Cyclic impact test device based on long-term deformation effect of hard rock in high-energy environment
By designing a cyclic impact test device consisting of a shell, a rotating shaft, a clamping mechanism, a spray mechanism and a wind supply mechanism, the problem of low efficiency in long-term deformation effect testing of hard rock is solved, rapid cyclic impact testing under various conditions in a high-energy environment is achieved, and the authenticity and efficiency of the test are improved.
Patent Information
- Application Number
- CN202510402190.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-01
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2045-04-01
AI Technical Summary
The efficiency of cyclic impact testing of long-term deformation of hard rock in existing technologies is low, and it is difficult to simulate multiple conditions in a high-energy environment for effective testing.
A cyclic impact test device for high-energy environments was designed. The device included a shell, a rotating shaft, a partition, a clamping mechanism, a spraying mechanism, a wind supply mechanism, and a driving mechanism. The spraying mechanism provided liquid, and the wind supply mechanism provided hot or cold air. Combined with the rotation of the driving mechanism, rapid switching of multiple test chambers was achieved to simulate cyclic impact tests under different environmental factors.
It improves the test efficiency of long-term deformation effect of hard rock, can carry out cyclic impact test under various environmental factors, provides a more realistic and reliable test environment, and improves the comprehensiveness and efficiency of the test.
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Figure CN119915657B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of cyclic impact testing, and in particular to a cyclic impact testing device based on the long-term deformation effect of hard rock in a high-energy environment. Background Art
[0002] With the development of mining and tunneling engineering, the mechanical behavior of hard rock in high-energy environments has attracted increasing attention. The long-term deformation effects of hard rock not only affect the stability and safety of engineering projects but also directly impact the efficiency and service life of resource development. However, cyclic impact testing of rock deformation over time is often inefficient. Summary of the Invention
[0003] The purpose of the present invention is to address the deficiencies in the prior art and provide a cyclic impact test device based on the long-term deformation effect of hard rock in a high-energy environment, thereby effectively improving the efficiency of cyclic impact testing of rocks.
[0004] To achieve the above-mentioned purpose, the present invention provides a cyclic impact test device based on the long-term deformation effect of hard rock in a high-energy environment, comprising: a shell; a rotating shaft, the rotating shaft is rotatably arranged in the shell; a partition, one side of the partition is connected to the peripheral wall of the rotating shaft, and the other side of the partition extends along the radial direction of the rotating shaft and slides with the inner wall of the shell, a plurality of the partitions are evenly distributed along the circumference of the rotating shaft, two adjacent partitions and the peripheral wall of the rotating shaft and the inner wall of the shell are formed to form a test cavity, and the plurality of test cavities are not connected to each other, the shell is provided with a liquid inlet and an air inlet, at least one of the test cavity is connected to the liquid inlet and the air inlet, and the outer wall of the shell is provided with an openable and closable A sealing door, at least one of the test chambers corresponds to the sealing door; a clamping mechanism, each of the test chambers is provided with the clamping mechanism, the clamping mechanism is connected to the partition of the test chamber and is used to clamp the test body; a spraying mechanism, the spraying mechanism is connected to the liquid inlet, the spraying mechanism is configured to provide liquid to the test chamber corresponding to the liquid inlet; a wind supply mechanism, the wind supply mechanism is connected to the air inlet, the wind supply mechanism is configured to provide hot air or cold air to the test chamber corresponding to the air inlet; a driving mechanism, the driving mechanism is connected to the rotating shaft, the driving mechanism is used to control the liquid inlet and the air inlet to be connected to one of the multiple test chambers.
[0005] The advantages of the cyclic impact test device based on the long-term deformation effect of hard rock in a high-energy environment over the existing technology are: a spray mechanism is connected to the liquid inlet to provide liquid to the test chamber, which can be either high-temperature or low-temperature liquid; a wind supply mechanism is connected to the air inlet to provide hot or cold air to the test chamber, thereby simulating the natural environment using liquid and wind in the test chamber, allowing the test body in the test chamber to undergo cyclic impact testing under various environmental factors. The drive mechanism drives the shaft to rotate, thereby driving the partition connected to the shaft to rotate, causing each test chamber to rotate accordingly, thereby allowing different test chambers to be connected to the liquid inlet and air inlet, allowing for rapid cyclic impact testing of multiple test bodies, greatly improving overall test efficiency.
[0006] In some embodiments, there are multiple liquid inlets and multiple air inlets, and multiple spraying mechanisms and multiple wind supply mechanisms. Each test cavity is connected to a spraying mechanism through a liquid inlet, and each test cavity is connected to a wind supply mechanism through an air inlet.
[0007] In some embodiments, among two adjacent wind supply mechanisms arranged along the circumference of the shell, one wind supply mechanism is configured to provide hot air to the corresponding test cavity, and the other wind supply mechanism is configured to provide cold air to the corresponding test cavity.
[0008] In some embodiments, the outer side wall of the shell is provided with a plurality of the sealing doors, and each of the test chambers corresponds to one of the sealing doors.
[0009] In some embodiments, the clamping mechanism includes: a first clamping portion and a second clamping portion, the first clamping portion and the second clamping portion are arranged opposite to each other and are used to clamp the test body in a first direction; a third clamping portion and a fourth clamping portion, the third clamping portion and the fourth clamping portion are arranged opposite to each other and are used to clamp the test body in a second direction; the first direction and the second direction are perpendicular to each other.
[0010] In some embodiments, one end of the first clamping portion is fixed to a peripheral wall of the rotating shaft, and the other end of the first clamping portion has a clamping reference surface that abuts against the test body.
[0011] In some embodiments, each of the two partitions of the test chamber is provided with a first fixing frame, and the third clamping portion and the fourth clamping portion are movably connected to the two first fixing frames respectively.
[0012] In some embodiments, a second fixing frame is connected between the upper ends of the two first fixing frames, a third fixing frame is connected between the lower ends of the two first fixing frames, and the second clamping portion is detachably connected to the second fixing frame and the third fixing frame.
[0013] In some embodiments, the second clamping portion includes: a connecting frame, which is detachably connected to the second fixing frame and the third fixing frame respectively; a second pressing portion, which is used to abut the test body; a connecting rod, one end of which passes through the connecting frame and is connected to the second pressing portion, and the connecting rod can slide along the first direction; a nut, which is rotatably connected to the side of the connecting frame away from the first clamping portion; a threaded column, which passes through the nut and the connecting frame in sequence and is connected to the second pressing portion, and the threaded column is threadedly connected to the nut.
[0014] In some embodiments, the third clamping portion and the fourth clamping portion are synchronously moved closer to or away from the test body through a synchronization mechanism; the synchronization mechanism includes: two first movable rods, the two first movable rods are respectively parallel to the two first fixed frames, the distance between the two first movable rods is greater than the distance between the two first fixed frames, the upper ends of the two first movable rods are connected by a second movable rod, and the lower ends of the two first movable rods are connected by a third movable rod; a synchronization rod, each of the first movable rods is provided with a synchronization rod on the side close to the first fixed frame, and the synchronization rod has a first end and a second end, the first end is the end portion of the synchronization rod connected to the first movable rod, and the second end extends along the first direction, and the two The spacing between the first ends is smaller than the spacing between the two second ends, the third clamping portion has a first extension portion passing through one first fixing frame, the fourth clamping portion has a second extension portion passing through another first fixing frame, one second end passes through the first extension portion and slides with the first extension portion, and the other second end passes through the second extension portion and slides with the second extension portion; a guide rod, one end of the guide rod is connected to the second movable rod, and the other end of the guide rod slides with the second fixing frame; a screw rod, one end of the screw rod is rotatably connected to the second movable rod, and the other end of the screw rod is threadedly connected to the second fixing frame, and the guide rod and the screw rod both extend along the first direction. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] The above and / or additional aspects and advantages of the present invention will become apparent and readily understood from the following description of the embodiments with reference to the accompanying drawings, in which:
[0016] Figure 1 It is a schematic diagram of the overall structure of an embodiment of the present invention.
[0017] Figure 2 This is one of the structural schematic diagrams of the interior of the housing according to an embodiment of the present invention.
[0018] Figure 3 It is a structural diagram of the wind power supply mechanism according to an embodiment of the present invention.
[0019] Figure 4 This is the second structural schematic diagram of the interior of the shell of an embodiment of the present invention.
[0020] Figure 5 This is one of the structural diagrams of the clamping mechanism according to an embodiment of the present invention.
[0021] Figure 6 This is the second structural diagram of the clamping mechanism according to the embodiment of the present invention.
[0022] Figure 7 2 is a top view of the clamping mechanism according to an embodiment of the present invention.
[0023] Figure 8 This is the third structural diagram of the clamping mechanism according to an embodiment of the present invention.
[0024] Reference numerals:
[0025] 1. Shell; 11. Liquid inlet; 12. Air inlet; 13. Exhaust outlet; 14. Sealing door; 2. Rotating shaft; 3. Partition; 31. First movable ring; 32. Second movable ring; 33. Connecting strip; 4. Clamping mechanism; 41. First clamping portion; 411. First pressing portion; 42. Second clamping portion; 421. Connecting frame; 422. Second pressing portion; 423. Connecting rod; 424. Nut; 425. Threaded column; 43. Third clamping portion; 431. First extension portion; 432. Third pressing portion; 44. Fourth clamping portion; 441. Second extension portion; 442. Fourth Pressing portion; 45. Fifth clamping portion; 46. Sixth clamping portion; 47. Fixed frame; 471. First fixing frame; 472. Second fixing frame; 473. Third fixing frame; 5. Spraying mechanism; 6. Wind supply mechanism; 61. Fan; 62. Air inlet pipe; 7. Driving mechanism; 8. Positioning mechanism; 81. Connecting seat; 82. Positioning pin; 9. Synchronizing mechanism; 91. Movable frame; 911. First movable rod; 912. Second movable rod; 913. Third movable rod; 92. Synchronizing rod; 921. First end; 922. Second end; 93. Guide rod; 94. Screw. DETAILED DESCRIPTION
[0026] The following describes embodiments of the present invention in detail. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended only to explain the present invention and are not to be construed as limiting the present invention.
[0027] The following describes a cyclic impact testing device based on the long-term deformation effect of hard rock in a high-energy environment according to an embodiment of the present invention with reference to the accompanying drawings.
[0028] Reference Figures 1-8The present invention provides a cyclic impact test device based on the long-term deformation effect of hard rock in a high-energy environment, comprising: a shell 1, a rotating shaft 2, a partition 3, a clamping mechanism 4, a spraying mechanism 5, a wind supply mechanism 6 and a driving mechanism 7. The outer surface of the shell 1 can be a regular polygonal structure or a cylindrical structure, and the inner wall of the shell 1 is always a cylindrical circumferential surface. To facilitate the installation of the shell 1, the shell 1 is arranged on a base. The rotating shaft 2 is rotatably arranged in the shell 1, and the center of the rotating shaft 2 coincides with the center of the shell 1. One side of the partition 3 is connected to the circumferential wall of the rotating shaft 2, and the other side of the partition 3 extends along the radial direction of the rotating shaft 2 and slides with the inner wall of the shell 1. There are multiple partitions 3 evenly distributed along the circumference of the rotating shaft 2. Two adjacent partitions 3 and the circumferential wall of the rotating shaft 2 and the inner wall of the shell 1 form a test cavity. The multiple test cavities are not connected to each other. Specifically, the top wall of the test chamber is the inner top wall of the shell 1, the inner wall of the test chamber is formed by sequentially connecting the circumferential inner wall of the shell 1, the side walls of the partition 3, and the circumferential wall of the rotating shaft 2, and the bottom wall of the test chamber is the bottom wall of the shell 1. Furthermore, a first movable ring 31 is provided above the partition 3, and a second movable ring 32 is provided below the partition 3. The centers of the first movable ring 31 and the second movable ring 32 coincide with the center of the rotating shaft 2. The upper and lower end surfaces of each partition 3 are provided with connecting strips 33 extending along the direction of the partition 3. The connecting strips 33 located above the multiple partitions 3 have one end connected to the circumferential wall of the rotating shaft 2 and the other end connected to the inner wall of the first movable ring 31. The connecting strips 33 located below the multiple partitions 3 have one end connected to the circumferential wall of the rotating shaft 2 and the other end connected to the inner wall of the second movable ring 32. The first movable ring 31 and the second movable ring 32 both rotate in conjunction with the shell 1. When the rotating shaft 2 drives the test chamber to switch, the other side of the partition 3 slides with the inner circumferential wall of the shell 1, the upper end surface of the partition 3 slides with the inner top wall of the shell 1, and the lower end surface of the partition 3 slides with the inner bottom wall of the shell 1. The shell 1 is provided with a liquid inlet 11 and an air inlet 12, which can be located at the top of the shell 1. At least one test chamber is connected to the liquid inlet 11 and the air inlet 12. The outer wall of the shell 1 is provided with an openable and closable sealing door 14. At least one test chamber corresponds to the sealing door 14. The sealing door 14 forms part of the inner wall of the test chamber. When the sealing door 14 is closed, it forms an arc-shaped inner wall that connects to the inner wall of the shell 1. The other side of the partition 3 slides with the inner wall formed by the sealing door 14. The sealing door 14 can be opened to accommodate a test object, which is a hard rock sample cut into a tetrahedron. Each test chamber is equipped with a clamping mechanism 4, which is connected to the chamber's partition 3 and is used to clamp the test object. When the rotating shaft 2 rotates, the clamping mechanism 4 in each test chamber drives the test object to move synchronously. A spraying mechanism 5 is connected to the liquid inlet 11 and is configured to supply liquid to the test chamber corresponding to the liquid inlet 11. The spraying mechanism 5 can provide hot or cold water, or other liquids depending on the test needs. The spraying mechanism 5 evenly sprays the liquid onto the surface of the test object.The wind supply mechanism 6 is connected to the air inlet 12 and is configured to provide hot or cold air to the test chamber corresponding to the air inlet 12. The wind supply mechanism 6 controls the temperature and humidity of the air. The drive mechanism 7 is connected to the rotating shaft 2. The drive mechanism 7 is used to control the connection between the liquid inlet 11 and the air inlet 12 and one of the multiple test chambers. The drive mechanism 7 can drive the rotating shaft 2 to rotate, thereby rotating different test chambers, switching different test chambers to correspond to the spray mechanism 5 and the wind supply mechanism 6, so that the partition 3 drives the test body in the test chamber to perform a cyclic impact test. The drive mechanism 7 is a motor, which is fixedly installed in the base. The output shaft of the motor is concentric with the rotating shaft 2 and is fixed to the lower end of the rotating shaft 2.
[0029] The embodiment of the present invention is achieved by placing a plurality of test bodies in a plurality of test chambers distributed along the circumference of the shell 1, and clamping and fixing the test bodies through the clamping mechanism 4 in each test chamber. The spray mechanism 5 is connected to the liquid inlet 11 to provide liquid to the test chamber, which can be a high-temperature liquid or a low-temperature liquid; the wind supply mechanism 6 is connected to the air inlet 12 to provide hot air or cold air to the test chamber, thereby realizing the use of liquid and wind to simulate the natural environment in the test chamber, so that the test body located in the test chamber can be subjected to cyclic impact tests under various environmental factors. The driving mechanism 7 drives the rotating shaft 2 to rotate, thereby driving the partition 3 connected to the rotating shaft 2 to rotate, so that each test chamber rotates accordingly, thereby enabling different test chambers to be connected to the liquid inlet 11 and the air inlet 12, and enabling multiple test bodies to be quickly subjected to cyclic impact tests, greatly improving the overall test efficiency.
[0030] The cyclic impact test device of the present invention can simulate the temperature, humidity, wind force and other conditions under actual working conditions, and provides a more realistic and reliable test environment for the study of the long-term deformation effect of hard rock.
[0031] According to some embodiments of the present invention, referring to Figures 1-4 There are multiple liquid inlets 11 and air inlets 12, and each test cavity is correspondingly provided with a liquid inlet 11 and an air inlet 12 above. There are multiple spraying mechanisms 5 and wind supply mechanisms 6, and each test cavity is connected to a spraying mechanism 5 through a liquid inlet 11, and each test cavity is connected to a wind supply mechanism 6 through an air inlet 12.
[0032] According to some embodiments of the present invention, referring to Figure 2 、 Figure 4 The spray mechanism 5 includes: a water supply tank, a spray pipe and a nozzle. Multiple top covers are fixed on the top of the shell 1, each top cover corresponds to a test cavity, and a spray pipe is fixed on each top cover. The spray pipe is provided with multiple nozzles, and the nozzles are tilted toward the center of the test cavity, that is, toward the position corresponding to the clamping mechanism 4, so that the liquid sprayed by the nozzle can be evenly sprayed onto the surface of the test object.
[0033] According to some embodiments of the present invention, referring to Figure 1 、 Figure 3 The wind supply mechanism 6 includes: a fan 61 and an air inlet pipe 62. The fan 61 is arranged on the base and is located on one side of the shell 1. The two ends of the air inlet pipe 62 are respectively connected to the air outlet end of the fan 61 and the air inlet 12 set on the shell 1. A discharge pipe is provided at the bottom of the shell 1, and the discharge pipe corresponds to the bottom of at least one test chamber. A valve is provided on the discharge pipe, which can be used to discharge the air in the test chamber to balance the pressure in the test chamber.
[0034] The fan 61 in the embodiment of the present invention can be a cooling or heating fan 61, which can switch modes as needed to provide cold or hot air into the test chamber. It can also be a strong wind hot air fan 61, a cold air fan 61, or an industrial hot air fan 61. The corresponding fan 61 can be selected as needed to provide air into the test chamber to simulate the environmental factors required for the test body to undergo a cyclic impact test. In other examples, the fan 61 can also be a common fan 61. The wind supply mechanism 6 also includes a heating device and / or a cooling device. The heating device and the cooling device are connected to the air inlet pipe 62, which can provide hot / cold air into the test chamber and thereby adjust the temperature of the test chamber.
[0035] In some embodiments, the discharge pipe can also be used to discharge the liquid remaining in the test chamber after being sprayed by the spraying mechanism 5 .
[0036] According to some embodiments of the present invention, referring to Figure 3 Among the two adjacent wind supply mechanisms 6 arranged along the circumference of the shell 1, one wind supply mechanism 6 is configured to provide hot air to the corresponding test chamber, and the other wind supply mechanism 6 is configured to provide cold air to the corresponding test chamber.
[0037] In a specific example, the test chamber corresponding to the wind supply mechanism 6 that provides hot air is a hot air test chamber, and the test chamber corresponding to the wind supply mechanism 6 that provides cold air is a cold air test chamber. The driving mechanism 7 drives the rotating shaft 2 to rotate, so that the hot air test chamber rotates to the adjacent cold air test chamber, so that the original hot air test chamber is switched to the cold air test chamber. Since the switched test chamber is connected to the wind supply mechanism 6 that provides cold air, cold air can be provided to its interior, so that the test body that has experienced the hot air environment continues to be tested in the cold air environment, completing a hot and cold cycle. Repeat the above steps of hot air supply, state switching and cold air supply, and carry out multiple cyclic impact tests according to the test requirements to more comprehensively study the deformation effect of hard rock under different temperature conditions. After completing all the predetermined cyclic tests, stop the operation of the driving mechanism 7, wind supply mechanism 6, etc., open the sealing door 14, and take out the test body after the test for subsequent analysis, detection and data processing.
[0038] According to some embodiments of the present invention, referring to Figures 1-4 The outer wall of the housing 1 is provided with a plurality of sealing doors 14, and each test cavity corresponds to a sealing door 14. The provision of a plurality of sealing doors 14 is conducive to corresponding to each test cavity, thereby improving the efficiency of placing or removing the test body.
[0039] According to some embodiments of the present invention, referring to Figure 4-Figure 8 The clamping mechanism 4 includes: a first clamping part 41, a second clamping part 42, a third clamping part 43, and a fourth clamping part 44. The first clamping part 41 and the second clamping part 42 are arranged opposite to each other and are used to clamp the test body in the first direction. The third clamping part 43 and the fourth clamping part 44 are arranged opposite to each other and are used to clamp the test body in the second direction. The first direction and the second direction are perpendicular to each other.
[0040] In a specific example, the test body is a hard rock sample cut into a tetrahedron. Preferably, the test body in this embodiment is a cube. The first clamping portion 41 and the second clamping portion 42 clamp the opposite sides of the test body in the first direction, and the third clamping portion 43 and the fourth clamping portion 44 clamp the other two sides of the test body in the second direction to complete the clamping and fixation of the test body.
[0041] According to some embodiments of the present invention, referring to Figure 4-Figure 8 One end of the first clamping portion 41 is fixed to the peripheral wall of the rotating shaft 2, and the other end of the first clamping portion 41 has a clamping reference surface that abuts the test object. The other end of the first clamping portion 41 is a first pressing portion 411. The first direction is the radial direction of the rotating shaft 2. After the test object is placed in the test chamber, the first clamping portion 41 is fixed to the peripheral wall of the rotating shaft 2 and serves as the clamping reference surface. The test object abuts the clamping reference surface of the first clamping portion 41. The second clamping portion 42 is then moved relative to the first clamping portion 41 in the first direction to complete the clamping of the test object.
[0042] According to some embodiments of the present invention, referring to Figure 4-Figure 8 The two partitions 3 of the test chamber are each provided with a first fixing bracket 471, and the third clamping portion 43 and the fourth clamping portion 44 are respectively movably connected to the two first fixing brackets 471. The third clamping portion 43 and the fourth clamping portion 44 are respectively mounted on the two partitions 3, which helps to improve the stability of the clamping mechanism 4.
[0043] According to some embodiments of the present invention, referring to Figure 4-Figure 8A second fixing frame 472 is connected between the upper ends of the two first fixing frames 471, and a third fixing frame 473 is connected between the lower ends of the two first fixing frames 471. The second clamping portion 42 is detachably connected to the second fixing frame 472 and the third fixing frame 473. The ends of the first fixing frame 471, the second fixing frame 472, the first fixing frame 471, and the third fixing frame 473 are sequentially connected to form a square fixed frame 47. The two first fixing frames 471 are the two side edges of the fixed frame 47, the second fixing frame 472 is the top edge of the fixed frame 47, and the third fixing frame 473 is the bottom edge of the fixed frame 47. The test object can be placed on the bottom edge of the fixed frame 47 and abutted against the clamping reference surface of the first clamping portion 41, which can facilitate clamping and installation of the test object. The second clamping portion 42 is then installed on the second fixing frame 472 and the third fixing frame 473, and the test object is clamped by the second clamping portion 42.
[0044] According to some embodiments of the present invention, referring to Figure 5 、 Figure 6 The second clamping part 42 includes: a connecting frame 421, a second pressing part 422, a connecting rod 423, a nut 424 and a threaded column 425. The connecting frame 421 is detachably connected to the second fixing frame 472 and the third fixing frame 473 respectively. The second pressing part 422 is used to abut the test body. One end of the connecting rod 423 passes through the connecting frame 421 and is connected to the second pressing part 422. The connecting rod 423 can slide along the first direction. The nut 424 is rotatably connected to the side of the connecting frame 421 away from the first clamping part 41. The threaded column 425 passes through the nut 424 and the connecting frame 421 in sequence and is connected to the second pressing part 422. The threaded column 425 is threadedly connected to the nut 424.
[0045] Before the test body is installed, the connecting frame 421 is in a state of being separated from the second fixing frame 472 and the third fixing frame 473, so that the test body is placed from one side of the fixed frame 47 to the inside of the fixed frame 47. After the test body is abutted against the first clamping part 41, the nut 424 is rotated forward, so that the threaded column 425 approaches the test body along the first direction, and the connecting rod 423 slides along the first direction toward the first clamping part 41, driving the second pressing part 422 to abut against the surface of the test body.
[0046] According to some embodiments of the present invention, referring to Figure 5-Figure 8A positioning mechanism 8 is provided on one side of each of the second fixing frame 472 and the third fixing frame 473, for achieving a detachable connection between the second clamping portion 42 and the fixed frame 47. The connecting frame 421 is a U-shaped frame, and the open ends of the U-shaped frame are detachably connected to the second fixing frame 472 and the third fixing frame 473, respectively. Specifically, the connecting frame 421 includes a first plate, a second plate, and a third plate. The second plate extends in the vertical direction, and the first plate and the third plate are respectively arranged at the upper and lower ends of the second plate. The first plate and the third plate are both perpendicular to the second plate, and the threaded column 425 is provided on the second plate.
[0047] The positioning mechanism 8 includes: four connecting seats 81 and four positioning pins 82. The second fixing frame 472 is provided with two spaced connecting seats 81 on the side away from the first clamping part 41, and the third fixing frame 473 is provided with two spaced connecting seats 81 on the side away from the first clamping part 41. Each connecting seat 81 is rotatably connected to a positioning pin 82. After the two positioning pins 82 located above are rotated, they are tightly pressed against the side of the first plate away from the third plate, and after the two positioning pins 82 located below are rotated, they are tightly pressed against the side of the third plate away from the first plate.
[0048] Furthermore, to improve the installation stability of the connecting frame 421, the first plate is inserted between the two upper connecting seats 81 and forms an interference fit with the two connecting seats 81, and the third plate is inserted between the two lower connecting seats 81 and forms an interference fit with the two connecting seats 81. The connecting seats 81 have extensions, and the lower end surface of the first plate can abut against the extensions of the two upper connecting seats 81, while the upper end surface of the third plate can abut against the extensions of the two lower connecting seats 81. It should be noted that the connecting frame 421 has a certain degree of rigidity and is not easily deformed, making the four locating pins 82 more stable and reliable when fixing the connecting frame 421.
[0049] According to some embodiments of the present invention, referring to Figure 4-Figure 8 The third clamping portion 43 and the fourth clamping portion 44 are synchronously moved toward or away from the test body through the synchronization mechanism 9, which is beneficial to improving the clamping efficiency.
[0050] The synchronization mechanism 9 includes: two first movable rods 911, a second movable rod 912, a third movable rod 913, a synchronization rod 92, a guide rod 93 and a screw 94. The two first movable rods 911 are parallel to the two first fixed frames 471 respectively. The spacing between the two first movable rods 911 is greater than the spacing between the two first fixed frames 471. The upper ends of the two first movable rods 911 are connected by the second movable rod 912, and the lower ends of the two first movable rods 911 are connected by the third movable rod 913. The ends of the first movable rod 911, the second movable rod 912, the first movable rod 911 and the third movable rod 913 are connected in sequence to form a movable frame 91. The two first movable rods 911 are respectively the side edges of the movable frame 91, the second movable rod 912 is the top edge of the movable frame 91, and the third movable rod 913 is the bottom edge of the movable frame 91.
[0051] Each first movable rod 911 is provided with a synchronization rod 92 on one side thereof near the first fixed frame 471. The synchronization rod 92 has a first end 921 and a second end 922. The first end 921 is the end connecting the synchronization rod 92 to the first movable rod 911, and the second end 922 extends in the first direction. The spacing between the two first ends 921 is smaller than the spacing between the two second ends 922. The third clamping portion 43 has a first extension 431 that passes through one first fixed frame 471 and slides with the first fixed frame 471 in the second direction. The fourth clamping portion 44 has a second extension 441 that passes through the other first fixed frame 471 and slides with the first fixed frame 471 in the second direction. One second end 922 passes through the first extension 431 and slides with the first extension 431, while the other second end 922 passes through the second extension 441 and slides with the second extension 441. One end of the guide rod 93 is connected to the second movable rod 912, and the other end of the guide rod 93 is slidably engaged with the second fixed frame 472. Specifically, a first mounting seat is fixed to the upper end surface of the second movable rod 912 and the second fixed frame 472. One end of the guide rod 93 is fixed to the first mounting seat on the second movable rod 912, and the other end of the guide rod 93 passes through the first mounting seat on the second fixed frame 472 and slidably engages with the first mounting seat. One end of the screw rod 94 is rotatably connected to the second movable rod 912, and the other end of the screw rod 94 is threadedly connected to the second fixed frame 472. Specifically, a second mounting seat is fixed to the upper end surface of the second movable rod 912 and the second fixed frame 472. One end of the screw rod 94 is rotatably connected to the second mounting seat of the second movable rod 912, and the other end of the screw rod 94 passes through the second mounting seat on the second fixed frame 472 and is threadedly engaged therewith. Both the guide rod 93 and the screw rod 94 extend along the first direction. A torsion block is fixed at the end of the screw 94 passing through the second fixed frame 472. By rotating the torsion block forward, the screw 94 can be driven to rotate, thereby allowing the second movable rod 912 to approach the second fixed frame 472. By rotating the torsion block backward, the screw 94 can be driven to rotate backward, thereby allowing the second movable rod 912 to move away from the second fixed frame 472.
[0052] By rotating the torsion block forward, when the second movable rod 912 is brought close to the second fixed frame 472, the synchronization rod 92 on the first movable rod 911 is driven to approach the second fixed frame 472. Since the spacing between the first ends 921 of the two synchronization rods 92 is smaller than the spacing between the second ends 922, and since one synchronization rod 92 slides with the first protrusion 431 and the other synchronization rod 92 slides with the second protrusion 441, one synchronization rod 92 pushes the first protrusion 431 to slide along the second direction toward the center of the fixed frame 47, and the other synchronization rod 92 pushes the second protrusion 441 to slide along the second direction toward the center of the fixed frame 47, thereby reducing the spacing between the third clamping portion 43 and the fourth clamping portion 44 to clamp the other two opposite sides of the test body.
[0053] On the contrary, by rotating the torsion block in the opposite direction, the screw 94 can be driven to rotate in the opposite direction, so that the second movable rod 912 moves away from the second fixed frame 472, and then one synchronization rod 92 pulls the first extension part 431 to slide along the second direction toward the direction away from the center of the fixed frame 47, and the other synchronization rod 92 pulls the second extension part 441 to slide along the second direction toward the direction away from the center of the fixed frame 47, and the distance between the third clamping part 43 and the fourth clamping part 44 increases, loosening the clamping of the test body.
[0054] In some specific examples, the ends of the first fixed frame 471, the second fixed frame 472, the first fixed frame 471 and the third fixed frame 473 are connected in sequence to form a square fixed frame 47, and the ends of the first movable rod 911, the second movable rod 912, the first movable rod 911 and the third movable rod 913 are connected in sequence to form a movable frame 91. The movable frame 91 is located on the side of the fixed frame 47 close to the first clamping portion 41, and the movable frame 91 is parallel to the fixed frame 47. The spacing between the two first movable rods 911 is greater than the spacing between the two first fixed frames 471. The second movable rod 912 is parallel to the second fixed frame 472 and the upper surface is flush, and the third movable rod 913 is parallel to the third fixed frame 473 and the lower surface is flush.
[0055] In other examples, the third clamping portion 43 includes a first protruding portion 431 and a third pressing portion 432, wherein the third pressing portion 432 abuts against the surface of the test body, and the first protruding portion 431 is fixed to the other side of the third pressing portion 432, and the first protruding portion 431 is movably connected to a first fixing frame 471. The end of the first protruding portion 431 passes through the first fixing frame 471 and can slide in the first direction. The fourth clamping portion 44 includes a second protruding portion 441 and a fourth pressing portion 442, wherein the end of the second protruding portion 441 passes through another first fixing frame 471 and can slide in the first direction. The third clamping portion 43 and the fourth clamping portion 44 are symmetrically arranged about the center of the fixed frame 47.
[0056] According to some embodiments of the present invention, referring to Figure 5-Figure 8 The clamping mechanism 4 also includes: a fifth clamping part 45 and a sixth clamping part 46, which clamp the upper and lower end surfaces of the test body respectively. The fifth clamping part 45 is movably provided on the second fixed frame 472, and the sixth clamping part 46 is movably provided on the third fixed frame 473.
[0057] The fifth clamping portion 45 includes a third extension and a fifth pressing portion. The third extension passes through the second fixing bracket 472 and slidably engages with the second fixing bracket 472. The fifth pressing portion is fixed to the lower end of the third extension, which passes through the second fixing bracket 472, and abuts the upper surface of the test object. The sixth clamping portion 46 includes a fourth extension and a sixth pressing portion. The fourth extension passes through the third fixing bracket 473 and slidably engages with the third fixing bracket 473. The sixth pressing portion is fixed to the upper end of the fourth extension and abuts the lower surface of the test object.
[0058] The synchronization mechanism 9 is provided with a total of four synchronization rods 92, which correspond to the centers of the top edge, two side edges, and the bottom edge of the fixed frame 47, respectively. The two synchronization rods 92 located at the top edge and the bottom edge of the fixed frame 47 are respectively connected to the fifth clamping portion 45 and the sixth clamping portion 46, so as to drive the fifth clamping portion 45 and the sixth clamping portion 46 to synchronously clamp the test object. Specifically, a synchronization rod 92 is provided on the side of the second movable rod 912 near the second fixed frame 472. The synchronization rod 92 passes through the third extension portion and slides with the third extension portion. Another synchronization rod 92 is provided on the side of the third movable rod 913 near the third fixed frame 473. The synchronization rod 92 passes through the fourth extension portion and slides with the fourth extension portion. The two synchronization rods 92 in the vertical direction each have a first end 921 and a second end 922. The end of the synchronization rod 92 located above that is connected to the second movable rod 912 is the first end 921 of the synchronization rod 92, and the end extending toward the second fixed frame 472 is the second end 922 of the synchronization rod 92. The end of the synchronization rod 92 located below that is connected to the third movable rod 913 is the first end 921 of the synchronization rod 92, and the end extending toward the third fixed frame 473 is the second end 922 of the synchronization rod 92. The distance between the two first ends 921 is smaller than the distance between the two second ends 922. That is, the end of the synchronization rod 92 connected to the movable frame 91 is the first end 921, and the other end of the synchronization rod 92 is the second end 922.
[0059] When the screw 94 is rotated to make the movable frame 91 approach the fixed frame 47, the third clamping part 43, the fourth clamping part 44, the fifth clamping part 45 and the sixth clamping part 46 can simultaneously clamp the test body. When the screw 94 is rotated in the opposite direction, the movable frame 91 is moved away from the fixed frame 47, and the third clamping part 43, the fourth clamping part 44, the fifth clamping part 45 and the sixth clamping part 46 release the clamping of the test body.
[0060] According to some embodiments of the present invention, referring to Figure 8 A third mounting seat is provided on the lower end surfaces of the third movable rod 913 and the third fixed frame 473, and the third mounting seat located on the third movable rod 913 is provided with a secondary guide rod, the other end of the secondary guide rod extends along the first direction and passes through the third mounting seat located on the third fixed frame 473, and the other end of the secondary guide rod slides with the third mounting seat of the third fixed frame 473.
[0061] In some specific examples, the clamping mechanism 4 may be made of a heat-conducting material, which is beneficial for conducting heat to the surface of the test object.
[0062] Throughout this specification, reference to terms such as "one embodiment," "some embodiments," "illustrative embodiments," "examples," "specific examples," or "some examples" means that a specific feature, structure, material, or characteristic described in conjunction with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, illustrative uses of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.
[0063] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to the embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the claims and their equivalents.
Claims
1. A cyclic impact test device based on the long-term deformation effect of hard rock in a high-energy environment, characterized in that: include: housing (1); A rotating shaft (2), the rotating shaft (2) being rotatably disposed in the housing (1); A partition (3), one side of the partition (3) is connected to the peripheral wall of the rotating shaft (2), the other side of the partition (3) extends along the radial direction of the rotating shaft (2) and is slidably matched with the inner wall of the shell (1), a plurality of the partitions (3) are evenly distributed along the circumference of the rotating shaft (2), two adjacent partitions (3) and the peripheral wall of the rotating shaft (2) and the inner wall of the shell (1) are surrounded to form a test cavity, the plurality of test cavities are not connected to each other, the shell (1) is provided with a liquid inlet (11) and an air inlet (12), at least one of the test cavities is connected to the liquid inlet (11) and the air inlet (12), the outer wall of the shell (1) is provided with an openable and closable sealing door (14), at least one of the test cavities corresponds to the sealing door (14); A clamping mechanism (4), each of the test chambers is provided with the clamping mechanism (4), the clamping mechanism (4) being connected to the partition (3) of the test chamber and being used to clamp the test body; a spray mechanism (5), the spray mechanism (5) being in communication with the liquid inlet (11), the spray mechanism (5) being configured to provide liquid into the test cavity corresponding to the liquid inlet (11); an air supply mechanism (6), the air supply mechanism (6) being in communication with the air inlet (12), the air supply mechanism (6) being configured to provide hot air or cold air into the test chamber corresponding to the air inlet (12); A driving mechanism (7), the driving mechanism (7) being connected to the rotating shaft (2), and the driving mechanism (7) being used to control the liquid inlet (11) and the air inlet (12) to communicate with one of the plurality of test chambers; The clamping mechanism (4) comprises: A first clamping portion (41) and a second clamping portion (42), wherein the first clamping portion (41) and the second clamping portion (42) are arranged opposite to each other and are used to clamp the test body in a first direction, one end of the first clamping portion (41) is fixed to the peripheral wall of the rotating shaft (2), and the other end of the first clamping portion (41) has a clamping reference surface that abuts against the test body; a third clamping portion (43) and a fourth clamping portion (44), the third clamping portion (43) and the fourth clamping portion (44) being arranged opposite to each other and used to clamp the test body in a second direction; The first direction and the second direction are perpendicular to each other.
2. The cyclic impact test device based on the long-term deformation effect of hard rock in a high-energy environment according to claim 1 is characterized in that: There are multiple liquid inlets (11) and multiple air inlets (12), and there are multiple spraying mechanisms (5) and multiple wind supply mechanisms (6). Each test cavity is connected to a spraying mechanism (5) through a liquid inlet (11), and each test cavity is connected to a wind supply mechanism (6) through a wind inlet (12).
3. The cyclic impact test device based on the long-term deformation effect of hard rock in a high-energy environment according to claim 2 is characterized in that: Among the two adjacent wind supply mechanisms (6) arranged along the circumference of the shell (1), one wind supply mechanism (6) is configured to provide hot air to the corresponding test chamber, and the other wind supply mechanism (6) is configured to provide cold air to the corresponding test chamber.
4. The cyclic impact test device based on the long-term deformation effect of hard rock in a high-energy environment according to claim 1 is characterized in that: The outer side wall of the housing (1) is provided with a plurality of sealing doors (14), and each of the test chambers corresponds to one of the sealing doors (14).
5. The cyclic impact test device based on the long-term deformation effect of hard rock in a high-energy environment according to claim 1 is characterized in that: Two adjacent partitions (3) of the test chamber are each provided with a first fixing frame (471), and the third clamping portion (43) and the fourth clamping portion (44) are movably connected to the two first fixing frames (471), respectively.
6. The cyclic impact test device based on the long-term deformation effect of hard rock in a high-energy environment according to claim 5 is characterized in that: A second fixing frame (472) is connected between the upper ends of the two first fixing frames (471), a third fixing frame (473) is connected between the lower ends of the two first fixing frames (471), and the second clamping portion (42) is detachably connected to the second fixing frame (472) and the third fixing frame (473).
7. The cyclic impact test device based on the long-term deformation effect of hard rock in a high-energy environment according to claim 6 is characterized in that: The second clamping portion (42) comprises: a connecting frame (421), the connecting frame (421) being detachably connected to the second fixing frame (472) and the third fixing frame (473), respectively; a second pressing portion (422), the second pressing portion (422) being used to abut against the test body; a connecting rod (423), one end of which passes through the connecting frame (421) and is connected to the second pressing portion (422), and the connecting rod (423) is capable of sliding along the first direction; a nut (424), the nut (424) being rotatably connected to a side of the connecting frame (421) facing away from the first clamping portion (41); A threaded column (425) is sequentially passed through the nut (424) and the connecting frame (421) and connected to the second pressing portion (422), and the threaded column (425) is threadedly connected to the nut (424).
8. The cyclic impact test device based on the long-term deformation effect of hard rock in a high-energy environment according to claim 7 is characterized in that: The third clamping portion (43) and the fourth clamping portion (44) synchronously move closer to or farther from the test body via a synchronization mechanism (9); The synchronization mechanism (9) comprises: Two first movable rods (911), the two first movable rods (911) are respectively parallel to the two first fixing frames (471), the distance between the two first movable rods (911) is greater than the distance between the two first fixing frames (471), the upper ends of the two first movable rods (911) are connected by a second movable rod (912), and the lower ends of the two first movable rods (911) are connected by a third movable rod (913); A synchronization rod (92), each of the first movable rods (911) is provided with a synchronization rod (92) on one side close to the first fixed frame (471), the synchronization rod (92) having a first end (921) and a second end (922), the first end (921) being the end portion of the synchronization rod (92) connected to the first movable rod (911), the second end (922) extending along the first direction, the spacing between the two first ends (921) being smaller than the spacing between the two second ends (922), the third clamping portion (43) having a first extension portion (431) passing through one first fixed frame (471), the fourth clamping portion (44) having a second extension portion (441) passing through another first fixed frame (471), one second end (922) passing through the first extension portion (431) and slidingly engaging with the first extension portion (431), and the other second end (922) passing through the second extension portion (441) and slidingly engaging with the second extension portion (441); A guide rod (93), one end of the guide rod (93) is connected to the second movable rod (912), and the other end of the guide rod (93) is slidably engaged with the second fixing frame (472); A screw rod (94), one end of the screw rod (94) is rotatably connected to the second movable rod (912), the other end of the screw rod (94) is threadedly connected to the second fixing frame (472), and the guide rod (93) and the screw rod (94) both extend along the first direction.
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