Tube infrastructure with vacuum pressure
11320070 · 2022-05-03
Assignee
Inventors
- Jae Heon Choe (Anyang-si, KR)
- Kwan Sup Lee (Gunpo-si, KR)
- Su Yong Choi (Changwon-si, KR)
- Chang Young Lee (Bucheon-si, KR)
- Jung Youl Lim (Seoul, KR)
- Jin Ho LEE (Seoul, KR)
- Yong Jun Jang (Anyang-si, KR)
- Jeong Min Jo (Suwon-si, KR)
- Min Hwan Ok (Uiwang-si, KR)
- Jae Hoon Kim (Goyang-si, KR)
Cpc classification
F16L2201/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L17/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L21/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A tube infrastructure includes a first tube; a second tube that is coupled to the first tube; and a fluid tank that is disposed to surround a coupling region of the first tube and the second tube and is filled with a fluid to seal the coupling region, wherein the fluid tank allows negative pressure to be maintained inside the first tube and the second tube.
Claims
1. A tube infrastructure comprising: a first tube; a second tube that is coupled to the first tube; a fluid tank that is disposed to surround a coupling region of the first tube and the second tube and is filled with a fluid to seal the coupling region; and a sensor that detects whether or not the fluid of the fluid tank leaks, wherein the fluid tank allows negative pressure to be maintained inside the first tube and the second tube, and wherein the sensor is provided in the fluid tank to determine that the fluid leaks when a volume of the fluid is measured to be less than an initial measurement value.
2. The tube infrastructure according to claim 1, wherein the first tube and the second tube include a female connection portion and a male connection portion respectively located at both ends, and wherein the female connection portion of the first tube and the male connection portion of the second tube are coupled to each other by a fitting method.
3. The tube infrastructure according to claim 2, wherein the female connection portion is formed such that a diameter of an inner circumferential surface increases toward one end and includes a flange portion formed on one end surface, wherein the male connection portion is formed such that a diameter of an inner circumferential surface decreases toward one end and includes a groove portion formed in an outer circumferential surface, and wherein the groove portion of the second tube is fitted to the flange portion of the first tube.
4. The tube infrastructure according to claim 3, wherein the groove portion coupled to the flange portion is formed to have a coupling margin so as to enable the first tube or the second tube to move horizontally due to a thermal deformation.
5. The tube infrastructure according to claim 1, further comprising: a packing portion that is interposed in the coupling region of the first tube and the second tube.
6. The tube infrastructure according to claim 5, wherein the packing portion is configured by at least one of an O-ring and a surface gasket.
7. The tube infrastructure according to claim 1, wherein the fluid tank has an opening through which the fluid is introduced at a region of an upper portion.
8. The tube infrastructure according to claim 1, wherein the fluid includes at least one of fine particles and a short fiber.
9. The tube infrastructure according to claim 1, wherein the fluid includes at least one of a volatile fluid and a nonvolatile fluid.
10. A railway bridge including a tube infrastructure, the railway bridge comprising: a plurality of tube infrastructures arranged horizontally in a horizontal direction, wherein each of the tube infrastructures is the tube infrastructure according to claim 1; and a pier arranged at a lower end of the fluid tank of the tube infrastructure to support the tube infrastructure.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF THE EMBODIMENT
(6) Hereinafter, embodiments of the present invention will be described in detail with reference to the accompanying drawings such that those skilled in the art can easily implement the present invention. The invention can be embodied in many different forms and is not limited to the embodiments described herein. In addition, portions not related to the description are omitted in the drawings so as to describe the present invention more clearly, and like reference numerals are attached to like portions throughout the specification.
(7) Throughout the specification, when a portion is described to be “connected” to another portion, this includes not only “directly connected” but also “electrically connected” with other elements therebetween. Further, when a portion is described to “include” a certain configuration element, this means that the portion can further include other configuration elements, except to exclude other configuration elements unless described otherwise in particular.
(8)
(9) Referring to
(10) Specifically, referring to
(11) That is, it is possible to completely block a gas inflow through the fluid tank 30 containing a fluid with a high viscosity surrounding the outside of the coupling region of the first tube 10 and the second tube 20. Due to this, a pressure difference between the inside and outside of the tube is maintained at approximately 1 atmosphere or more, and thereby, a negative pressure acts in the tube infrastructure. Further, even if a problem occurs in a sealed structure due to a high viscosity of the fluid, the fluid contained in the fluid tank 30 is first introduced into the first tube 10 and the second tube 20, and thus, there is an effect that vacuum inside the tube infrastructure can be further maintained for a predetermined period of time.
(12) First, the fluid tank 30 can be disposed to surround the coupling region of the first tube 10 and the second tube 20 and can be filled with a fluid to seal the coupling region. For example, the insides of the first tube 10 and the second tube 20 are at a low pressure (approximately 0.001 atm) close to vacuum and the outside is at atmospheric pressure (1 atm). Further, the fluid tank 30 has an opening 310 through which the fluid is introduced at a region of an upper portion thereof. For example, rainwater can be introduced through the opening 310 to be used instead of the fluid with a high viscosity.
(13) Here, the fluid can include at least one of fine particles (powder) and a short fiber to adjust the viscosity. Further, the fluid can include at least one of a volatile fluid and a nonvolatile fluid. For example, when a mixture of the volatile fluid and the nonvolatile fluid is used, the nonvolatile fluid can be located above the volatile fluid, thereby, preventing evaporation of the volatile fluid. The nonvolatile fluid can be used to lengthen a maintenance interval.
(14) The first tube 10 and the second tube 20 are circular tubes having a diameter enough to allow an ultrahigh speed vacuum train to pass. A diameter of the tube can be formed to approximately 2 to 3 m based on the existing railway tunnel technology, but the present invention is not limited thereto, and individual tubes can be formed to have various lengths and thicknesses.
(15) For example, the first and second tubes 10 and 20 can be formed of a metal material such as carbon steel, stainless steel or aluminum, a mixed material using steel and concrete together, a concrete material including a steel rib, a polymer material such as fiber reinforced plastics (FRP) or polyethylene (PE), and the like.
(16) Referring to
(17) Further, the tube infrastructure further includes a packing portion 150 interposed in the coupling region of the first tube 10 and the second tube 20. The packing portion 150 can be formed of at least one of an O-ring and a surface gasket formed of an elastomer, but the present invention is not limited thereto.
(18) For example, referring to
(19) Due to this, the packing portion 150 can block inflow of gas, and the fluid with a high viscosity contained in the fluid tank 30 can completely block the inflow of gas. Further, even if a minute gap occurs between the first and second tubes 10 and 20 and the packing portion 150, when the fluid contained in the fluid tank 30 has a high viscosity, the fluid does not flow into the gap. Due to this, the packing portion 150 and the fluid tank 30 can act as a double hermetic structure. In addition, even if a problem occurs in the coupling region of the first tube 10 and the second tube 20, the fluid contained in the fluid tank 30 can first flow into the inside of the first and second tubes 10 and 20. This allows vacuum inside the tube infrastructure to be maintained for predetermined period of time.
(20) The tube infrastructure according to the present invention further includes a sensor 320 that detects whether or not a fluid of the fluid tank 30 leaks.
(21) The sensor 320 can be provided inside the fluid tank 30 to determine that the fluid leaks when a volume of the fluid is measured to be equal to or less than an initial measurement value. That is, the sensor 320 initially measures the volume of the fluid contained in the fluid tank 30. Further, the sensor 320 can measure the volume of the fluid in real time. Thereafter, the sensor 320 or an external computing device that receives a sensed value from the sensor 320 can determine that the fluid is leaked when the volume of the fluid is measured to be equal to or less than an initial measurement value. As such, only by measuring the volume of the fluid using the sensor 320, there is an advantage that leakage can be detected in real time without a need for a separate system for detecting sealing.
(22) Referring to
(23) Further, the groove portion 201 coupled to the flange portion 101 can be formed to have a coupling margin so as to enable the first tube 10 or the second tube 20 to move horizontally due to a thermal deformation.
(24) For example, as illustrated in
(25) The description of the present invention described above is for an illustrative purpose, and those skilled in the art to which the present invention belongs will be able to understand that the present invention can be changed to other specific forms without changing the technical idea or essential features of the present invention. Therefore, it should be understood that the embodiments described above are exemplary in all respects and not restrictive. For example, each configuration element described as a single type can be implemented in a distributed manner, and similarly, configuration elements described in a distributed manner can be implemented in a combined form.
(26) It should be construed that the scope of the present invention is represented by the following claims rather than the detailed description, and all changes or modifications derived from the meaning and scope of the claims and their equivalents are included within the scope of the present invention.