamic problems. These problems appear to hinder the realization of such systems, even at the low pressure levels of around 100 Pa discussed. As an attempt to reduce far-field aerodynamics, Rudolf (thesis 1806, EPFL, Switzerland, 1998) proposed using a turbine to push air through the vehicle rather than flowing air around it to create pressure waves. This idea has been reiterated in Elon Musk's white paper from 2012 and in U.S. Patent No. 9,511,959 from 2016.
[0008] Compared to other inventions in this field, this replaces the challenge of defying aerodynamics under cruising conditions with the challenge of efficiently creating and maintaining a high vacuum. In return, this method offers the following advantages: no aerodynamic influence during cruising, reduced and predictable load on the tube system, smaller tunnel diameter, improved system stability, symmetrical arrangement of the entire system, reduced number of vacuum pumps and seals, no aerodynamic speed limitations, lower thrust, reduced travel time, and smaller vehicle size. Furthermore, there are no leaks at emergency exits and stations, and the time required for vacuuming or replacement can be reduced.
[0009] Hyperloop is a recent proposal for a high-speed vacuum tube transport system, which is proposed to operate at a pressure of approximately 100 Pa, as disclosed in general terms in U.S. Patents 5,950,543 and 9,511,959. Vacuuming the tubes and maintaining the vacuum within them at levels below 100 Pa has clearly proven impractical, especially when the length of the tube path is several hundred kilometers. The initial vacuuming of the tubes can require significant investment due to the number of vacuum pumps, seals, control devices, and energy needed to achieve the required pressure levels within the tubes.
[0010] To maintain the required pressure, all air that has entered the system due to leaks must be evacuated. Leaks are a major concern in all vacuum tube transport systems, and it has not yet been shown whether the methods currently employed can achieve the target pressure level of 100 Pa in a full-size Hyperloop test facility. In principle, commercially available vacuum pumps can be used to vacuum the tubes. The number of vacuum pumps required and the energy required depend on the volume of tubes to be vacuumed, the degree of vacuum to be achieved, leaks, and the time it takes to initially vacuum the volume of those tubes.
[0011] Leaks can occur through seals at vacuum pumps, emergency exits, joints, or doors at stations, and this increases with the diameter of the tubing. A fundamental challenge in all current Hyperloop concepts is the number of seals required to isolate the inside of the tubing from ambient conditions.
[0012] US10,538,254B2 addresses the above problem by vacuuming the tubing for a high-speed vacuum transport system using only a vehicle. Sweeping particles using a vehicle reduces the number of expensive vacuum pumps and pressure seals. US10,538,254B2 also includes a more lenient means with respect to the dimensions of the gap between the inner surface of the tubing and the outer surface of the vacuum tubing vehicle used to vacuum the tubing. Thus, US10,538,254B2 discloses a vacuum transport tubing system and a method for vacuuming vacuum transport tubing with a dedicated vehicle. The vehicle has a first end having a first end outer surface. An annular gap is formed between the first end outer surface and the inner surface of the vacuum transport tubing. The vehicle has a second end having a second end outer diameter and a body in the form of a piston with a structural framework. The vehicle has an orifice extending from a first inlet to a second outlet at the first end of the vehicle. Airflow passes through an annular gap and an orifice from the front to the rear of the vehicle. The vehicle reduces the pressure in each successive path by expanding the air in the rear zone of the vehicle and drawing compressed air out of the tube until the desired pressure is achieved inside the tube and the desired vacuum level is created.
[0013] The US10,538,254B2 method requires a dedicated wheeled vehicle to sweep gas particles from the internal space of the tube. Furthermore, to create a pressure difference in the space ahead of and behind the vehicle, the gas particles must not only flow from the front orifice through the vehicle to the rear orifice, but also through the annular gap between the vehicle and the inner wall of the tunnel. The panels surrounding the vehicle can be dynamically designed to adapt to the unevenness of the tunnel diameter. These panels allow air to flow between the panels on the outer wall of the vehicle. This vehicle aims to produce the vacuum level required in the current Hyperloop project, namely approximately 100 Pa, but how this method can produce such a high vacuum is not disclosed. Because this method requires flow from the front to the rear of the vehicle, a large amount of gas particles will always remain in the system. Therefore, this method is not suitable for achieving a gaseous environment of Kn>1 or for vehicle speeds exceeding the speed of sound of the gas mixture used. [Means for solving the problem]
[0014] This invention discloses a specific method for efficiently generating and maintaining a high vacuum and for operating a vehicle at very high speeds within a tube system.
[0015] According to a first aspect, the present invention is a method for operating a tube transport system, the tube transport system is (a) A tube assembly, (a-1) Outer tube, (a-2) One or more inner tubes housed and held within the outer tube such that an annular space is formed between adjacent tubes, and (a-3) Support structure for holding the outer tube, Includes, It has an inner wall surface that receives a vehicle and defines an internal space for guiding the vehicle along a path extending from a first end of the tube assembly to a second end on the opposite side, A tube assembly having one or more pressure valves or nozzles for releasing gas particles from an internal space, (b) A vehicle having an outer wall surface that defines an annular gap between the outer wall surface of the vehicle and the inner wall of the tube assembly, comprising, The method comprises, (i) Moving the vehicle along a path towards a first end at a speed exceeding the choking limit of the gas particle flow in the annular gap while releasing gas particles from the internal space of the tube assembly in front of the vehicle, and subsequently, (ii) Reversing the direction of movement and moving the vehicle along a path towards a second end at a speed exceeding the choking limit of the gas particle flow in the annular gap while removing gas particles from the internal space of the tube assembly in front of the vehicle. A method is provided that includes these steps.
[0016] According to a second aspect, the present invention is a tube transport system, (a) A tube assembly comprising, (a-1) An outer tube, (a-2) One or more inner tubes housed and held within the outer tube such that an annular space is formed between adjacent tubes, and (a-3) A support structure for holding the outer tube, comprising, Having an inner wall surface that defines an internal space for receiving a vehicle and guiding the vehicle along a path extending from a first end of the tube assembly to an opposite second end, A tube assembly having one or more pressure valves or nozzles for removing gas particles from the internal space, (b) A vehicle having an outer wall surface that defines an annular gap between the outer wall surface of the vehicle and the inner wall of the tube assembly, A tube transport system is provided that includes these components.
[0017] The method of the present invention is suitable for efficiently providing a high vacuum (pressure less than 0.1 Pa) in a tube for receiving and guiding high-speed vehicles in a tube transport system. The tube transport system disclosed herein provides efficient and safe transport of passengers or goods at speeds far exceeding those hitherto discussed in similar systems.
[0018] To achieve the above object, · the choking effect in the annular gap between the vehicle and the tube surrounding it, and · several nested aerodynamically corresponding tubes in which the pressure level decreases radially, are proposed for use, and these are central aspects disclosed in the present invention.
[0019] By utilizing the choking effect in the annular gap between the vehicle and the inner surface of the tube surrounding it, the flow around the vehicle is restricted. Thus, more fluid particles gather in the space between the front of the vehicle and the corresponding tube end, where they can be efficiently released or extracted at high density. When the vehicle passes several times in both directions, the inside of the inner tube reaches a low pressure. Under this operating condition, all fluid particles passing through the vehicle can be extracted through the side openings, stored in the vehicle, or exhausted in front of the vehicle, where the fluid particles are compressed and can be released or extracted from the inner tube.
[0020] This method is necessary and sufficient to reach and maintain the pressure level required for the operation of the vehicle without friction. This applies when the mean free path of the gas particles is longer than the width of the annular gap between the vehicle and the inner surface of the tube surrounding it, i.e., when the Knudsen number exceeds 1 (Kn > 1) or the pressure is between 0.1 Pa and 10 -7 Pa.
[0021] This invention is based on the recognition that a high vacuum can be achieved in a tube transport system by utilizing the choking effect in the annular gap between the vehicle and the inner surface of the inner tube. When a high vacuum is achieved, the Knudsen number exceeds 1, and the vehicle moves without friction. Furthermore, this invention proposes the use of a nested tube system to allow for a gradual increase in pressure from the inner tube to the outside. Both the multilayer tube system and the utilization of the choking effect are central aspects of the tube transport system and its use disclosed herein.
[0022] Choke flow acts as a seal, restricting the flow around the vehicle. As a result, the gas in front of the vehicle is compressed, and the gas behind the vehicle expands.
[0023] As long as the pressure inside the inner tube remains high, choking occurs when the vehicle is moving at a relatively low speed in the first direction. At this stage, air must be released or extracted from the positive pressure side into the adjacent annular space. By repeating the step in the opposite second direction and repeating the step again, a very low pressure level can be obtained, enabling efficient and safe transport at very high speeds using the vehicle of the present invention.
[0024] When a vehicle cruises at very high speeds under high vacuum, the choking effect concentrates a small number of gas particles present in the inner tubes in locations adjacent to the vehicle. Furthermore, the choke creates flow conditions determined by velocity and density. At this stage, the choking effect can be efficiently utilized by extracting the gas particles from the choked region into the vehicle and storing them within the vehicle.
[0025] A low pressure level can be enabled and maintained based on a tube assembly having at least an annular space between the outer tube and the inner tube, and a reduced pressure can be established and maintained within the annular space, which is in fluid flow communication with the inner space to receive gas particles released from the inner space of the tube assembly.
[0026] The tube transport system of the present invention includes a high-speed vehicle, preferably using magnetic force for guidance and propulsion, within a closed system operating under vacuum. The tube transport system of the present invention operates at very low pressure levels, i.e., in an environment where the mean free path of air particles is on the order of the characteristic dimensions of the vehicle, particularly the width of the annular gap. Thus, the Knudsen number exceeds 1 at a pressure level of at most 0.1 Pa, preferably about 0.0001 Pa, which corresponds to the pressure at an altitude of about 200 km, thereby eliminating aerodynamic drag and enabling substantial high speeds up to a comfortable level. [Brief explanation of the drawing]
[0027] [Figure 1] This figure schematically shows the tube transport system 100 of the present invention for use in the method of the present invention. [Figure 2a] This diagram schematically shows a vehicle 6 moving from a first end 7 to a second end 8 within the tube transport system of the present invention. [Figure 2b] This diagram schematically shows a vehicle 6 moving from a second end 8 to a first end 7 within the tube transport system of the present invention. [Figure 3] This figure schematically shows a cross-section of a tube assembly 101 of the tube transport system of the present invention, which has electrical equipment used to guide and propel vehicle 6. [Figure 4] This figure schematically shows a tube assembly 101 of the present invention having an outer tube 1 and an inner tube 2. [Figure 5] This diagram schematically illustrates the method of loading / unloading the payload 22 onto vehicle 6. [Figure 6] This figure shows one embodiment of a method for operating a security vehicle 29 in front of and behind a passenger vehicle 6. [Figure 7] This figure shows the state of choke flow in an annular gap 11 with a width of 14. [Figure 8] This diagram illustrates an emergency braking method that involves exhausting gas particles stored in the gas tank 23 to the front of the vehicle, creating a choke flow in the annular gap. [Figure 9] This represents gas particles moving freely in space, where each gas particle travels a specific distance (free path) before colliding with another particle. [Figure 10] This figure shows three different flow states related to the present invention. [Modes for carrying out the invention]
[0028] Generally, the Knudsen number is a dimensionless number defined as the ratio of the mean free path length of molecules to a typical physical length scale. For the purposes of this invention, the Knudsen number is defined as the ratio of the mean free path length of gas particles in an annular gap to the maximum width of the annular gap.
[0029] The mean free path L is determined by the following equation: L = μ / ρ(πK) B T / 2m) -1 / 2 Here, μ is the kinematic viscosity, ρ is the density, and K B is the Boltzmann constant, T is the thermodynamic temperature, and m is the molecular mass of the gas particle. For the purposes of this invention, it is sufficient to determine the mean free path with an accuracy of 10 cm.
[0030] In relation to the present invention, the ambient pressure outside the tube is the atmospheric pressure near sea level, i.e., about 100 kPa. High vacuum is generally 0.1 Pa to 10 -7 This refers to a pressure level in Pa.
[0031] The vacuum tube transport system of the present invention operates under high vacuum, preferably 10 -1 ~10 -4 It operates under a pressure of Pa. The process of compressing the air in front of one or more vehicles and releasing or extracting the air there over several cycles is preparation for operating conditions. The pressure level in the annular space formed by the nested tubes during normal operation is between the ambient pressure and the high vacuum of the internal space. Before reaching operating conditions, gas particles from the inner tube can be pushed out of the inner tube into the adjacent annular space, creating a pressure level in the inner tube and annular space that temporarily exceeds the ambient pressure.
[0032] The method for operating the tube transport system of the present invention assumes the use of the choking effect to efficiently and sufficiently compress air and sweep away residual gas particles from the system. This is used in the following stages of operating the tube transport system: 1) When the pressure level of the tube receiving the vehicle still exceeds the operating conditions and the tube is evacuated, 2) When the tube receiving the vehicle is already evacuated, and there is a leak and gas particles need to be continuously removed while the vehicle is operating under operating conditions, i.e., cruising at a very high speed under a high vacuum.
[0033] The tube transport system includes a tube assembly for receiving one or more vehicles. The tube assembly has an inner tube diameter which can be selected to be preferably at most 2.0 m, more preferably at most 1.5 m. The tube assembly consists of two or more layers of different pressures. In a double-layer outer wall, a first inner tube is housed within another slightly larger outer tube such that an annular space is formed between the inner tube and the outer tube. The thickness of the tube walls depends on the material used for the tube and is usually independently selected in the range of 1 cm to 10 cm, more preferably 2 to 5 cm. The width of the annular space may be in the range of 1 cm to 20 cm, more preferably 5 cm to 10 cm. Furthermore, the inner tube forms an internal space for transport.
[0034] Regarding operating conditions, the pressure level in the internal space used for transport is preferably 0.1 Pa to 10 -4 The pressure is reduced to Pa. The annular space surrounding the inner tube maintains a pressure level of 10 Pa to 100 Pa, which corresponds to the current operating pressure level of Hyperloop®. If other annular spaces exist, their pressures will be between that of the first annular space and the ambient conditions.
[0035] The material of the tube is not particularly limited, as long as it has very little leakage, can withstand the forces due to pressure differences and lateral acceleration of the vehicle, and provides a satisfactory level of protection against external influences. Examples of materials include aluminum, carbon fiber reinforced plastic (GFP), glass fiber reinforced concrete (GFC), magnesium, titanium, or combinations of the aforementioned materials.
[0036] Without excessively obstructing the flow along each annular space, the annular spaces can be filled with honeycomb or riblet structures, or any bulk material; for example, sand or spheres can be filled between adjacent tubes to increase rigidity. The annular spaces can also be filled with a gas mixture suitable for improving the maintenance of a high vacuum in the inner tubes, supporting the vacuuming process, and improving the aerodynamic properties of the vehicle.
[0037] The complete tube assembly connects via the outer tube to elevated guideways, tunnels, or suspension supports above or below the water surface. The inner tube contains the electromechanical equipment necessary for vehicle guidance and propulsion, as well as sensors for early and reliable detection of abnormal operating conditions. The connections between the tube walls and the external or internal equipment must transmit the necessary forces and be designed to avoid leakage.
[0038] The method of the present invention involves propelling and guiding one or more vehicles in a tube at a maximum speed preferably of at least 80 m / s, while controlling the mean free path of any gas particles present in the tube to be longer than the annular gap by sweeping gas particles with one or more propelled vehicles. More preferably, the maximum speed is at least 300 m / s, and even more preferably, the maximum speed is at least 1000 m / s.
[0039] How to operate a tube transport system The present invention relates to a method of operating a tube transport system. This method can be used for transporting passengers or goods over a specific distance. Preferably, the distance is at least 5 km, more preferably at least 50 km. The maximum distance is not particularly limited as long as a suitable tube assembly can be provided. Thus, the distance can be up to 100 km, preferably up to 1000 km, or more.
[0040] The tube transport system includes a tube assembly and one or more vehicles. The tube assembly is used to receive vehicles and guide them along a path.
[0041] The tube assembly includes an outer tube. The outer tube needs to withstand atmospheric pressure when the interior is in a vacuum state.
[0042] The tube assembly includes one or more inner tubes housed and held within the outer tube such that an annular space is formed between adjacent tubes. According to the present invention, the diameter of the tube can be reduced to about 1.5 m, and it would be preferable for it to consist of a double-layer outer wall (or one tube is inserted into another slightly larger tube). Both the diameter and the double-layer wall contribute to a very robust and safe environment for passenger vehicles.
[0043] The outer ring preferably maintains a pressure level of about 100 - 1000 Pa, and the pressure inside the inner tube is preferably reduced to 0.0001 Pa = 10 -4 Pa. The material of the tube must withstand the aforementioned pressure difference, and forces due to the lateral and longitudinal accelerations of the vehicle are also applied.
[0044] One or more annular spaces are in fluid flow communication with an internal space through control means such as valves, orifices, or nozzles and pumps, and the fluid flow between the annular spaces can be suppressed or maintained through the control means to create a controlled pressure drop between adjacent annular spaces and the internal space, thereby the pressure in the annular space is between the ambient pressure and the pressure level in the internal space.
[0045] Preferably, one or more inner tubes and / or outer tubes are made of aluminum, glass fiber reinforced plastic (GRP), glass fiber reinforced concrete (GFRC), carbon fiber, titanium, magnesium, or any combination thereof.
[0046] Preferably, one or more annular gaps accommodate a filler that partially fills the annular gaps, while allowing fluid flow communication along the path.
[0047] The tube assembly includes support structures for holding the outer tube. The outer tube is connected to the support structure of an elevated guideway or tunnel. The inner tube contains the mechanical equipment necessary for guiding and propelling vehicles. The connections between the tube walls and the external or internal equipment must transmit the necessary forces and be designed to avoid leakage.
[0048] The tube assembly has an inner wall surface that defines an internal space for receiving a vehicle and guiding the vehicle along a path extending from a first end of the tube assembly to a second end on the opposite side.
[0049] The tube assembly has one or more pressure valves or nozzles for releasing gas particles from the internal space.
[0050] Preferably, the electromagnetic guide and propulsion system components installed in the inner tube provide further stability to the inner tube. This can preferably be achieved by grouting flat conductive materials into an artificial resin and then mounting them around the entire circumference of the inner surface of the inner tube.
[0051] Preferably, the electromagnetic guide and propulsion system components installed on the vehicle provide further stability to the vehicle body. Similar to reinforcing tubes, the electromagnetic guide and propulsion system can be grouted in artificial resin and mounted around the entire circumference of the vehicle body.
[0052] Preferably, the electromagnetic guide and propulsion system components installed in the inner tube are positioned symmetrically along the tube to keep the vehicle centered within the tube. This symmetrical arrangement with respect to the tube allows for full utilization of the available perimeter for powerful propulsion, guidance, and rigidity.
[0053] Preferably, the electromagnetic guidance and propulsion system components installed on the vehicle are symmetrically positioned along the vehicle to keep the vehicle centered in the tube. This symmetrical arrangement with respect to the vehicle body allows for full utilization of the available perimeter for powerful propulsion, guidance, and rigidity.
[0054] The tube transport system further includes a vehicle having an outer wall surface that defines an annular gap between the outer wall surface of the vehicle and the inner wall of the tube assembly.
[0055] Preferably, the vehicle comprises a cylindrical housing that encloses one or more compartments for payload (passengers or goods) and one or more service compartments, and has openable and sealable ports for accessing the passenger compartments.
[0056] Furthermore, the passenger vehicle is equipped with one or more seats adapted to be removed from passenger compartments for boarding and alighting passengers, and the seats are adapted to be secured to the cylindrical housing of the passenger compartment when passengers are present.
[0057] Preferably, the vehicle further comprises one or more orifices into an annular space for extracting gaseous particles along the vehicle to be stored in a tank in the service compartment of the housing.
[0058] Preferably, the inner surface of the vehicle housing is provided with a thin luminescent layer that enables the display of virtual reality using hologram technology that allows for changes in color and brightness, or to give passengers a sense of depth.
[0059] Preferably, the vehicle further comprises a system that uses flat surfaces to generate sound and to convey verbal information or music to passengers.
[0060] Preferably, passenger seats can be moved to improve comfort and the driving experience. This refers to moving passenger seats to balance lateral acceleration and adapt to the displayed virtual reality.
[0061] Preferably, the vehicle is equipped with a device for opening the housing from the inside in an emergency and freeing the passenger compartment from the housing.
[0062] Preferably, the vehicle is equipped with a braking system that uses a gas cushion created by exhausting stored gas particles.
[0063] Preferably, the vehicle is equipped with electrical equipment for propulsion and guidance.
[0064] Preferably, the vehicle is equipped with electrical equipment for transmitting and storing electrical energy from the outside to the inside by sliding contact or wireless means.
[0065] Lighter vehicles are preferable because lightness is essential for them to reach their maximum speed with reasonable energy requirements. Very low pressure levels and the elimination of running aerodynamics are prerequisites for lightweight vehicles.
[0066] The vehicle does not require an aerodynamic shape and preferably has a cylindrical shape adapted to the necessary technical equipment to be mounted. The vehicle may be divided at the top for the payload, i.e., passengers or goods, so that the lower part can be used for electromagnetic equipment necessary for propulsion. Further technical equipment such as a vacuum pump, emergency brakes, and tools for emergency escape may be included at the ends. Further guidance equipment may be added along the outer wall of the vehicle.
[0067] Most of the space can be used for the payload, but there are some features that need to be added to the vehicle, and for that reason, some space may be required at the front or rear of the vehicle.
[0068] Except in the case of an emergency evacuation, passengers are not expected to stand up and move around inside the vehicle once seated. Therefore, the boarding procedure includes the following steps: 1. Get passengers seated. 2. Move the seats into the cylindrical body of the vehicle. 3. Close the vehicle. 4. Move the tunnel section containing the vehicle into the tube assembly.
[0069] Preferably, the tube transport system further includes one or more vacuum pumps for creating and maintaining a vacuum level within the annular space of the tube assembly.
[0070] The method of the present invention includes step (i) moving the vehicle along a path toward a first end at a speed exceeding the choking limit of the gas particle flow in the annular gap, while removing gas particles from the internal space of the tube assembly toward the front of the vehicle.
[0071] The method of the present invention then includes step (ii) reversing the direction of movement and moving the vehicle along a path toward the second end at a speed exceeding the choking limit of the gas particle flow in the annular gap, while removing gas particles from the internal space of the tube assembly toward the front of the vehicle.
[0072] Preferably, steps (i) and (ii) are repeated until the mean free path of the gas particles present in the tube assembly becomes longer than the width of the annular gap.
[0073] When the mean free path of gas particles present within the tube assembly is longer than the width of the annular gap, one or more vehicles can be propelled and guided within the tube assembly at a maximum speed of at least 80 m / s, preferably at least 300 m / s, and more preferably at least 1000 m / s. Preferably, the vehicles are fitted to sweep gas particles out of the annular gap of the tube assembly, preferably through a lateral opening.
[0074] According to a preferred method of the present invention, the vehicles are operated in two or three units such that a security vehicle is operated at a predetermined distance in front of and / or behind each passenger vehicle. Therefore, this method preferably includes mounting sensors and communication equipment on the security vehicle for detecting and reporting abnormal operating conditions. Furthermore, this method further includes the security vehicle carrying gaseous particles to help slow down any of the vehicles in the event of an emergency. Furthermore, this method further includes the security vehicle being equipped with a pressure lock for separating the passenger vehicles from the rest of the tubing system. Finally, this method preferably includes a security vehicle for carrying passenger luggage.
[0075] Preferably, one or more vehicles are operated such that choking is achieved in the annular gap between the outer surface of the vehicle body and the inner surface of the inner tube.
[0076] Preferably, the vehicle is provided with means that can be used to extract fluid particles from an annular space and to store them inside the vehicle body.
[0077] Preferably, a means for extracting compressed air from the front section of the vehicle is attached to the tube.
[0078] Preferably, the outer tube is provided with a surface for sensing solar radiation that generates energy outside the outer tube. Furthermore, preferably, means for collecting and storing the generated solar energy are provided. Finally, preferably, means for reducing the CO2 content of the air surrounding the tube are provided.
[0079] Preferably, the vehicle is equipped with a braking system that uses mechanical, electromagnetic, or aerodynamic means to decelerate the vehicle by creating a flow around the vehicle with gaseous particles stored in and exhausted in a service compartment, and / or the vehicle is equipped with electrical equipment for propulsion, guidance, and braking.
[0080] Tube transport system According to the present invention, a tube transport system includes a tube assembly. The tube assembly includes an outer tube, one or more inner tubes housed and held within the outer tube such that an annular space is formed between adjacent tubes, and a support structure for holding the outer tube.
[0081] The tube assembly has an inner wall surface that defines an internal space for receiving a vehicle and guiding the vehicle along a path extending from a first end of the tube assembly to a second end on the opposite side. The tube assembly has one or more pressure valves or nozzles for removing gaseous particles from the internal space.
[0082] The tube assembly further includes a vehicle having an outer wall surface that defines an annular gap between the outer wall surface of the vehicle and the inner wall of the tube assembly.
[0083] The tube assembly of the present invention is a multilayer tube. To create multiple pressure levels between the atmosphere and the inner tube used for vehicle circulation, one tube is nested within another, or tubes with several wall layers are used. As a default policy, only two tubes and the pressure levels in that tube configuration are used, but policies with three or more wall layers may exist. Multilayer tubular systems can be used to gradually reduce the pressure level from the ambient to the inner tube. Pressure reduction can be achieved by extracting or adding liquid or fluid from nozzles, orifices, or valves between corresponding chambers of the tube, or by circulating liquid or fluid.
[0084] Suitable materials for protecting the inner tube between two tubes or between the outer tube and for reinforcing the multilayer tube structure, such as sand-filled sandwich / honeycomb / riblet structures, are considered. To protect the system from arson attacks from the outside (e.g., bullets, small explosives) and to improve the overall rigidity of the structure, the outer ring of the tube may be filled with sand, any other bulk material, riblet material, sandwich or honeycomb material. This filling is distributed in such a manner that it does not impede fluid exchange along the tube; i.e., riblets have radial openings and the sand is rough enough to allow fluid flow along the tube.
[0085] To improve the vacuum of the inner tube and the aerodynamic behavior of the vehicle, the tube may be filled with a mixture of helium and hydrogen or any other gas.
[0086] When multiple tube systems are filled with a mixture of helium, hydrogen, and any other gas, it is expected that the creation or maintenance of a vacuum will be better, leakage will be reduced, and the rest of the vehicle's aerodynamic behavior will be improved. In this case, air may be replaced with these gases. Depressurization within tubes can be used to accelerate any type of object without being subjected to aerodynamic forces to reach very high speeds over short distances.
[0087] The tubes may be made of fiberglass-reinforced plastic (GRP), glass, metal, concrete, or carbon, or a mixture of any of these materials. The tubes may be manufactured on-site or off-site. In particular, a rig suitable for manufacturing seamless or fused tubes with several layers may be used, equipped with machines for transporting and processing the materials used to manufacture these tubes on-site.
[0088] The tube assembly may allow for the opening of emergency escape windows anywhere along the tube. Equipment on the tube is intended to allow for emergency exits anywhere along the tube. Furthermore, tubes that allow for the separation of tube sections to create rotating stations are also conceivable.
[0089] The present invention also considers on-tube equipment necessary for preparing to hermetically separate a tube section from the rest of the tube in preparation for replacing a tube section envisioned at a station. Supports for the tube and joints between these supports and the tube may be provided, suitable for withstanding the forces generated and maintaining a vacuum with minimal leakage. Solar panels may be equipped on the tube, either as an integral part of the tube or attached to it, to generate energy that can be used for the operation of the vehicle.
[0090] The vehicle could be a large-diameter, lightweight vehicle of a classic concept, allowing passengers to board and alight via doors and aisles, and to move into tunnel sections used for exchanges.
[0091] Lightweight vehicles may preferably have a modular structure and small diameter that allows passengers to board and alight from seats, seated passengers to move into the vehicle, airtight sealing at the ends of the vehicle, and movement of the vehicle into tunnel sections used during replacement.
[0092] The vehicle may be equipped with mechanical equipment / pumps / turbines for sweeping / extracting and compressing air. Mechanical equipment for replacing the air accumulated in the station may also be provided. Pumps or turbines for producing air cushions to be used as brakes are also intended. Mechanical or electromechanical equipment for generating eddy currents to be used as brakes is also disclosed. Tools and equipment for creating emergency exits are intended. Receiving devices for energy transmission via lasers or any other physically possible method are disclosed. With respect to brakes, on-board equipment, mechanical brakes or electromagnetic brakes (eddy currents) suitable for generating airflow around the vehicle for the purpose of decelerating the vehicle at any given moment may be used.
[0093] Conventional propulsion systems can be selected from linear induction motors used in Transrapid. However, superconducting magnets, railgun technology, laser energy transmission, photon or ion-based propulsion, and the necessary energy transmission to the vehicle are also being considered.
[0094] Conventional levitation systems, such as those in Transrapid, which consist of attractive active magnets, may be used. However, levitation and guidance systems may also be based on superconducting magnets. Suitable superconducting materials can be selected from bulk yttrium barium copper oxide (YBCO) crystals or deposited YBCO films. A propulsion system such as that disclosed in US10000892B2 may be suitable for the purposes of the present invention.
[0095] According to a preferred embodiment, the guidance system may be installed at a 120° angle along the tube to keep the vehicle centered in the tube at all times. This also provides some margin for lateral movement.
[0096] According to a preferred embodiment, the station may be a rotary barrel station equipped with a mechanism for loading and unloading the entire tunnel segment of the station. Separation of the station tunnel segment from the rest of the tube with little to no leakage is preferred.
[0097] According to a preferred embodiment, the present invention enables the creation of an emergency exit anywhere along a tube, characterized by the use of vehicle-mounted tools and equipment inside the tube to create an emergency exit at any possible location along the tube, the tools may include cutters or pyrotechnic devices using carbide or the like.
[0098] In a more preferred embodiment, the present invention enables an evacuation procedure / sequence for escaping passengers from the confined space inside the tube.
[0099] Vacuum techniques for generating and maintaining the required vacuum level may include the use of any type of pump suitable for reaching and maintaining the required pressure level, or for extracting and compressing fluid particles in a vehicle, discharging them at a station, or utilizing the choking effect for compressing and collecting remaining fluid particles in the vehicle.
[0100] According to a preferred embodiment, the present invention makes it possible to ensure the integrity of the system before and during each trip by closely monitoring using vibration sensors, alignment sensors, pressure sensors, temperature sensors, and / or cameras.
[0101] From a safety standpoint, the following is preferable: A security vehicle precedes each passenger vehicle. The security vehicle is used to transport passengers' luggage or any other goods or materials. There is an emergency stop system for the following passenger vehicle.
[0102] The present invention can typically be used as a long-distance transport system.
[0103] The present invention will now be further described with reference to the drawings.
[0104] Figure 1 shows a tube transport system 100 for use in the method of the present invention. The tube transport system 100 includes a tube assembly 101 and a vehicle 6.
[0105] The tube assembly 101 includes an outer tube 1 and an inner tube 2 housed and held within the outer tube so as to form an annular space 3 between the outer tube 1 and the inner tube 1. The tube assembly 101 further includes a support structure 4 for holding the outer tube 1. The tube assembly 101 has an inner wall surface 12 that defines an internal space 5 for receiving a vehicle 6 and guiding the vehicle 6 along a path extending from a first end 7 of the tube assembly to a second end 8 on the opposite side. The tube assembly has one or more pressure valves or nozzles 9 for releasing gas particles from the internal space 5 and the annular space 3. A vacuum pump 15 is connected to the tube assembly 101 to extract gas particles from the annular space 3. The annular space 3 is longitudinally divided into compartments by a separator 32 extending from the outer surface of the inner tube to the inner surface of the outer tube 1.
[0106] Vehicle 6 is represented in the form of a cylindrical housing 17 having an outer wall surface 10. Vehicle 6 includes a compartment 18 designed to receive a payload (passengers or goods) and a service compartment 23. An annular gap 11 is formed between the outer wall surface 10 of the vehicle and the inner wall surface 12 of the tube assembly. A vacuum pump 15 is positioned inside the vehicle to extract gas particles from the annular gap 11 via a lateral orifice 16, and the gas particles can be stored in a tank 23 located in the service compartment 19.
[0107] Figure 2a) shows the vehicle 6 moving from the first end 7 to the second end 8. Compressed gas particles are released to the outside and into the annular space 3 through a valve 9 located at the second end 8.
[0108] Figure 2b) shows the vehicle 6 moving from the second end 8 to the first end 7. Compressed gas particles are released to the outside and into the annular space 3 through a valve 9 located at the first end 7.
[0109] Figure 3 shows a cross-section of assembly 101 having electrical equipment used to guide and propel vehicle 6. Part 27 of the electromagnetic guide and propulsion system to be installed in the vehicle, and part 28 of the electrical equipment for wirelessly transmitting electrical energy, are represented as further rings attached to the outer surface 10 of the vehicle. Part 26 of the electromagnetic guide and propulsion system to be installed in the inner tube is represented as a ring attached to the inner wall 12 of the tube assembly. The rings formed by elements 26 and 27 / 28 surround the annular gap 11.
[0110] Figure 4 shows a tube assembly 101 having an outer tube 1 and an inner tube 2. A filler 25 is placed in the annular space between tube 1 and tube 2. The filler 25 is selected to provide further stability to the tube assembly 101, while also allowing fluid flow within the annular space from the first end 7 to the second end 8 of the tube assembly. In Figure 4, the filler 25 consists of a porous tube connected to the outer surface of the inner tube and the inner surface of the outer tube.
[0111] Figure 5 illustrates how to load / unload the payload 22 onto / from the vehicle 6. Figure 5a) shows the lid 20 open and the payload 22 outside the cylindrical housing 17 of the vehicle 6. In step 1, the payload (in this case, passengers) is moved from outside the vehicle to the passenger compartment 18 of the vehicle 6, the result of which is shown in Figure 5b). Figure 5c) shows the vehicle after step 2 is completed. In step 2, the lid 20 is moved onto one end of the vehicle so that the vehicle is completely sealed. To unload the passengers from the vehicle, the steps described above are performed in reverse order, i.e., the lid is first removed from the vehicle, and then the payload is removed.
[0112] Figure 6 illustrates how the security vehicles 29 are operated in front of and behind the passenger vehicle 6. The distance 30 between the leading security vehicle 29 and the passenger vehicle 6 is selected so that the passenger vehicle can always be slowed down without colliding with the security vehicle 29f if an abnormal condition is detected. The following security vehicle 29t follows at a safe distance. The security vehicles are equipped with sensors and tools for dividing the interior space 5 into sections in the longitudinal direction.
[0113] Figure 7 illustrates the state of choked flow in an annular gap 11 with a width of 14. As the vehicle 6 moves within the inner tube 5 with the gas particles, the gas particles are compressed in front of the vehicle 6 and expand behind it. The resulting pressure difference between the front and rear of the vehicle creates a flow in the annular gap 11 from the front to the rear of the vehicle. Depending on the pressure level, the width 14 of the annular gap, and the diameter of the inner tube 5, the flow in the annular gap, opposed to the direction of travel, reaches the speed of sound when the vehicle exceeds a certain speed. This phenomenon is called choking. When the flow is choked, the mass flow rate cannot increase, and therefore more gas particles are pushed forward. The present invention utilizes the choking effect to sweep gas particles forward of the vehicle, where they can be released through a valve or nozzle 9.
[0114] Figure 8 illustrates an emergency braking method that involves exhausting gas particles stored in the gas tank 23 to the front of the vehicle. When the amount of gas particles rapidly increases in front of the vehicle 6, a flow is generated around the vehicle in the annular gap 11 in the opposite direction to the direction of travel. When the speed is high and enough gas particles can be released, the flow in the annular gap chokes, and the pressure in front of the vehicle increases further. This method causes the vehicle to decelerate.
[0115] Figure 9 illustrates gas particles moving freely in space, each traveling a specific distance before colliding with another particle. This distance, averaged over a specific time period for all gas particles within a given volume, defines the so-called mean free path.
[0116] Figure 10 shows three different flow states related to the present invention. Figure 10a) shows viscous flow as described by classical fluid dynamics, where the fluid is considered a continuum and the Navier-Stokes equations are applied to viscous flow. Figure 10b) represents a transition state, the so-called Knudsen flow, where some gas particles behave like a continuum and other gas particles do not undergo significant interaction. In Figure 10c), all gas particles move freely in space. In this so-called molecular flow, gas particles do not experience friction. The present invention seeks this flow for normal cruising. [Explanation of Symbols]
[0117] 1: Outer tube 2: Inner tube 3: Annular space between adjacent tubes (e.g., outer tube and inner tube) 4: Support structure for holding the outer tube 5: Interior space 6: Vehicles 7: First end of tube assembly 8: Second end of tube assembly 9: Valve 10: Exterior wall surface of the vehicle 11: Annular gap 12: Inner wall of tube assembly 13: Mean free path of gas particles 14: Width of the ring gap 15: Vacuum pump 16: One or more orifices within the annular gap 17: Cylindrical housing of a vehicle 18: Compartments designed to accept payloads 19: One or more service compartments 20: Releasable and sealable port for accessing passenger compartments 21: Moving passenger seats 22: Payloads fixed to removable support structures, i.e., passenger seats or goods 23: Gas tank 24: Interior of a passenger compartment 25: Filling material 26: Part of the electromagnetic guidance and propulsion system installed in the inner tube 27: Parts of the electromagnetic guidance and propulsion system installed in the vehicle 28: Electrical equipment for transmitting electrical energy by sliding contact or wirelessly 29: Gas particle flow in annular gaps 29': Security vehicle 30: The predetermined distance between the passenger vehicle and the security vehicle. 31: Visualization of Knudsen number Kn 32: Compartmenting of circular spaces
Claims
1. A method for operating a tube transport system, wherein the tube transport system is (a) A tube assembly, (a-1) Outer tube (1), (a-2) One or more inner tubes (2) housed and held within the outer tube such that an annular space (3) is formed between adjacent tubes, and (a-3) Support structure (4) for holding the outer tube, Equipped with, Having an inner wall surface that receives a vehicle (6) and defines an internal space (5) for guiding the vehicle (6) along a path extending from a first end (7) to a second end (8) on the opposite side of the tube assembly, A tube assembly having one or more pressure valves or nozzles (9) for releasing gas particles from the internal space (5), (b) A vehicle having an outer wall surface (10) that defines an annular gap (11) between the outer wall surface (10) of the vehicle and the inner wall surface (12) of the tube assembly, Includes, The aforementioned method, (i) Moving the vehicle along a path toward the first end (7) at a speed exceeding the choking limit of the gas particle flow in the annular gap (11) while releasing gas particles from the internal space (5) of the tube assembly in front of the vehicle through one or more pressure valves or nozzles, and subsequently, (ii) Reversing the direction of movement and moving the vehicle along a path toward the second end (8) at a speed exceeding the choking limit of the gas particle flow in the annular gap (11), while releasing gas particles from the internal space of the tube assembly in front of the vehicle through one or more pressure valves or nozzles, Includes, A method comprising the steps (i) and (ii) being repeated until the mean free path (13) of the gas particles present in the tube assembly is longer than the width (14) of the annular gap (11), i.e., until the Knudsen number (31) is greater than 1, or until the pressure in the inner tube is 10⁻⁴ Pa or less, and then one or more of the vehicles (6) being propelled and guided in the tube assembly at a maximum speed of at least 80 m / s, at least 300 m / s, or at least 1000 m / s.
2. The tube transport system further includes one or more vacuum pumps (15) for creating and maintaining a vacuum level within the annular space (3) of the tube assembly, and / or The vehicle is adapted to sweep gas particles from the annular gap of the tube assembly through the lateral opening (16), A method for operating the tube transport system described in claim 1.
3. A method for operating the tube transport system according to claim 1 or 2, wherein one or more annular spaces (3) are in fluid flow communication with the internal space (5) through control means such as a valve or nozzle (9) and a pump (15), and the fluid flow between the annular spaces can be suppressed or maintained through the control means to create a controlled pressure drop between adjacent annular spaces and the internal space, so that the pressure in the annular spaces is between the ambient pressure and the pressure level in the internal space.
4. The one or more inner tubes (2) and / or the outer tube (1) are made of glass fiber reinforced plastic (GRP), glass fiber reinforced concrete (GFRC), carbon fiber, aluminum, titanium, magnesium, or any combination thereof, and / or The one or more annular spaces (3) accommodate a filler (25) that partially fills the annular spaces, while allowing fluid flow along the annular spaces (3), and / or The one or more annular spaces (3) are divided longitudinally by a separator (32), forming fluid pressure-separated and sealed spaces. A method for operating the tube transport system according to any one of claims 1 to 3.
5. The aforementioned vehicle is (b-1) A cylindrical housing (17) enclosing one or more passenger compartments (18) and one or more service compartments (19), and having openable and sealable ports (20) for accessing the passenger compartments, (b-2) One or more seats adapted to be removed from the passenger compartment (21) for boarding and unboarding passengers, The seats (22) are fitted to be fixed to the cylindrical housing of the passenger compartment when a passenger is seated. A method for operating the tube transport system according to any one of claims 1 to 4.
6. The aforementioned vehicle is (b-3) further comprising one or more orifices (16) in the annular space for extracting gaseous particles along the vehicle to be stored in the tank (23) of the service compartment of the cylindrical housing, and / or (b-4) The inner surface (24) of the passenger compartment is provided with a thin luminescent layer that enables the display of virtual reality using hologram technology that changes in color and brightness or gives the passenger a sense of depth, and / or (b-5) Equipped with a sound system and / or (b-6) Moving passenger seats to improve comfort and driving experience (21), and / or (b-7) The vehicle is equipped with a device for opening the cylindrical housing from the inside in an emergency and / or for releasing the passenger compartment (18) from the cylindrical housing. (b-8) The vehicle is equipped with a braking system that uses a gas cushion produced by exhausting stored gas particles, and / or (b-9) The vehicle is equipped with electrical equipment (27) for propulsion and guidance, and / or (b-10) The vehicle is equipped with electrical equipment (28) for transmitting electrical energy from the outside to the inside by sliding contact or wireless means and for storing electrical energy. A method for operating the tube transport system according to claim 5, further comprising the following:
7. The portion (26) of the electromagnetic guide and propulsion system installed in the inner tube provides further stability to the inner tube, and / or The electromagnetic guidance and propulsion system portion (27) installed in the vehicle provides further stability to the vehicle body, and / or The portion (26) of the electromagnetic guide and propulsion system installed in the inner tube is installed symmetrically along the tube to keep the vehicle at the center of the tube, and / or The electromagnetic guide and propulsion system (27) installed on the vehicle is installed symmetrically along the vehicle in order to keep the vehicle at the center of the tube. A method for operating the tube transport system according to any one of claims 1 to 6.
8. The aforementioned vehicles are operated in groups of two or three such that a security vehicle (29) is operated at a predetermined distance (30) in front of or behind each passenger vehicle (6). The aforementioned method, (a) Install sensors and communication equipment on the safety vehicle (29) for detecting and reporting abnormal operating conditions, and / or (b) The safety vehicle carrying gaseous particles to help slow down any of the vehicles in the event of an emergency, and / or (c) The security vehicle is equipped with a pressure lock for separating the passenger vehicle from the rest of the tube system, and / or (d) The security vehicle for transporting passengers' luggage, A method for operating the tube transport system according to any one of claims 1 to 7, including the method described in any one of claims 1 to 7.
9. The aforementioned method, (i) Multiple vehicles (6, 29) are operated such that choking is achieved in the annular gap (11) between the outer wall surface and the inner wall surface (12), and / or (ii) means (16, 32) on the vehicle that can be used to extract gas particles from the annular space (11) and to store them inside the vehicle body (23), and / or (iii) Means (9, 15) attached to the tube that can extract compressed air from the front area of the vehicle, A method for operating the tube transport system according to any one of claims 1 to 8, including the method described in any one of claims 1 to 8.
10. The aforementioned method, (i) A surface that senses solar radiation that generates energy outside the outer tube, and / or (ii) means for collecting and storing the generated energy, and / or (iii) CO2 of the air surrounding the tube 2 Means to reduce the content, A method for operating the tube transport system according to any one of claims 1 to 9, including the method described in any one of claims 1 to 9.
11. A method for operating a tube transport system according to any one of claims 1 to 10, wherein the vehicle comprises a braking system (32) using mechanical, electromagnetic, or aerodynamic means for slowing the vehicle by creating a flow around the vehicle with gaseous particles stored in and exhausted in a service compartment (19), and / or the vehicle comprises electrical equipment (27) for propulsion, guidance, and braking.
12. A tube transport system including a high-speed vehicle within a closed system operating under vacuum, wherein the tube transport system is (a) A tube assembly, (a-1) Outer tube, (a-2) One or more inner tubes housed and held within the outer tube such that an annular space is formed between adjacent tubes, and (a-3) Support structure for holding the outer tube, Includes, It has an inner wall surface that receives a vehicle and defines an internal space for guiding the vehicle along a path extending from a first end of the tube assembly to a second end on the opposite side, The tube assembly has one or more pressure valves or nozzles for removing gas particles from the internal space, the one or more pressure valves or nozzles being provided at the first end and the second end on the opposite side of the tube assembly, (b) A vehicle having an outer wall surface that defines an annular gap between the outer wall surface of the vehicle and the inner wall surface of the tube assembly, Includes, The tube transport system is (i) Moving the vehicle along a path toward the first end (7) at a speed exceeding the choking limit of the gas particle flow in the annular gap (11) while releasing gas particles from the internal space (5) of the tube assembly in front of the vehicle through one or more pressure valves or nozzles, thereafter, (ii) Reverse the direction of movement and move the vehicle along a path toward the second end (8) at a speed exceeding the choking limit of the gas particle flow in the annular gap (11), while releasing gas particles from the internal space of the tube assembly in front of the vehicle through one or more pressure valves or nozzles. The above (i) and (ii) are repeated until the mean free path (13) of the gas particles present in the tube assembly is longer than the width (14) of the annular gap (11), i.e., the Knudsen number (31) is greater than 1, or the pressure in the inner tube is 10⁻⁴ Pa or less, and thereafter one or more of the vehicles (6) are propelled and guided in the tube assembly at a maximum speed of at least 80 m / s, at least 300 m / s, or at least 1000 m / s, in a tube transport system.
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