Slope control auxiliary device for slope protection construction
By setting adjustment components and angle control components on the columns, precise adjustment of rapid groove depth and slope is achieved, solving the problems of traditional low construction efficiency and poor accuracy, and improving construction quality and slope stability.
Patent Information
- Application Number
- CN202422146304.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-02
- Publication Date
- 2025-08-19
- Estimated Expiration
- 2034-09-02
AI Technical Summary
The construction of traditional rapids troughs highly relies on manual operations, requiring multiple measurements, adjustments and verifications, resulting in low construction efficiency and poor accuracy, affecting slope stability and road safety.
The first adjustment assembly and the second adjustment assembly arranged on the column are adopted, and the spacing and angle control components of the positioning line are controlled accurately and quickly adjust the depth and slope of the rapid flow groove to reduce manual operation uncertainty and error.
It improves the accuracy and efficiency of rapid trough construction, ensures slope stability and safety, improves construction quality and aesthetics, and reduces the adjustment frequency.
Smart Images

Figure CN223240705U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of roadbed slope protection construction, in particular to a slope control auxiliary device for slope protection construction. Background Art
[0002] In highway construction, the stability and safety of roadbed slopes are of vital importance. Therefore, constructing slopes with appropriate slopes and combining various slope protection technologies, such as paving and vegetation coverage, has become a necessary measure to prevent water erosion and ensure slope stability. The precise control of slope gradient is not only related to water flow guidance, but also the cornerstone for ensuring the overall safety and long-term stability of the road. When faced with situations where rainwater retention and infiltration may cause excessive water content in the slope, instability and landslides, and other threats to road safety, traditional methods often adopt a slope reduction strategy, which aims to guide water flow and promote smooth drainage by reasonably designing the slope gradient, thereby effectively reducing the damage to the slope structure caused by rainwater erosion and ensuring the long-term stability of the slope.
[0003] As a common means of implementing this strategy, the construction process of a rapid trough mainly includes the following: first, the position of the rapid trough is located by laying out the line on the excavated slope; then, the slope and depth of the rapid trough are calculated according to the designed slope. By driving steel bars at the slope foot and the slope platform and positioning them with ropes, these are used as reference benchmarks for construction to ensure that the depth and slope of the rapid trough meet the design requirements; finally, the formwork is woven and concrete is poured according to the established slope to complete the hardening and forming of the rapid trough; however, the core operations of traditional rapid trough construction methods are highly dependent on manual labor. From determining the construction direction to adjusting the angle and depth, manual operations and verification are required repeatedly. This not only reduces construction efficiency, but also makes it difficult to ensure the high precision requirements of rapid trough construction due to the uncontrollable human factors. Poor construction quality can easily lead to unsatisfactory drainage effects of the rapid trough, resulting in the ineffective drainage of rainwater, increasing the risk of slope collapse, and posing a potential threat to the safety and stability of the highway. Utility Model Content
[0004] The purpose of the utility model is to provide a slope control auxiliary device for slope protection construction, so as to solve the problem that the construction of rapids troughs in the prior art is highly dependent on manual operation, requires multiple measurements, adjustments and calibrations, has low efficiency and poor accuracy, affects construction quality, increases the risk of slope collapse, and threatens highway safety and stability.
[0005] In order to achieve the above purpose, the technical solution adopted by the utility model is as follows:
[0006] A slope control auxiliary device for slope protection construction, comprising:
[0007] A column, wherein two positioning lines are connected to the column, the two positioning lines are parallel to each other and are sequentially distributed along the length direction of the column;
[0008] a first adjusting assembly and a second adjusting assembly, wherein the first adjusting assembly and the second adjusting assembly are respectively mounted on the column, and the two positioning lines are respectively connected to the first adjusting assembly and the second adjusting assembly, and the first adjusting assembly and the second adjusting assembly are configured to respectively drive the two positioning lines to move along the length direction of the column to adjust the distance between the two positioning lines;
[0009] An angle control component is installed on the first adjustment component and is connected to the adjacent positioning line.
[0010] According to the above technical means, the positions of the two positioning lines are adjusted respectively by the first adjustment component and the second adjustment component arranged on the column, thereby realizing accurate and rapid adjustment of the distance between the two parallel positioning lines, so as to flexibly respond to the construction requirements of the depth of the rapids trough on different slopes. At the same time, the angle of the positioning line is adjusted by the angle control component, thereby realizing the rapid and accurate adjustment of the distance between the two positioning lines according to the set slope and depth of the rapids trough while flexibly adjusting the positioning line to the preset angle, thereby improving the accuracy and efficiency of the rapids trough slope and depth control in the slope protection construction. It has high flexibility, good stability, strong adjustability, reduces the adjustment frequency, reduces the uncertainty and error of manual operation, ensures the construction quality, and provides a strong guarantee for the stability and safety of the highway slope. Under the guiding action of the positioning line, the straightness of the rapids trough construction is guaranteed, which not only improves the aesthetic appearance of the slope, but also improves the work efficiency and construction quality.
[0011] Furthermore, the first adjustment assembly includes a first sleeve, which is coaxially sleeved on the column, and a first buckle is installed on the first sleeve, one of the positioning lines is connected to the first sleeve, and the angle control assembly is installed on the first sleeve.
[0012] According to the above technical means, the first sleeve is movably mounted on the column, so that the first sleeve can move along the axial direction of the column, thereby driving the connected positioning line to fine-tune its position along the axial direction of the column to meet the position requirements in different scenarios. The structure is simple and the installation is convenient. Under the action of the first buckle, the first sleeve can be quickly locked and unlocked on the column. Therefore, without damaging the first sleeve or the column, the first sleeve can be adjusted and fixed to the desired position. It has strong flexibility and high stability. When the first sleeve drives the connected positioning line to adjust its position, the angle control component moves synchronously and can adjust the angle of the positioning line, realizing multi-dimensional precise adjustment of the positioning line, greatly improving the overall applicability and ease of operation.
[0013] Furthermore, the angle control assembly includes an angle control plate, which is installed on the first sleeve. An arc-shaped slide groove is formed on the angle control plate, and a threading hole is formed at the center of the arc-shaped slide groove. A slider is slidably installed in the arc-shaped slide groove, and one end of one of the positioning lines is connected to the first sleeve, and the other end passes through the threading hole and is connected to the slider.
[0014] According to the above-mentioned technical means, through the cooperation of the arc-shaped slide groove and the slider on the angle control plate, the connected positioning lines achieve precise and flexible angle adjustment effects. Specifically, when adjusting the angle, the slider in the arc-shaped slide groove is slid to the set angle, thereby achieving precise angle positioning of the connected positioning lines. Among them, the threading hole not only ensures the stable guidance of the positioning line during the adjustment process, reduces friction and deviation, but also can limit the positioning line to prevent the positioning line from being displaced, thereby ensuring the firmness of its connection with the first sleeve, and improving the accuracy and stability of the overall control.
[0015] Furthermore, the angle control assembly also includes a support tube, which is connected to the slider. The length of the support tube is set along the radial direction of the arc-shaped slide groove. One end of one of the positioning lines is connected to the first sleeve, and the other end passes through the threading hole and the support tube in sequence.
[0016] According to the above technical means, the positioning line connected by the support tube guide provides additional support and guidance for the positioning line, making the angle adjustment more stable and smooth. Specifically, during installation, one end of one of the positioning lines is connected to the first sleeve, and the other end passes through the wire hole and the support tube in sequence for positioning and guiding, so as to serve as a construction reference benchmark for the rapids trough. When adjusting the angle, the slider in the sliding arc chute drives the positioning line to the set angle through the support tube, thereby realizing precise angular positioning of the connected positioning line. The adjustment process is smoother and more reliable, which improves the accuracy and durability of the positioning line adjustment.
[0017] Furthermore, the angle control plate is provided with an angle scale along the arc direction of the arc-shaped slide groove.
[0018] According to the above technical means, the arc angle of the arc-shaped slide groove is marked by an angle scale, so that the slider can quickly and accurately adjust the positioning line to the required angle during the sliding process, thereby improving the accuracy and convenience of the operation.
[0019] Furthermore, the second adjustment assembly includes a second sleeve, which is coaxially sleeved on the column, a second buckle is installed on the second sleeve, a groove is formed on the second sleeve, and the other positioning line is connected to the second sleeve and limited in the groove.
[0020] According to the above technical means, the second sleeve is movably mounted on the column, so that the second sleeve can move along the axial direction of the column, thereby driving the connected positioning line to fine-tune its position along the axial direction of the column, and with the cooperation of the first sleeve, the two positioning lines can be positioned and adjusted simultaneously, thereby meeting the construction requirements of different slope rapids trough depths, with a simple structure and convenient adjustment; at the same time, under the action of the second buckle, the second sleeve can be quickly locked and unlocked on the column, with strong flexibility and high stability. Under the action of the groove, the positioning line connected to the second sleeve is limited in the groove, ensuring the stability of the positioning line.
[0021] Furthermore, a length scale is provided on the column along its length direction, a first window is formed on the first sleeve, the first window and the threading hole are located in the same plane, and a second window is formed on the second sleeve, the second window and the groove are located in the same plane.
[0022] According to the above technical means, the length of the column is marked by a length scale, and with the cooperation of the first window and the second window, when adjusting the position of the first sleeve and the second sleeve, the alignment with the length scale can be directly observed through the first window and the second window respectively, thereby accurately controlling the position of the first sleeve and the second sleeve on the column, so as to quickly confirm and adjust the distance between the two positioning lines, realize the positioning of the rapids trough depth and slope, improve the adjustment accuracy, and simplify the operation process.
[0023] Furthermore, it includes two support seats, which are symmetrically arranged and movably mounted on one end of the column close to the second sleeve. Support rods are hinged on the two support seats, and the ends of the two support rods away from the support seats are hinged on the second sleeve respectively, and a tip is formed on the end of the column close to the second sleeve.
[0024] According to the above technical means, the stability and bearing capacity of the column are increased by two support seats and a hinged support rod, and the support rod is hinged between the support seat and the second sleeve, and the structure is compact, which not only reduces the space occupied by installation on the column, but also provides a certain supporting force for the second sleeve to prevent it from sliding. Specifically, when in use, the column is vertically inserted into the ground through the tip on the column, so that the column is firmly supported on the ground for positioning by pulling the positioning line, and then supported on the ground by the two support seats to increase the stability of the column and the firmness of the support, prevent the column from tilting or collapsing, thereby affecting the positioning effect of the positioning line, so as to ensure the construction quality and improve the overall safety and reliability of use.
[0025] Furthermore, the support rod includes a connecting tube and a connecting rod, one end of the connecting tube is hinged on the support seat, and the other end is slidably fitted with one end of the connecting rod, the other end of the connecting rod is hinged on the second sleeve, and a threaded hole is formed on the connecting tube, a fixing pin is connected to the threaded hole, one end of the fixing pin can pass through the threaded hole and abut against the connecting rod sleeved in the connecting tube, and the other end is provided with a handle.
[0026] According to the above technical means, the quick locking and unlocking function of the connecting rod in the connecting tube is realized through the cooperation of the fixing pin and the threaded hole, so that the connecting rod can be extended and retracted in the connecting tube to adjust the angle between the support seat and the column, so that the column remains horizontal and perpendicular to the ground to ensure construction quality.
[0027] Furthermore, it also includes a level detection device, which is installed on the column.
[0028] According to the above technical means, the horizontal detection device is used to detect the horizontal state of the column, ensuring that all operations during the construction process are above the horizontal benchmark, thereby effectively avoiding construction errors caused by tilt or unevenness. This not only helps construction personnel to control the slope more accurately, but also can promptly discover and correct potential problems, ensure construction quality and safety, and provide more reliable technical guarantees for slope protection construction.
[0029] Beneficial effects achieved by this utility model:
[0030] 1. In the utility model, the positions of the two positioning lines are adjusted respectively by the first adjustment component and the second adjustment component arranged on the column, thereby realizing accurate and rapid adjustment of the distance between the two parallel positioning lines, so as to flexibly meet the construction requirements of the depth of the rapid flow trough on different slopes. At the same time, the angle of the positioning line is adjusted by the angle control component, thereby realizing the rapid flow trough according to the set slope and depth. While quickly and accurately adjusting the distance between the two positioning lines, the positioning line is flexibly adjusted to the preset angle, thereby improving the accuracy and efficiency of the rapid flow trough slope and depth control in the slope protection construction. It has high flexibility, good stability, strong adjustability, reduces the adjustment frequency, reduces the uncertainty and error of manual operation, ensures the construction quality, and provides a strong guarantee for the stability and safety of the highway slope.
[0031] 2. The utility model ensures the straightness of the rapids trough construction through the guiding effect of the positioning line, which not only improves the aesthetics of the slope appearance, but also improves work efficiency and construction quality. It has a simple structure and low cost. BRIEF DESCRIPTION OF THE DRAWINGS
[0032] Figure 1 This is an application diagram of the utility model on a slope;
[0033] Figure 2 For this utility model Figure 1 A magnified view of middle A;
[0034] Figure 3 For this utility model Figure 2 Enlarged view of middle B;
[0035] Figure 4 For this utility model Figure 3 Enlarged view of middle D;
[0036] Figure 5 For this utility model Figure 4 Enlarged view of E in the middle;
[0037] Figure 6 For this utility model Figure 2 Enlarged view of middle C;
[0038] Figure 7 For this utility model Figure 6 Enlarged view of middle F;
[0039] Figure 8 This is a structural diagram of the support rod of the utility model.
[0040] Among them, 1-column; 11-length scale; 12-tip; 2-positioning line; 3-first adjustment component; 31-first sleeve; 311-first window; 32-first buckle; 4-second adjustment component; 41-second sleeve; 411-groove; 412-second window; 42-second buckle; 5-angle control component; 51-angle control plate; 511-arc slide; 512-threading hole; 513-angle scale; 52-slider; 53-support tube; 6-support seat; 7-support rod; 71-connecting tube; 711-threaded hole; 72-connecting rod; 73-fixing pin; 8-level detection device; 9-rapid flow trough.
[0041] The accompanying drawings are for illustrative purposes only and should not be construed as limitations on this patent. To better illustrate this embodiment, some components of the accompanying drawings may be omitted, enlarged, or reduced in size and do not represent the actual dimensions of the product. For those skilled in the art, it is understandable that some well-known structures and their descriptions may be omitted from the accompanying drawings. The same or similar reference numerals correspond to the same or similar components. The terms describing positional relationships in the accompanying drawings are for illustrative purposes only and should not be construed as limitations on this patent. DETAILED DESCRIPTION
[0042] It should be noted that, unless there is a conflict, the embodiments in this application and the technical features in the embodiments can be combined with each other. The detailed description in the specific embodiments should be understood as an explanation of the purpose of this application and should not be regarded as an improper restriction on this application.
[0043] To make the purpose, technical solutions and advantages of the embodiments of the present application clearer, the specific technical solutions of the present application will be further described in detail below in conjunction with the drawings in the embodiments of the present application. The following embodiments are used to illustrate the present application but are not intended to limit the scope of the present application.
[0044] In the embodiments of this application, the terms "first" and "second" are used for descriptive purposes only and should not be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include one or more of the features. In the description of the embodiments of this application, unless otherwise specified, "multiple" means two or more.
[0045] In the embodiments of the present application, unless otherwise clearly specified and limited, the term "connection" should be understood in a broad sense. For example, "connection" can be a fixed connection, a detachable connection, or an integrated connection; it can be a direct connection or an indirect connection through an intermediate medium.
[0046] In the embodiments of the present application, the terms "comprises," "comprising," or any other variations thereof are intended to encompass non-exclusive inclusion, such that a process, method, article, or apparatus comprising a series of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus. In the absence of further limitations, an element defined by the phrase "comprising a ..." does not preclude the presence of other identical elements in the process, method, article, or apparatus comprising the element.
[0047] In the embodiments of this application, words such as "exemplary" or "for example" are used to indicate examples, illustrations, or descriptions. Any embodiment or design described as "exemplary" or "for example" in the embodiments of this application should not be interpreted as being preferred or advantageous over other embodiments or designs. Rather, the use of words such as "exemplary" or "for example" is intended to present the relevant concepts in a concrete manner.
[0048] The technical solution of the present invention is described in detail below with reference to the accompanying drawings.
[0049] This embodiment relates to a slope control auxiliary device for slope protection construction, such as Figure 2 、 Figure 3 、 Figure 4 and Figure 6As shown, it includes: a column 1, two positioning lines 2 are connected to the column 1, the two positioning lines 2 are parallel to each other and distributed in sequence along the length direction of the column 1; a first adjustment component 3 and a second adjustment component 4, the first adjustment component 3 and the second adjustment component 4 are respectively installed on the column 1, and the two positioning lines 2 are respectively connected to the first adjustment component 3 and the second adjustment component 4, the first adjustment component 3 and the second adjustment component 4 are configured to be able to respectively drive the two positioning lines 2 to move along the length direction of the column 1 to adjust the distance between the two positioning lines 2; an angle control component 5, the angle control component 5 is installed on the first adjustment component 3 and connected to the adjacent positioning lines 2.
[0050] This embodiment adjusts the positions of the two positioning lines 2 respectively through the first adjustment component 3 and the second adjustment component 4, thereby realizing accurate and rapid adjustment of the spacing between the two parallel positioning lines 2, thereby being able to flexibly respond to the construction requirements of the depth of the rapid flow trough on different slopes, and at the same time adjusting the angle of the positioning line through the angle control component 5, thereby realizing the rapid flow trough according to the set slope and depth, while quickly and accurately adjusting the spacing between the two positioning lines and flexibly adjusting the positioning line to a preset angle, thereby improving the accuracy and efficiency of the rapid flow trough slope and depth control in the slope protection construction. Specifically, when carrying out the rapid flow trough 9 construction work, the column 1 is first inserted vertically into the ground, and then the angle control component 5 is used to adjust the vertical distance between the two positioning lines according to the set slope and depth. The control component 5 adjusts the angle of the positioning line 2 connected to the first adjustment component 3 so that the positioning line 2 can be used as a reference for the slope, and then adjusts the positions of the first adjustment component 3 and the second adjustment component 4 on the column 1 according to the required depth, so that the distance between the positioning line 2 connected to the second adjustment component 4 and the positioning line 2 connected to the first adjustment component 3 can be used as a reference for the depth; it can be understood by those skilled in the art that the construction of the rapids trough 9 is only one of the application scenarios of the slope control auxiliary device in the present invention, and the slope control auxiliary device in the present invention can also be used to control the slope, excavation depth and straightness of slope protection auxiliary structures such as herringbone skeletons and intercepting ditches.
[0051] In this embodiment, the first adjustment component 3 includes a first sleeve 31, which is coaxially sleeved on the column 1. A first buckle 32 is installed on the first sleeve 31, one of the positioning lines 2 is connected to the first sleeve 31, and the angle control component 5 is installed on the first sleeve 31.
[0052] like Figure 3As shown, during adjustment, this embodiment is unlocked by the first clip 32, so that the first sleeve 31 can move along its axial direction on the column 1, so that the position of the connected positioning line 2 can be fine-tuned according to construction requirements. At the same time, the angle control component 5 moves synchronously with the first sleeve 31, which improves the stability of the adjustment and has strong flexibility. After the position adjustment is completed, it is locked by the first clip 32, so that the first sleeve 31 is fixed on the column 1, which has good stability, strong practicality, simple structure and easy operation.
[0053] In this embodiment, the angle control assembly 5 includes an angle control plate 51, which is installed on the first sleeve 31. An arc-shaped slide groove 511 is formed on the angle control plate 51. A threading hole 512 is formed at the center of the arc-shaped slide groove 511 on the angle control plate 51. A slider 52 is slidably installed in the arc-shaped slide groove 511, and one end of one positioning line 2 is connected to the first sleeve 31, and the other end passes through the threading hole 512 and is connected to the slider.
[0054] like Figure 4 and Figure 5 As shown, during adjustment, this embodiment cooperates with the arc-shaped slide groove 511 and the slider 52 to slide the slider 52 to the angle set by the construction requirements, thereby realizing precise angular positioning of the connected positioning line 2, and during installation, the positioning line 2 passes through the threading hole 512 and is connected to the slider 52. The threading hole 512 not only ensures the stable guidance of the positioning line 2 during the adjustment process, reduces friction and deviation, but also can limit the positioning line 2 to prevent the positioning line 2 from being displaced, ensures the firmness of its connection with the first sleeve 31, and improves the accuracy and stability of the overall control.
[0055] Furthermore, as a preferred embodiment of the present invention, the angle control assembly 5 further includes a support tube 53, which is connected to the slider 52. The length of the support tube 53 is set along the radial direction of the arc-shaped slide groove 511, and one end of one positioning line 2 is connected to the first sleeve 31, and the other end passes through the threading hole 512 and the support tube 53 in sequence; Figure 4 As shown, the positioning line 2 is connected to the slider 52 through the support tube 53. The support tube 53 provides additional support and guidance for the penetrating positioning line 2, making the angle adjustment more stable and smooth. Specifically, during installation, one end of one of the positioning lines 2 is connected to the first sleeve 31, and the other end passes through the threading hole 512 and the support tube 53 in sequence for positioning and guiding, so as to serve as a construction reference benchmark for the rapids trough 9. When adjusting the angle, the sliding slider 52 drives the positioning line 2 to the set angle through the support tube 53, thereby realizing precise angular positioning of the connected positioning line 2, and the adjustment process is smoother and more reliable, thereby improving the accuracy and durability of the adjustment of the positioning line 2.
[0056] Furthermore, as a preferred embodiment of the present invention, an angle scale 513 is provided on the angle control plate 51 along the arc direction of the arc-shaped slide groove 511; Figure 3 As shown, the arc angle of the arc chute is indicated by the angle scale 51, so that the slider 52 can quickly and accurately adjust the positioning line 2 to the desired angle during the sliding process, thereby improving the accuracy and convenience of the operation.
[0057] In this embodiment, the second adjustment component 4 includes a second sleeve 41, which is coaxially sleeved on the column 1. A second buckle 42 is installed on the second sleeve 41. A groove 411 is formed on the second sleeve 41. Another positioning line 2 is connected to the second sleeve 41 and limited in the groove 411.
[0058] like Figure 6 and Figure 7 As shown, during adjustment, this embodiment is unlocked by the second clip 42, so that the second sleeve 41 can move along its axial direction on the column 1, so that the position of the connected positioning line 2 can be fine-tuned according to construction requirements. At the same time, with the cooperation of the first sleeve 31, the spacing between the two positioning lines 2 is adjusted to meet the construction requirements of different depths of the rapids trough 9 on the slope. After the adjustment is completed, it is locked by the second clip 42, so that the second sleeve 41 is fixed on the column 1 with good stability; when installing the positioning line 2, the positioning line 2 is limited in the groove 411 to prevent the positioning line 2 from deviating on the second sleeve 41, thereby ensuring the stability of the positioning line.
[0059] Furthermore, as a preferred embodiment of the present invention, a length scale 11 is provided on the column 1 along its length direction, a first window 311 is formed on the first sleeve 31, the first window 311 and the threading hole 512 are located in the same plane, and a second window 412 is formed on the second sleeve 41, the second window 412 and the groove 411 are located in the same plane; Figure 3 and Figure 6 As shown, the length of the column 1 is marked by the length scale 11. During adjustment, the alignment of each positioning line 2 with the length scale 11 can be directly observed through the first window 311 and the second window 412, thereby accurately controlling the position of the first sleeve 31 and the second sleeve 41 on the column 1, so as to quickly confirm and adjust the distance between the two positioning lines 2, realize the positioning of the depth and slope of the rapids trough 9, improve the accuracy of adjustment, and simplify the operation process.
[0060] In this embodiment, two support seats 6 are also included. The two support seats 6 are symmetrically arranged and are movably installed on one end of the column 1 close to the second sleeve 41. The two support seats 6 are hinged with support rods 7. The ends of the two support rods 7 away from the support seats 6 are respectively hinged on the second sleeve 41, and a tip 12 is formed on the end of the column 1 close to the second sleeve 41.
[0061] like Figure 2 As shown, this embodiment increases the stability and bearing capacity of the column 1 installed on the ground through two support seats 6 and a hinged support rod 7, and the support rod 7 is hinged on the second sleeve 41, with a compact structure. Specifically, when in use, the column 1 is first inserted vertically into the ground through the tip 12 on the column 1, so that the column 1 is firmly supported on the ground, and then the two support seats 6 are supported on the ground to increase the stability of the column 1 and the firmness of the support, prevent the column from tilting or collapsing, thereby affecting the positioning effect of the positioning line, so as to ensure the construction quality and improve the overall safety and reliability of use.
[0062] Furthermore, as a preferred embodiment of the present invention, the support rod 7 includes a connecting tube 71 and a connecting rod 72. One end of the connecting tube 71 is hinged on the support base 6, and the other end is slidably fitted with one end of the connecting rod 72. The other end of the connecting rod 72 is hinged on the second sleeve 41, and a threaded hole 711 is formed on the connecting tube 71. A fixing pin 73 is connected in the threaded hole 711. One end of the fixing pin 73 can pass through the threaded hole 711 and abut against the connecting rod 72 sleeved in the connecting tube 71, and a handle is provided at the other end. Figure 2 and Figure 8 As shown, when the column 1 is installed and used, the fast locking and unlocking function of the connecting rod 72 in the connecting tube 71 is realized through the cooperation of the fixing pin 73 and the threaded hole 711, so that the connecting rod 72 can be extended and retracted in the connecting tube 71 to adjust the angle between the support seat 6 and the column 1, so that the column 1 remains horizontal and perpendicular to the ground to ensure construction quality. Furthermore, as a preference, a level detection device 8 can also be installed on the column 1 to detect the horizontal state of the column 1, to ensure that all operations during the construction process are above the horizontal reference, to ensure construction quality and safety; wherein, the level detection device 8 can be a bubble level.
[0063] Working principle: Figure 1As shown, in actual application, the positioning line 2 connected to the first sleeve 31 is the first rope, and the positioning line 2 connected to the second sleeve 41 is the second rope. Specifically, when carrying out the construction work of the rapids trough 9, according to the set slope construction position, at the foot of the slope and the platform, two columns 1 are used, and the tip 12 is aligned with the set point of the ground, and is vertically inserted into the bottom surface of the foot of the slope and the platform respectively, and the two support seats 6 are supported on the ground respectively, and then according to the set depth, the position of the first sleeve 31 and the second sleeve 41 is first adjusted according to the length scale 11, so that the scale difference between the first window 311 and the second window 412 is equal to the set depth of the rapids trough 9, and secondly, according to the set slope, the position of the slider 52 is adjusted according to the angle scale 513, so that the inclination angle of the support tube 53 is equal to The slope of the rapids trough 9 is set; then the two ends of the first rope are respectively passed through the support tubes 53 and the threading holes 512 on the two columns 1 in turn, and then connected to the first sleeve 31, tighten the first rope, observe whether the first rope hits the inner wall of the support tube 53, adjust the relative positions of the two columns 1, observe whether the bubble of the bubble level is centered, adjust the length of the two support rods 7, so that the two columns 1 meet the verticality and angle requirements, and use the positioned first rope as a reference for construction. When the construction reaches a certain depth, the two ends of the second rope are respectively connected to the second sleeve 41 through the grooves 411 on the two columns 1, tighten the second rope, and the second rope is parallel to the first rope. Then, use the second rope as a reference for construction, and perform depth refinement of the rapids trough 9 to complete the construction.
[0064] The serial numbers of the embodiments of this application are for descriptive purposes only and do not represent the superiority or inferiority of the embodiments. The above are only preferred embodiments of this application and do not limit the scope of the patent of this application. Any equivalent structure or equivalent process transformation made by using the contents of the description and drawings of this application, or directly or indirectly applied in other related technical fields, are also included in the scope of patent protection of this application.
Claims
1. A slope control auxiliary device for slope protection construction, characterized in that: include: A column (1), wherein two positioning lines (2) are connected to the column (1), and the two positioning lines (2) are parallel to each other and are sequentially distributed along the length direction of the column (1); A first adjusting component (3) and a second adjusting component (4), wherein the first adjusting component (3) and the second adjusting component (4) are respectively mounted on the column (1), and the two positioning lines (2) are respectively connected to the first adjusting component (3) and the second adjusting component (4), and the first adjusting component (3) and the second adjusting component (4) are configured to be able to respectively drive the two positioning lines (2) to move along the length direction of the column (1) to adjust the distance between the two positioning lines (2); An angle control component (5) is installed on the first adjustment component (3) and is connected to the adjacent positioning line (2).
2. A slope control auxiliary device for slope protection construction according to claim 1, characterized in that: The first adjustment assembly (3) comprises a first sleeve (31), the first sleeve (31) is coaxially sleeved on the column (1), a first buckle (32) is installed on the first sleeve (31), one of the positioning lines (2) is connected to the first sleeve (31), and the angle control assembly (5) is installed on the first sleeve (31).
3. The slope control auxiliary device for slope protection construction according to claim 2, characterized in that: The angle control assembly (5) includes an angle control plate (51), the angle control plate (51) is mounted on the first sleeve (31), an arc-shaped slide groove (511) is formed on the angle control plate (51), a threading hole (512) is formed at the center of the arc-shaped slide groove (511), a slider (52) is slidably mounted in the arc-shaped slide groove (511), one end of one of the positioning lines (2) is connected to the first sleeve (31), and the other end passes through the threading hole (512) and is connected to the slider (52).
4. The slope control auxiliary device for slope protection construction according to claim 3 is characterized in that: The angle control assembly (5) further comprises a support tube (53), the support tube (53) being connected to the slider (52), the length of the support tube (53) being arranged along the radial direction of the arc-shaped slide groove (511), one end of one of the positioning lines (2) being connected to the first sleeve (31), and the other end being passed through the threading hole (512) and the support tube (53) in sequence.
5. The slope control auxiliary device for slope protection construction according to claim 4, characterized in that: An angle scale (513) is provided on the angle control plate (51) along the arc direction of the arc-shaped sliding groove (511).
6. The slope control auxiliary device for slope protection construction according to claim 4, characterized in that: The second adjustment assembly (4) comprises a second sleeve (41), the second sleeve (41) is coaxially sleeved on the column (1), a second buckle (42) is mounted on the second sleeve (41), a groove (411) is formed on the second sleeve (41), and the other positioning line (2) is connected to the second sleeve (41) and is limited in the groove (411).
7. The slope control auxiliary device for slope protection construction according to claim 6, characterized in that: The column (1) is provided with a length scale (11) along its length direction; the first sleeve (31) is formed with a first window (311), the first window (311) and the threading hole (512) are located in the same plane; the second sleeve (41) is formed with a second window (412), the second window (412) and the groove (411) are located in the same plane.
8. The slope control auxiliary device for slope protection construction according to claim 6, characterized in that: The utility model further comprises two support seats (6), the two support seats (6) are symmetrically arranged and movably mounted on one end of the column (1) close to the second sleeve (41), the two support seats (6) are hinged with a support rod (7), the ends of the two support rods (7) away from the support seats (6) are hinged to the second sleeve (41), and a tip (12) is formed on one end of the column (1) close to the second sleeve (41).
9. The slope control auxiliary device for slope protection construction according to claim 8, characterized in that: The support rod (7) comprises a connecting tube (71) and a connecting rod (72). One end of the connecting tube (71) is hinged on the support seat (6), and the other end is slidably fitted with one end of the connecting rod (72). The other end of the connecting rod (72) is hinged on the second sleeve (41). A threaded hole (711) is formed on the connecting tube (71). A fixing pin (73) is connected in the threaded hole (711). One end of the fixing pin (73) can pass through the threaded hole (711) and abut against the connecting rod (72) sleeved in the connecting tube (71). The other end is provided with a handle.
10. The slope control auxiliary device for slope protection construction according to claim 9, characterized in that: It also includes a level detection device (8), which is installed on the column (1).
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