LIGHT-CONCENTRATING ANTI-FROST ANTI-HEAVE HEAT GATHERING DEVICE AND SUBGRADE THEREOF
20220307729 · 2022-09-29
Inventors
Cpc classification
F24S23/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S10/95
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S23/31
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S23/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S20/64
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F24S20/64
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S23/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention provides a light-concentrating anti-frost anti-heave heat gathering device and subgrade thereof. The device comprises a light concentrator mounted outside a subgrade; and a heat gathering tube comprising a heat absorption section and a heat release section in communication, the heat absorption section is inserted inside the light concentrator for transferring absorbed heat to the heat release section, the heat release section is inserted inside the subgrade for heating the subgrade, the light concentrator is configured to focus sunlight to and heat the heat absorption section. The heat gathering device herein takes advantage of solar energy resources, by smoothly heating the ground temperature field of the subgrade, and regulating the frost-heaving portions of the subgrade, balanced and smooth heating of the subgrade can be achieved and engineering diseases such as frost heave and uneven fluctuation of the subgrade in the seasonally frozen ground region can be effectively avoided.
Claims
1. A light-concentrating anti-frost anti-heave heat gathering device, comprising: a light concentrator (6) mounted outside a subgrade (2); a heat gathering tube (10) comprising a heat absorption section (11) and a heat release section (13) in communication, wherein the light concentrator (6) is configured to focus sunlight to the heat absorption section (11) to heat the heat absorption section (11), the heat absorption section (11) is inserted inside the light concentrator (6) for further transferring absorbed heat to the heat release section (13), and the heat release section (13) is inserted inside the subgrade (2) for heating the subgrade (2).
2. The light-concentrating anti-frost anti-heave heat gathering device according to claim 1, wherein the light concentrator (6) comprises: a side frame (7) disposed around the heat absorption section (11); and a light condensing cover plate (8) connected to a top of the side frames, the light condensing cover plate (8) has a zigzag shape, and is configured for focusing sunlight to the heat absorption section (11).
3. The light-concentrating anti-frost anti-heave heat gathering device according to claim 2, wherein the light condensing cover plate (8) comprises: a shell (81) made of a transmissive material and has a zigzag shape; and condenser lenses (82) mounted on an inner side of the shell (81) for focusing sunlight to the heat absorption section (11).
4. The light-concentrating anti-frost anti-heave heat gathering device according to claim 3, wherein the shell (81) comprises top walls connected sequentially, two adjacent top walls are at a preset angle, the condenser lenses (82) are mounted on the shell (81) such that adjacent condenser lenses are separated by one top wall, and an angle ∠c of the condenser lens (82) upward lifting with respect to a horizontal plane is within a range of 30° to 60°.
5. The light-concentrating anti-frost anti-heave heat gathering device according to claim 4, wherein a length direction of each of the condenser lenses (82) is perpendicular to a length direction of the heat absorption section (11), and a plurality of the condenser lenses (82) are sequentially arranged along the length direction of the heat absorption section (11).
6. The light-concentrating anti-frost anti-heave heat gathering device according to claim 1, wherein the heat gathering tube (10) further comprises a transition section (12) connected between the heat absorption section (11) and the heat release section (13), a length direction of the heat absorption section (11) is inclined downwardly with respect to a horizontal plane by an angle range of 0° to 30°. a length direction of the transition section (12) is parallel to a slope of the subgrade (2), and a length direction of the heat release section (13) is inclined upwardly with respect to the horizontal plane by an angle range of 0° to 30°.
7. The light-concentrating anti-frost anti-heave heat gathering device according to claim 1, wherein a length direction of the heat release section (13) is parallel to a slope of the subgrade (2).
8. The light-concentrating anti-frost anti-heave heat gathering device according to claim 1, further comprising: a base (9) mounted inside the light concentrator (6), located at a bottom of the heat absorption section (11), and provided with a groove (91), and a surface of the groove (91) is formed as a reflecting surface (92) which reflects sunlight to the heat absorption section (11).
9. A light-concentrating anti-frost anti-heave heat gathering subgrade, comprising: a subgrade (2); and a light-concentrating anti-frost anti-heave heat gathering device, comprising: a light concentrator (6) mounted outside a subgrade (2); a heat gathering tube (10) comprising a heat absorption section (11) and a heat release section (13) in communication, wherein the light concentrator (6) is configured to focus sunlight to the heat absorption section (11) to heat the heat absorption section (11), the heat absorption section (11) is inserted inside the light concentrator (6) for further transferring absorbed heat to the heat release section (13), and the heat release section (13) is inserted inside the subgrade (2) for heating the subgrade (2), wherein the light concentrator (6) is mounted outside the subgrade (2), and the heat release section (13) is inserted inside the subgrade (2).
10. The light-concentrating anti-frost anti-heave heat gathering subgrade according to claim 9, wherein the light-concentrating anti-frost anti-heave heat gathering subgrade further comprises a heat preservation material layer (3) disposed on a slope of the subgrade (2).
11. The light-concentrating anti-frost anti-heave heat gathering subgrade according to claim 9, wherein the light concentrator (6) comprises: a side frame (7) disposed around the heat absorption section (11); and a light condensing cover plate (8) connected to a top of the side frames, the light condensing cover plate (8) has a zigzag shape, and is configured for focusing sunlight to the heat absorption section (11).
12. The light-concentrating anti-frost anti-heave heat gathering subgrade according to claim 11, wherein the light condensing cover plate (8) comprises: a shell (81) made of a transmissive material and has a zigzag shape; and condenser lenses (82) mounted on an inner side of the shell (81) for focusing sunlight to the heat absorption section (11).
13. The light-concentrating anti-frost anti-heave heat gathering subgrade according to claim 12, wherein the shell (81) comprises top walls connected sequentially, two adjacent top walls are at a preset angle, the condenser lenses (82) are mounted on the shell (81) such that adjacent condenser lenses are separated by one top wall, and an angle ∠c of the condenser lens (82) upward lifting with respect to a horizontal plane is within a range of 30° to 60°.
14. The light-concentrating anti-frost anti-heave heat gathering subgrade according to claim 13, wherein a length direction of each of the condenser lenses (82) is perpendicular to a length direction of the heat absorption section (11), and a plurality of the condenser lenses (82) are sequentially arranged along the length direction of the heat absorption section (11).
15. The light-concentrating anti-frost anti-heave heat gathering subgrade according to claim 9, wherein the heat gathering tube (10) further comprises a transition section (12) connected between the heat absorption section (11) and the heat release section (13), a length direction of the heat absorption section (11) is inclined downwardly with respect to a horizontal plane by an angle range of 0° to 30°. a length direction of the transition section (12) is parallel to a slope of the subgrade (2), and a length direction of the heat release section (13) is inclined upwardly with respect to the horizontal plane by an angle range of 0° to 30°.
16. The light-concentrating anti-frost anti-heave heat gathering subgrade according to claim 9, wherein a length direction of the heat release section (13) is parallel to a slope of the subgrade (2).
17. The light-concentrating anti-frost anti-heave heat gathering subgrade according to claim 9, further comprising: a base (9) mounted inside the light concentrator (6), located at a bottom of the heat absorption section (11), and provided with a groove (91), and a surface of the groove (91) is formed as a reflecting surface (92) which reflects sunlight to the heat absorption section (11).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0035] To clearly explain the technical solution in the embodiment of the invention, hereinafter the desired accompanying drawings in the embodiment are simply introduced. It shall be understood that hereinafter the drawings only illustrate some examples of the invention, so it shall not be viewed as a definition to the scope. As for those ordinaries in the art, on the premise of making no creative work, other relevant drawings also can be obtained based on these drawings.
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DETAILED DESCRIPTION
[0047] To make objects, technical solutions, and advantages of the embodiments of the invention clearer, hereinafter the technical solution in the embodiments of the invention is clearly and completely described with reference to the drawings in the embodiments of the invention. Obviously, the described embodiments are a part of the embodiments of the invention, not all embodiments. Generally, components in the embodiments of the invention described and illustrated in the drawings can be arranged and designed in various different configurations.
[0048] Therefore, detailed descriptions of the embodiments of the invention provided in the drawings do not aim to limit the scope protected by the invention, but only represent the selected embodiments of the invention. Based on the embodiments in the invention, on the premise of making no creative work, all other embodiments obtained by those ordinaries in the art belong to the scope protected by the invention.
[0049] It shall be noticed that similar reference signs and letters represent similar items in the drawings, so once one item is defined in one drawing, it is unnecessary to make further definition and explanation in subsequent drawings.
[0050] In the descriptions of the invention, it shall be noted that if orientation or positional relation indicated by terms “up”, “down”, “in” and “out” is orientation or positional relation illustrated based on the drawings, or commonly placed orientation or positional relation when the invention products are used, it is only to facilitate describing the invention and simplifying the descriptions, not indicating or suggesting that the device or element must have a specific orientation, and is constructed and operated in a specific orientation, so the invention is not limited thereto.
[0051] It shall be noted that in the case of not conflicting, features in the embodiments of the invention can be combined with each other.
[0052] Since previous research on engineering measures for treating such engineering diseases is weak, engineering issues affect the stability and operating security of the subgrade for a long time. The embodiment of the invention is just proposed against the key scientific issue, starting from “temperature of the subgrade” in three indispensable factors “water, soil, and temperature” produced by frozen heave of the subgrade, thereby reaching objects of controlling the temperature and preventing the frozen heave of the subgrade through the device provided in the embodiments of the invention.
[0053] Referring to
[0054] Specifically, referring to
[0055] Specifically, the length direction of the heat absorption section 11 inclined downwardly with respect to a horizontal plane by an angle range of 0° to 30°. in particular, 10°. In other words, as shown in
[0056] Referring to
[0057] The heat preservation material layer 3 is disposed on a slope of the subgrade 2, can cover the entire slope of the subgrade 2, and is fixed by an anchor rod 4. In other embodiments, the heat preservation material layer 3 also can be compacted and fixed by covering a thin layer of soil or other material on an outer surface of the heat preservation material layer 3. The heat preservation material layer 3 can select building rock wool heat preservation material or an integrated heat preservation plate. Specifically, both a sunny slope and a shady slope of the subgrade 2 can be provided with the heat preservation material layer 3, thereby preventing heat loss inside the subgrade 2, and effectively ensuring the reservation of heat inside the subgrade 2 during day-night change.
[0058] Referring to
[0059] Referring to
[0060] The condenser lens 82 focuses sunlight from two sides to a center line position, and directly heats the heat absorption section 11 by light focusing and heat gathering. The bases 9 at the bottom of the heat absorption section 11 reflect sunlight to the heat absorption section 11 simultaneously, thereby improving heating the efficiency of the heat absorption section 11.
[0061] Referring to
[0062] The light condensing cover plate 8 in this embodiment mainly adopts a form in which a series of convex lenses with good light focusing performance and high light focusing efficiency are arranged in parallel, and convex lenses are firmly combined together through the shell 81, which improves stability and weather resistance in the wild harsh environment, and better facilitates circulating process under the unpowered condition of the whole device since the light concentrator 6 is at a relatively low position in the whole device.
[0063] It shall be noted that according to actual site conditions and the requirement for heating the subgrade 2, the light concentrator 6 may be placed at one side of a sunny slope or one side of a shady slope, and also may be laid on both sides of the subgrade 2.
[0064] Referring to
[0065] Moreover, due to laying of the liquid absorbing cores 15 inside the heat gathering tubes 10, and a certain height difference between the heat absorption section 11 and the heat release section 13, under the action of gravity and capillary force, the effect of horizontal heat tubes is easily achieved, and efficient transfer of heat in a horizontal direction is possible, thereby realizing unpowered efficient heat transfer of the entire device.
[0066] In addition to a “Z” shape, the heat gathering tubes 10 provided in this embodiment, referring to
[0067] In actual application, the heat gathering tube, the heat preservation material layer, and the light concentrator can be flexibly set and combined, such as, adjusting an embedded angle and interval of the heat gathering tube, disposing the heat preservation material layer on one side or both sides, even adding one auxiliary heat preservation layer, and the like, according to engineering conditions such as direction and height of the subgrade, and actual situations such as solar radiation and environmental conditions around the sites, thereby adjusting a temperature rising strength and an action region of a ground temperature field of the subgrade, and achieving an optimal ground temperature regulating effect.
[0068] The light-concentrating anti-frost anti-heave heat gathering device and subgrade thereof provided in this embodiment can be mainly applied to China western seasonal frozen soil regions, take full advantage of rich solar energy resources in China western regions, and realize balanced ground temperature regulation of the subgrade through smooth heating of the ground temperature field of the subgrade and regulation of frost-heaving portions in the subgrade, and maintain a positive temperature of the subgrade all year round, thereby effectively avoiding engineering diseases such as frost heave and uneven fluctuation of the subgrade in the seasonally frozen ground region.
[0069] As compared to the existing engineering technology, the light-concentrating anti-frost anti-heave heat gathering device and subgrade thereof provided in this embodiment at least have the following advantages.
[0070] 1. As compared to the existing grouting engineering technology, in the light- concentrating anti-frost anti-heave heat gathering device and subgrade thereof provided in this embodiment, firstly, the heat gathering tube extends inside the subgrade from the lower part of the subgrade in a substantially horizontal direction, mainly covers most of regions at bottom of the subgrade, and as compared to drilling holes vertically downward in the existing grouting engineering, the number of drilling holes and a depth of the drilling holes can be reduced; secondly, the existing grouting engineering changes the engineering structure of the subgrade, while this embodiment is mainly to regulate ground temperatures for changing thermal properties of the subgrade, and mainly functions on regions in the subgrade where moisture is enriched and volume expansion occurs after frost heave, while not changing the original engineering structure of the subgrade; finally, the existing grouting engineering does not use the heat preservation material layer, while in this embodiment, the heat preservation material layer can prevent heat loss inside the subgrade, and effectively ensure reservation of heat inside the subgrade in the process of day-night change;
[0071] 2. As compared to the existing electric heating engineering technology, the existing electric heating engineering heats the subgrade through electric heating measures inside the subgrade, needs supply of external power, and requires building and laying of special electric power lines, so large electric power resources are consumed every year, and when the internal electronic electric heating system has fault under wild use conditions, cost of operation and maintenance is large. However, the light-concentrating anti-frost anti-heave heat gathering device and subgrade thereof provided in this embodiment do not need an external power source, and circulate automatically, and realize the object of heating the subgrade by taking full advantage of local rich solar energy resources, so they save energy sources, and are green and environmental protective.
[0072] To sum up, as compared to the existing engineering technology, the light-concentrating anti-frost anti-heave heat gathering device and subgrade thereof provided in this embodiment have notable progress and control freeze-thaw key elements in diseases of the subgrade in the seasonally frozen ground region, thereby obtaining a multiplier effect with half the effort. The unpowered anti-frost anti-heave heat gathering device and subgrade thereof provided in this embodiment also realizes horizontal, balanced, and symmetrical distribution of ground temperature isolines of the subgrade, eliminating influence on a difference of thermodynamic coupling of the subgrade, and further enhancing the stability of a mechanical field of the subgrade. These effectively avoid engineering diseases such as uneven frost heave and longitudinal crack of the subgrade, in particular, the wide subgrade, and ensure long-term stability of the subgrade, so the embodiment of the invention has outstanding scientificity and advancement.
[0073] In an aspect of construction, this embodiment solves difficulties in existing engineering construction. Construction position in this embodiment is at one side or both sides of the subgrade, and construction method is drilling holes horizontally. Point construction is carried out on the subgrade, a speed of filling and drilling in the subgrade is fast, and a diameter of the holes is small, so the stability of the subgrade is not affected. Moreover, during construction, it is only to drill holes and insert into holes, while having no measures such as grouting and replacement, so it won't produce disturbance in a large range and change of mechanical properties to the subgrade, thereby further ensuring the stability of the original subgrade. The construction process does not constitute influence on normal driving of the trains and reaches the requirements for engineering construction under the condition of driving of the trains.
[0074] The light concentrator 6 is arranged in series with a suitable height, and a low, wide, and large form, which increases the stability of the whole device in China western strong wind and harsh environment. Moreover, lowering of a center of gravity of the heating units helps formation and increase of a pushing force in the entire thermal circulation of the device, and ensures smooth and efficient working during the whole circulation and heat transfer.
[0075] To verify regulation efficiency of the light-concentrating anti-frost anti-heave heat gathering device and subgrade thereof provided in the embodiments of the invention, numerical modeling, and simulation calculation under the action of engineering measures are performed combined with geological conditions of the test engineering sites of Qinghai-Tibet Railway from Xining to Golmud in China.
[0076] Example: at one side of a shady slope of the subgrade for Qinghai-Tibet Railway with a height of 2.0 m and a top width of 7.5 m, the heat gathering tubes are substantially horizontally inserted inside the subgrade at a height of 0.5 m, the heat release section has a length of 8 m, and an interval of the heat gathering tubes along a length direction of the subgrade is 2 m. In the heating system, heating power is 900 W with reference to the heating power of the existing 1 m.sup.2 solar water heater in such region, working time is from 10 am to 4 pm in the daytime, and a heat transfer power is discounted and calculated by 50%. To further verify the effectiveness of such measures in adverse conditions, the heat preservation material layer 8 is not laid on the slope of the subgrade in simulation calculation.
[0077] Under such working conditions, the heat gathering tubes were set on December 15, and on January 15 of this Winter, a ground temperature field of simulation calculating results after the heat gathering tubes were laid for 30 days is shown in
[0078] (1) It improves the temperature state of the temperature field in a center region of the original subgrade, and satisfies the requirements for regulation of the temperature field of the railway subgrade in the seasonally frozen ground region. As can be seen from
[0079] (2) Distribution of 0° C. ground temperature isoline and other isothermal lines in the temperature field is completely horizontal and flat, and distribution of thin lines in the frozen zone is at a top of the subgrade and close to a revetment, which largely improves the stability of the subgrade. As can be seen from
[0080] (3) It eliminates the influence of shady-sunny slope effect, and substantially eliminates engineering disease of the longitudinal crack in the subgrade. As can be seen from
[0081] This embodiment is only for representative analyses for the invention, and the conclusion substantially represents the effects to be achieved by the invention in tendency (different in specific values).
[0082] In addition, simulation calculation shows that when the railway is built in the seasonally frozen ground region according to the structure provided in this embodiment, the subgrade always stores heat energy during operation, and the frozen zone in the subgrade is reduced along with operating time, so the structure can satisfy the desired requirements for mechanical stability of the subgrade and may sustain long-term stability of the subgrade.
[0083] The above disclosures are only detailed embodiments of the invention, but the protection scope of the invention is not limited thereto. Easily conceivable change or substitution for any skilled in the art within the technical range disclosed by the invention shall be covered within the protection scope of the invention. Therefore, the protection scope of the invention shall be subjected to the scope protected by the appended claims.