A construction temperature regulation system and method for the main structure of a linear accelerator room
By installing adjustment components and temperature measurement devices inside the concrete during the construction of the linear accelerator room, the concrete temperature is monitored and adjusted in real time, the concrete cracks caused by excessive temperature difference are solved and the construction quality is improved.
Patent Information
- Application Number
- CN202211187233.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-09-28
- Publication Date
- 2025-07-01
- Estimated Expiration
- 2042-09-28
AI Technical Summary
During the construction of a linear accelerator chamber, the temperature difference between the internal temperature and the external temperature of the concrete caused by the cement hydration heat is too large, resulting in cracks in the concrete, affecting the construction quality.
By setting up adjustment components and temperature measurement devices inside the concrete, the temperature of the concrete can be monitored and adjusted in real time to ensure that the temperature difference between the inside and the outside is within a reasonable range.
It effectively avoids cracks in concrete due to excessive temperature difference, and improves the construction quality of the main structure of the linear accelerator chamber.
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Figure CN115682463B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of the construction of linear accelerator rooms, and particularly relates to a construction temperature regulation system and method for the main structure of a linear accelerator room. Background Art
[0002] Generally, cast-in-place thick concrete walls and slabs are used in linear accelerator rooms for radiation protection. The thickness of the protective wall of the linear accelerator room must be determined through calculation. The thickness of the protective wall surface and the floor slab is generally 1.5 meters to 3 meters. Among them, the thickness of the wall in the main radiation direction is 2.5 meters to 3 meters, which belongs to mass concrete. In the construction of mass concrete projects, due to the hydration heat of cement, the internal temperature and temperature stress of the concrete during pouring change violently, resulting in too large a temperature difference between the internal and external temperatures of the poured concrete, causing cracks in the concrete and affecting the quality of the linear accelerator room. Summary of the Invention
[0003] The embodiments of the present invention provide a construction temperature regulation system and method for the main structure of a linear accelerator room. By arranging the adjustment component and the temperature measurement device inside the concrete, the temperature of the concrete is monitored and adjusted in real time during the solidification process of the concrete, so as to avoid the problem of cracks in the concrete caused by too large a temperature difference between the inside and outside of the concrete.
[0004] In view of the above problems, the technical solution proposed by the present invention is as follows:
[0005] A construction temperature regulation system for the main structure of a linear accelerator room includes a third temperature sensor. The signal output end of the third temperature sensor is communicatively connected to a first controller. The third temperature sensor is used to collect the temperature of the surface of the concrete for pouring the linear accelerator room. The first controller is communicatively connected to a temperature regulation device. The temperature regulation device is connected to one side inside the concrete for pouring the linear accelerator room. The signal input end of the first controller is communicatively connected to a temperature measurement device. The temperature measurement device is arranged on the other side inside the concrete for pouring the linear accelerator room. A temperature control system is arranged on the first controller.
[0006] In order to better implement the technical solution of the present invention, the following technical measures are also adopted.
[0007] Further, the temperature adjustment device includes a water tank, a water pump, a heater, a cooler, a first temperature sensor, and an adjustment component. The heater, the cooler, and the first temperature sensor are sequentially arranged inside the water tank. The water inlet of the water pump is communicated with the water outlet of the water tank, the water outlet of the water pump is communicated with the water inlet of the adjustment component, the water outlet of the adjustment component is communicated with the water inlet of the water tank, the signal output end of the first temperature sensor is communicatively connected with the signal input end of the controller, and the signal input ends of the water pump, the heater, and the cooler are communicatively connected with the signal output end of the controller.
[0008] Further, the adjustment component includes a first protective housing, a first support frame, end caps, and a water guiding member. The first support frame is fixedly arranged inside the first protective housing. The materials of the first support frame and the first protective housing are both metal. Six first cavity parts are formed inside the first protective housing. The first protective housing is arranged inside the concrete of the casting linear accelerator room. The two end caps are located outside the concrete and are respectively communicated with both ends of the first protective housing. The water guiding member is arranged inside the container formed by the first protective housing and the end caps.
[0009] Further, the water guiding member includes a water guiding cylinder, a connecting cover, and a connecting pipe. The water guiding cylinder is arranged inside the first cavity part formed between the first support frame and the first protective housing. Both ends of the water guiding cylinder are respectively communicated with the two connecting covers. One ends of the two connecting pipes are respectively communicated with the two connecting covers. The other ends of the two connecting pipes are respectively the water outlet and the water inlet of the adjustment component.
[0010] Further, the gaps between the water guiding member and the first cavity part formed between the first support frame and the first protective housing and the gaps between the water guiding member and the end caps are filled with heat-conducting agent.
[0011] Further, the temperature measurement device includes a second protective housing, a second support frame, a second temperature sensor, a control box, a second controller, and a data transceiver. The second support frame and the second protective housing are both made of metal. The second support frame is fixedly arranged inside the second protective housing, forming six second cavity parts inside the protective housing. One of the second temperature sensors is respectively arranged in each of the six second cavity parts. The six second temperature sensors located inside the second cavity parts are on the same plane, constituting a group of the second temperature sensors. At least more than three groups of the second temperature sensors are arranged at equal intervals in sequence along the axial direction of the protective housing inside the six second cavity parts. The control box is arranged at one end of the second protective housing. The second controller and the data transceiver are sequentially arranged inside the control box. The signal input end of the second controller is communicatively connected to the signal output end of the second temperature sensor. The signal output end of the second controller is communicatively connected to the signal input end of the data transceiver. The signal output end of the data transceiver is communicatively connected to the signal input end of the first controller.
[0012] Further, a heat-conducting agent is arranged in the gap between the second temperature sensor and the second cavity part.
[0013] Further, the temperature control system includes a temperature acquisition module, a temperature analysis module, and a temperature adjustment module. The temperature acquisition module is used to acquire the data of the first temperature sensor, the second temperature sensor, and the third temperature sensor. The temperature analysis module is used to analyze the acquired data to obtain an analysis result. The temperature adjustment module is used to control the water pump, heater, or cooler to adjust the temperature of the concrete for pouring the linear accelerator room according to the analysis result.
[0014] A method for adjusting the construction temperature of the main structure of a linear accelerator room includes the following steps:
[0015] S1. Preparation work: After setting up the support system and formwork, holes with the same diameter as the first protective housing and the second protective housing are respectively opened on the formwork, and the temperature adjustment device and the temperature measurement device are respectively installed. Both the first protective housing and the second protective housing are in contact with the steel bars to be poured inside the formwork. Keep the end cover of the temperature adjustment device and both ends of the temperature measurement device outside the formwork. Apply a release agent to the outside of both the first protective housing and the second protective housing, and seal the joints between the first protective housing, the second protective housing and the formwork.
[0016] S2. Concrete pouring: Pour concrete into the set formwork.
[0017] S3. Concrete temperature monitoring. The third temperature sensor monitors the temperature of the concrete surface of the poured linear accelerator room, and the second temperature sensor monitors the temperature inside the concrete;
[0018] S4. Concrete temperature regulation. The temperature acquisition module acquires the data of the first temperature sensor, the third temperature sensor, and the second temperature sensor. The temperature adjustment module controls the water pump to transport the water inside the water tank to the inside of the adjustment component for circulation. The temperature analysis module analyzes the data of the third temperature sensor and the second temperature sensor. When the data detected by the third temperature sensor is inconsistent with the data detected by the second temperature sensor, it calculates the water temperature inside the water tank when the data detected by the second temperature sensor is the same as the data detected by the third temperature sensor. The temperature adjustment module controls the heater or cooler to start according to the data of the first temperature sensor acquired, and adjusts the water temperature inside the water tank to reach the water temperature calculated by the temperature analysis module. Then, the water pump transports the water inside the water tank to the inside of the adjustment component to adjust the temperature inside the concrete, so that the temperature inside the concrete is consistent with the external temperature;
[0019] S5. Demolition. After the concrete solidifies to reach the strength that can be demolished, the temperature adjustment device and the temperature measurement device are respectively taken out from the concrete, and the holes left after demolition are cleaned and then repaired.
[0020] Compared with the prior art, the beneficial effects of the present invention are: by arranging the adjustment component and the temperature measurement device inside the concrete, the temperature of the concrete is monitored and adjusted in real time during the solidification process of the concrete, so as to avoid the problem that the internal and external temperature difference of the concrete is too large, resulting in cracks in the concrete.
[0021] The above description is only an overview of the technical solution of the present invention. In order to be able to understand the technical means of the present invention more clearly, it can be implemented according to the content of the description. And in order to make the above and other purposes, features and advantages of the present invention more obvious and understandable, the specific embodiments of the present invention are hereinafter specifically exemplified. Brief Description of the Drawings
[0022] Figure 1 It is a schematic structural diagram of the temperature adjustment system for the main structure construction of the linear accelerator room disclosed in the embodiment of the present invention;
[0023] Figure 2 It is a communication block diagram of the temperature measurement device disclosed in the embodiment of the present invention;
[0024] Figure 3 It is a schematic structural diagram of the temperature control system disclosed in the embodiment of the present invention;
[0025] Figure 4 It is a schematic structural diagram of the adjustment component disclosed in the embodiment of the present invention;
[0026] Figure 5 Schematic cross-sectional structure diagram of the first perspective of the adjustment component disclosed in the embodiment of the present invention;
[0027] Figure 6 Schematic cross-sectional structure diagram of the second perspective of the adjustment component disclosed in the embodiment of the present invention;
[0028] Figure 7 Schematic structure diagram of the temperature measurement device disclosed in the embodiment of the present invention;
[0029] Figure 8 Schematic cross-sectional structure diagram of the temperature measurement device disclosed in the embodiment of the present invention;
[0030] Figure 9 Schematic flow diagram of a method for adjusting the construction temperature of the main structure of a linear accelerator room disclosed in the embodiment of the present invention.
[0031] Reference numerals: 1, temperature adjustment device; 11, water tank; 12, water pump; 13, heater; 14, cooler; 15, first temperature sensor; 16, adjustment component; 161, first protective housing; 162, first support frame; 163, end cover; 164, water guiding member; 1641, water guiding cylinder; 1642, connecting cover; 1643, connecting pipe; 2, temperature measurement device; 21, second protective housing; 22, second support frame; 23, second temperature sensor; 24, control box; 25, second controller; 26, data transceiver; 3, first controller; 4, heat conducting agent; 5, third temperature sensor; 6, temperature control system; 61, temperature acquisition module; 62, temperature analysis module; 63, temperature adjustment module. Detailed implementation manners
[0032] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments.
[0033] Refer to the attached Figures 1-8 As shown, a temperature adjustment system for the main structure construction of a linear accelerator room includes a third temperature sensor 5. The signal output end of the third temperature sensor 5 is communicatively connected to a first controller 3. The third temperature sensor 5 is used to collect the temperature of the surface of the concrete for pouring the linear accelerator room. The first controller 3 is communicatively connected to a temperature adjustment device 1. The temperature adjustment device 1 is connected to one side inside the concrete for pouring the linear accelerator room. The signal input end of the first controller 3 is communicatively connected to a temperature measurement device 2. The temperature measurement device 2 is arranged on the other side inside the concrete for pouring the linear accelerator room. A temperature control system 6 is arranged on the first controller 3.
[0034] The embodiments of the present invention are also implemented through the following technical solutions.
[0035] Refer to the attached Figure 1 、 4 As shown in FIGS. -6, in the embodiments of the present invention, the temperature adjustment device 1 includes a water tank 11, a water pump 12, a heater 13, a cooler 14, a first temperature sensor 15, and an adjustment component 16. The heater 13, the cooler 14, and the first temperature sensor 15 are sequentially arranged inside the water tank 11. The water inlet of the water pump 12 is communicated with the water outlet of the water tank 11, the water outlet of the water pump 12 is communicated with the water inlet of the adjustment component 16, and the water outlet of the adjustment component 16 is communicated with the water inlet of the water tank 11. The signal output end of the first temperature sensor 15 is communicatively connected to the signal input end of the controller, and the signal input ends of the water pump 12, the heater 13, and the cooler 14 are communicatively connected to the signal output end of the controller. The adjustment component 16 includes a first protective housing 161, a first support frame 162, an end cover 163, and a water guiding member 164. The first support frame 162 is fixedly arranged inside the first protective housing 161. The materials of the first support frame 162 and the first protective housing 161 are both metals. Six first cavity parts are formed inside the first protective housing 161. The first protective housing 161 is arranged inside the concrete of the casting linear accelerator room. Two end covers 163 are located outside the concrete and are respectively communicated with both ends of the first protective housing 161. The water guiding member 164 is arranged inside the container formed by the first protective housing 161 and the end cover 163.
[0036] It should be noted that the first support frame 162 is used to enhance the strength of the first protective housing 161 to avoid deformation. The water tank 11 stores water. The first temperature sensor 15 is used to detect the water temperature of the water stored in the water tank 11. After the external part of the adjustment component 16 is coated with a release agent, it is poured together with the concrete. The materials of the first support frame 162 and the first protective housing 161 are both iron, and the connection mode between the first support frame 162 and the first protective housing 161 is welding. During the pouring process, the first housing is contacted with the steel bars inside the formwork and then poured. During the process of adjusting the temperature inside the concrete, the heat conductivity of the steel bars is utilized to quickly adjust the temperature of the concrete to avoid cracks in the concrete caused by too large a temperature difference between the inside and the outside of the concrete.
[0037] Refer to the attached Figures 5-6 As shown in the figure, in the embodiments of the present invention, the water guiding member 164 includes a water guiding cylinder 1641, a connection cover 1642, and a connection pipe 1643. The water guiding cylinder 1641 is arranged inside the first cavity part formed between the first support frame 162 and the first protective housing 161. Both ends of the water guiding cylinder 1641 are respectively communicated with two connection covers 1642. One ends of two connection pipes 1643 are respectively communicated with two connection covers 1642, and the other ends of two connection pipes 1643 are respectively the water outlet and the water inlet of the adjustment component 16.
[0038] Specifically, the material of the water guide member 164 is stainless steel. The shape of the water guide cylinder 1641 is adapted to the shape of the first cavity. During the process of adjusting the temperature inside the concrete, the water pump 12 transports the water inside the water tank 11 through the connecting pipe 1643 into the inside of the water guide member 164. By exchanging heat with the inside of the concrete, the effect of adjusting the temperature inside the concrete is achieved.
[0039] Refer to the appendix Figures 5-6 As shown in the figure, in the embodiment of the present invention, the gaps between the water guide member 164 and the first cavity formed between the first support frame 162 and the first protective shell 161, and the gap between the water guide member 164 and the end cover 163 are filled with a heat-conducting agent 4. The heat-conducting agent 4 is used to enhance the heat-conducting effect between the water guide member 164 and the first protective shell 161, the first support frame 162 and the end cover 163. The heat-conducting agent 4 is heat-conducting silicone grease.
[0040] Refer to the appendix Figures 1-2 As shown in FIGS. 7-8, in the embodiment of the present invention, the temperature measuring device 2 includes a second protective shell 21, a second support frame 22, a second temperature sensor 23, a control box 24, a second controller 25, and a data transceiver 26. The materials of the second support frame 22 and the second protective shell 21 are both metals. The second support frame 22 is fixedly arranged inside the second protective shell 21, and six second cavities are formed inside the protective shell. One second temperature sensor 23 is respectively arranged in the six second cavities. The six second temperature sensors 23 located inside the second cavity are on the same plane and constitute a group of second temperature sensors 23. At least more than three groups of second temperature sensors 23 are arranged at equal intervals in sequence along the axial direction of the protective shell inside the six second cavities. The control box 24 is arranged at one end of the second protective shell 21. The second controller 25 and the data transceiver 26 are sequentially arranged inside the control box 24. The signal input end of the second controller 25 is communicatively connected to the signal output end of the second temperature sensor 23. The signal output end of the second controller 25 is communicatively connected to the signal input end of the data transceiver 26. The signal output end of the data transceiver 26 is communicatively connected to the signal input end of the first controller 3.
[0041] It should be noted that a group of second temperature sensors 23 includes six second temperature sensors 23. The six second temperature sensors 23 are on the same plane and are used to detect the temperature of the same point inside the concrete. By taking the average of the six second temperature sensors 23, the temperature of the current acquisition point can be obtained. It can be understood that multiple groups of second temperature sensors 23 arranged along the axial direction of the protective shell are used to detect the temperatures of multiple points in the axial direction of the protective shell inside the concrete, so as to obtain the average temperature inside the concrete and improve the detection accuracy. The collected temperature is calculated by the controller to obtain the average value and then sent to the first controller 3 through the data transceiver 26.
[0042] Referring to the attached Figures 1-2 As shown in FIGS. 7-8, in the embodiment of the present invention, a heat-conducting agent 4 is provided in the gap between the second temperature sensor 23 and the second cavity portion to enhance the heat-conducting effect and facilitate the second temperature sensor 23 to detect the temperature.
[0043] Referring to the attached Figure 1 and 3 As shown, in the embodiment of the present invention, the temperature control system 6 includes a temperature acquisition module 61, a temperature analysis module 62, and a temperature adjustment module 63. The temperature acquisition module 61 is used to acquire the data of the first temperature sensor 15, the second temperature sensor 23, and the third temperature sensor 5. The temperature analysis module 62 is used to analyze the acquired data to obtain an analysis result. The temperature adjustment module 63 is used to control the water pump 12, the heater 13, or the cooler 14 to adjust the temperature of the concrete in the casting linear accelerator room according to the analysis result.
[0044] It should be noted that the temperature acquisition module 61 acquires the data of the first temperature sensor 15, the third temperature sensor 5, and the second temperature sensor 23. The temperature adjustment module 63 controls the water pump 12 to transport the water inside the water tank 11 into the adjustment assembly 16 for circulation. The temperature analysis module 62 analyzes the data of the third temperature sensor 5 and the second temperature sensor 23. When the data detected by the third temperature sensor 5 is inconsistent with the data detected by the second temperature sensor 23, the water temperature inside the water tank 11 when the data detected by the second temperature sensor 23 is the same as the data detected by the third temperature sensor 5 is calculated. The temperature adjustment module 63 controls the heater 13 or the cooler 14 to start according to the data of the first temperature sensor 15 acquired, and adjusts the water temperature inside the water tank 11 to reach the water temperature calculated by the temperature analysis module 62. Then, the water pump 12 transports the water inside the water tank 11 into the adjustment assembly 16 to adjust the temperature inside the concrete, so that the temperature inside the concrete is consistent with the external temperature;
[0045] As a preferred embodiment, for the adjustment of the temperature difference between the inside and outside of the concrete, it can also be that the temperature acquisition module 61 acquires the data of the first temperature sensor 15, the third temperature sensor 5, and the second temperature sensor 23. The temperature analysis module 62 calculates the temperature difference between the data of the third temperature sensor 5 and the first temperature sensor 15. The temperature analysis module 62 controls the heater 13 or the cooler 14 to start according to the temperature difference calculated by the temperature analysis module 62 to adjust the water temperature inside the water tank 11 to be consistent with the data acquired by the third temperature sensor 5. At the same time, the temperature adjustment module 63 controls the water pump 12 to transport the water inside the water tank 11 into the adjustment assembly 16 for circulation to adjust the temperature inside the concrete, so that the temperature inside the concrete is consistent with the external temperature.
[0046] Referring to the attached Figures 1-9As shown in the figure, the present invention also provides a method for adjusting the construction temperature of the main structure of a linear accelerator room, which includes the following steps:
[0047] S1. Preparation work: After setting up the support system and formwork, holes with the same diameter as the first protective shell 161 and the second protective shell 21 are respectively opened on the formwork, and the temperature adjustment device 1 and the temperature measurement device 2 are respectively installed. Both the first protective shell 161 and the second protective shell 21 are in contact with the steel bars to be poured inside the formwork. Keep the end cover 163 of the temperature adjustment device 1 and both ends of the temperature measurement device 2 outside the formwork. Release agent is respectively applied to the outside of the first protective shell 161 and the second protective shell 21, and the joints between the first protective shell 161 and the second protective shell 21 and the formwork are sealed;
[0048] S2. Concrete pouring: Pour concrete into the set formwork;
[0049] S3. Concrete temperature monitoring: The third temperature sensor 5 monitors the temperature of the surface of the concrete for pouring the linear accelerator room, and the second temperature sensor 23 monitors the temperature inside the concrete;
[0050] S4. Concrete temperature adjustment: The temperature acquisition module 61 acquires the data of the first temperature sensor 15, the third temperature sensor 5 and the second temperature sensor 23. The temperature adjustment module 63 controls the water pump 12 to transport the water inside the water tank 11 into the inside of the adjustment component 16 for circulation. The temperature analysis module 62 analyzes the data of the third temperature sensor 5 and the second temperature sensor 23. When the data detected by the third temperature sensor 5 is inconsistent with the data detected by the second temperature sensor 23, calculate the water temperature inside the water tank 11 when the data detected by the second temperature sensor 23 is the same as the data detected by the third temperature sensor 5. The temperature adjustment module 63 controls the heater 13 or the cooler 14 to start according to the data of the acquired first temperature sensor 15 to adjust the water temperature inside the water tank 11 to the water temperature calculated by the temperature analysis module 62. Then, the water pump 12 transports the water inside the water tank 11 into the inside of the adjustment component 16 to adjust the temperature inside the concrete, so that the temperature inside the concrete is consistent with the external temperature;
[0051] S5. Demolition: After the concrete solidifies to a strength that can be demolished, the temperature adjustment device 1 and the temperature measurement device 2 are respectively taken out of the concrete. After cleaning the holes left after demolition, they are repaired.
[0052] Specifically, the temperature acquisition module 61 acquires the data of the first temperature sensor 15, the third temperature sensor 5, and the second temperature sensor 23. The temperature analysis module 62 analyzes the data of the third temperature sensor 5 and the second temperature sensor 23. When the data detected by the third temperature sensor 5 is inconsistent with the data detected by the second temperature sensor 23, it calculates the water temperature inside the water tank 11 when the data detected by the second temperature sensor 23 is the same as the data detected by the third temperature sensor 5. After the temperature adjustment module 63 controls the heater 13 or the cooler 14 to start and adjust the water temperature inside the water tank 11 to reach the water temperature calculated by the temperature analysis module 62 according to the data of the first temperature sensor 15 collected, it controls the water pump 12 to transport the water inside the water tank 11 to the inside of the adjustment component 16 for circulation, so as to adjust the temperature inside the concrete and make the temperature inside the concrete consistent with the external temperature, thus avoiding the problem that the excessive temperature difference between the inside and outside of the concrete causes cracks in the concrete.
[0053] It should be noted that the specific model specifications of the heater 13, the cooler 14, the first temperature sensor 15, the second temperature sensor 23, the third temperature sensor 5, the first controller 3, and the second controller 25 need to be selected and determined according to the actual specifications of the device. The specific selection calculation method adopts the existing technology in this field, so it will not be elaborated in detail.
[0054] The power supply and principle of the heater 13, the cooler 14, the first temperature sensor 15, the second temperature sensor 23, the third temperature sensor 5, the first controller 3, and the second controller 25 are clear to those skilled in the art, so they will not be described in detail here.
[0055] Obviously, those skilled in the art can make various changes and modifications to the present invention without departing from the spirit and scope of the present invention. Thus, if these modifications and variations of the present invention fall within the scope of the claims of the present invention and its equivalent technologies, the present invention also intends to include these changes and modifications.
Claims
1. A construction temperature regulation system for the main structure of a linear accelerator room, characterized in that, It includes a third temperature sensor. The signal output end of the third temperature sensor is communicatively connected to a first controller. The third temperature sensor is used to collect the temperature of the concrete surface of the pouring linear accelerator room. The first controller is communicatively connected to a temperature regulating device. The temperature regulating device is connected to one side inside the concrete of the pouring linear accelerator room. The signal input end of the first controller is communicatively connected to a temperature measuring device. The temperature measuring device is arranged on the other side inside the concrete of the pouring linear accelerator room. A temperature control system is arranged on the first controller; The temperature regulating device includes a water tank, a water pump, a heater, a cooler, a first temperature sensor and an adjusting component. The heater, the cooler and the first temperature sensor are sequentially arranged inside the water tank. The water inlet of the water pump is communicated with the water outlet of the water tank. The water outlet of the water pump is communicated with the water inlet of the adjusting component. The water outlet of the adjusting component is communicated with the water inlet of the water tank. The signal output end of the first temperature sensor is communicatively connected to the signal input end of the controller. The signal input ends of the water pump, the heater and the cooler are communicatively connected to the signal output end of the controller; The adjusting component includes a first protective housing, a first support frame, end caps and a water guiding member. The first support frame is fixedly arranged inside the first protective housing. The materials of the first support frame and the first protective housing are both metal. Six first cavity parts are formed inside the first protective housing. The first protective housing is arranged inside the concrete of the pouring linear accelerator room. The two end caps are located outside the concrete and are respectively communicated with both ends of the first protective housing. The water guiding member is arranged inside the container composed of the first protective housing and the end caps.
2. The temperature regulation system for the construction of the main structure of a linear accelerator room according to claim 1, characterized in that: The water guiding member includes a water guiding cylinder, a connecting cover and a connecting pipe. The water guiding cylinder is arranged inside the first cavity part formed between the first support frame and the first protective housing. Both ends of the water guiding cylinder are respectively communicated with the two connecting covers. One ends of the two connecting pipes are respectively communicated with the two connecting covers. The other ends of the two connecting pipes are respectively the water outlet and the water inlet of the adjusting component.
3. A temperature regulation system for the construction of the main structure of a linear accelerator room according to claim 2, characterized in that: The gaps between the water guiding member and the first cavity part formed between the first support frame and the first protective housing and the gaps between the water guiding member and the end caps are filled with a heat conducting agent.
4. A temperature regulation system for the construction of the main structure of a linear accelerator room according to claim 3, characterized in that: The temperature measurement device includes a second protective housing, a second support frame, second temperature sensors, a control box, a second controller, and a data transceiver. The second support frame and the second protective housing are both made of metal. The second support frame is fixedly arranged inside the second protective housing, forming six second cavity parts inside the protective housing. One of the second temperature sensors is respectively arranged in each of the six second cavity parts. The six second temperature sensors located inside the second cavity parts are on the same plane, constituting a group of the second temperature sensors. At least more than three groups of the second temperature sensors are arranged at equal intervals in sequence along the axial direction of the protective housing inside the six second cavity parts. The control box is arranged at one end of the second protective housing, and the second controller and the data transceiver are sequentially arranged inside the control box. The signal input end of the second controller is communicatively connected to the signal output end of the second temperature sensor, the signal output end of the second controller is communicatively connected to the signal input end of the data transceiver, and the signal output end of the data transceiver is communicatively connected to the signal input end of the first controller.
5. The construction temperature regulation system for the main structure of a linear accelerator room according to claim 4, characterized in that: A heat-conducting agent is provided in the gap between the second temperature sensor and the second cavity part.
6. The temperature adjustment system for the construction of the main structure of a linear accelerator room according to claim 5, characterized in that: The temperature control system includes a temperature acquisition module, a temperature analysis module, and a temperature adjustment module. The temperature acquisition module is used to acquire the data of the first temperature sensor, the second temperature sensor, and the third temperature sensor. The temperature analysis module is used to analyze the acquired data to obtain an analysis result. The temperature adjustment module is used to control a water pump, a heater, or a cooler to adjust the temperature of the concrete for pouring the linear accelerator room according to the analysis result.
7. A construction temperature regulation method for the main structure of a linear accelerator room, which applies a construction temperature regulation system for the main structure of a linear accelerator room as described in any one of claims 1-6, characterized in that: It includes the following steps: S1, Preparation work. After setting up the support system and the formwork, holes with the same diameter as the first protective housing and the second protective housing are respectively opened on the formwork, and a temperature adjustment device and a temperature measurement device are respectively installed. Both the first protective housing and the second protective housing are in contact with the steel bars to be poured inside the formwork. Keep the end cover of the temperature adjustment device and both ends of the temperature measurement device outside the formwork. Release agent is respectively applied to the outside of the first protective housing and the second protective housing, and the joints between the first protective housing and the second protective housing and the formwork are sealed. S2, Concrete pouring. Pour concrete into the set formwork. S3, Concrete temperature monitoring. The third temperature sensor monitors the temperature of the surface of the concrete for pouring the linear accelerator room, and the second temperature sensor monitors the temperature inside the concrete. S4. Concrete temperature regulation: The temperature acquisition module collects data from the first temperature sensor, the third temperature sensor, and the second temperature sensor. The temperature adjustment module controls the water pump to transport the water inside the water tank into the inside of the adjustment component for circulation. The temperature analysis module analyzes the data of the third temperature sensor and the second temperature sensor. When the data detected by the third temperature sensor is inconsistent with the data detected by the second temperature sensor, it calculates the water temperature inside the water tank when the data detected by the second temperature sensor is the same as that detected by the third temperature sensor. The temperature adjustment module controls the heater or cooler to start according to the data of the first temperature sensor collected, and adjusts the water temperature inside the water tank to reach the water temperature calculated by the temperature analysis module. Then, the water pump transports the water inside the water tank into the inside of the adjustment component to adjust the temperature inside the concrete, so that the temperature inside the concrete is consistent with the external temperature; S5. Demolition: After the concrete solidifies to reach the strength that can be demolished, the temperature regulation device and the temperature measurement device are respectively taken out of the concrete, and the holes left after demolition are cleaned and then repaired.
Citation Information
Patent Citations
Mass concrete temperature intelligent monitoring and controlling device and method
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Large-volume concrete anti-cracking construction method for high-frequency linear accelerator
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