Building materials resistance to compression detection device
Technical Field
The utility model belongs to the technical field of building material compression resistance detection, and particularly relates to a building material compression resistance detection device.
Background
The concrete pressure testing machine is a device specially used for detecting the compressive property of building materials, can apply pressure to various concrete test pieces so as to accurately measure the indexes of mechanical properties such as compressive strength and the like, and provides important basis for quality evaluation and quality control of concrete materials in constructional engineering.
The concrete pressure testing machine has the problems that the existing concrete pressure testing machine has some problems affecting the detection efficiency when detecting concrete, specifically, operators need to manually place concrete cement blocks on the top of a detection table in the inner cavity of a detection main body, the placement of the concrete cement blocks is right and the concrete cement blocks are located in the middle, the detection main body is convenient to detect, after the detection is finished, the operators also need to take out the detected cement blocks in person, then the cement blocks on the surface of the detection table are cleaned, the whole process is time-consuming and labor-consuming, and the detection efficiency is affected.
Disclosure of utility model
Aiming at the problems existing in the prior art, the utility model provides a building material compression-resistant detection device which has the advantages of being convenient for feeding and cleaning and collecting the cement blocks after detection, solves the problems that the detection efficiency is affected when the existing concrete pressure testing machine detects concrete, specifically, an operator needs to manually place the concrete cement blocks on the top of a detection table in an inner cavity of a detection main body, and the operator needs to ensure that the concrete cement blocks are placed right and are positioned in the middle, so that the detection main body is convenient for detection, and after detection is completed, the operator needs to take out the detected cement blocks personally, and then the cement fragments on the surface of the detection table need to be cleaned, so that the whole process is time-consuming and labor-consuming, and the detection efficiency is affected.
The utility model discloses a building material compression-resistant detection device which comprises a control terminal, a detection main body and a detection table, wherein a support plate is fixedly connected to the front side of the top of the detection table, protection plates are fixedly connected to the left side and the right side in the middle of the top of the detection table, a protection frame is fixedly connected to the rear side of the top of the detection table, a protection assembly is arranged on the front side of the detection main body, a feeding device is arranged on the rear side of the support plate, a driving device matched with the feeding device is arranged on the front side of the support plate, and a collecting box is arranged on the rear side of the bottom of the detection table.
As the preferable mode of the utility model, the surface of the front side of the top of the detection table is provided with the extrusion groove matched with the feeding device, and the surface of the rear side of the top of the detection table is provided with the blanking opening corresponding to the position of the collecting box.
As the preferable mode of the utility model, the protection component comprises a double-shaft air cylinder, wherein the rear side of the double-shaft air cylinder is fixedly connected with the detection main body, and the output end of the double-shaft air cylinder is fixedly connected with the shielding plate.
As the preferable mode of the utility model, the feeding device comprises a supporting frame, two sliding columns are arranged at the top of the inner side of the supporting frame, clamping plates are sleeved on the left side and the right side of the surface of each sliding column, and pushing columns are arranged at the bottom of each clamping plate.
As a preferable mode of the utility model, the driving device comprises a motor, a screw rod is arranged at the front side of the motor, a control board is sleeved on the surface of the screw rod, and control columns are arranged at the left side and the right side of the rear side of the control board.
As the preferable mode of the utility model, the left side and the right side of the sliding column are fixedly connected with the inner side of the supporting frame, the clamping plate is in sliding connection with the sliding column through the linear bearing, the top of the pushing column is fixedly connected with the clamping plate, and the bottom of the pushing column penetrates through the extrusion groove and extends to the inner cavity of the extrusion groove to be in contact with the inner wall of the extrusion groove.
Preferably, the rear side of the motor is fixedly connected with the supporting plate, the rear side of the screw rod is fixedly connected with the output end of the motor, the control plate is in threaded connection with the screw rod, the front side of the control column is fixedly connected with the control plate, and the rear side of the control column penetrates through the supporting plate and extends to the outer side of the supporting plate to be fixedly connected with the supporting frame.
Compared with the prior art, the utility model has the following beneficial effects:
1. According to the concrete pressure testing machine, the supporting plate, the protection frame, the protection assembly, the feeding device, the driving device and the collecting box are arranged to be used in a matched mode, so that the problem that when the existing concrete pressure testing machine detects concrete, the detection efficiency is affected is solved, specifically, an operator needs to manually place a concrete cement block on the top of a detection table in an inner cavity of a detection main body, the concrete cement block is placed right and is located in a middle position, the detection main body is convenient to detect, after detection is completed, the operator needs to take out the detected cement block in person, then cement fragments on the surface of the detection table need to be cleaned, and the whole process is time-consuming and labor-consuming, so that the detection efficiency is affected.
2. According to the utility model, the extrusion groove is arranged, so that the pushing column can drive the two clamping plates to approach each other in the moving process, the cement blocks to be detected are centered, the detection main body is convenient to detect the cement blocks, and the detected cement blocks can be pushed into the inner cavity of the collecting box by the supporting frame and the clamping plates to be collected by arranging the blanking opening.
3. According to the utility model, the cement blocks can be protected in the detection process by arranging the protection component, so that the cement blocks are prevented from splashing, the shielding plate can be driven to lift by arranging the double-shaft air cylinder, the cement blocks can be shielded by arranging the shielding plate, and the cement blocks are prevented from splashing out of the detection area in the detection process.
4. According to the utility model, the feeding device is arranged, so that the cement blocks to be detected can be centered and pushed into the detection area of the detection main body, the detection main body can conveniently detect the cement blocks, meanwhile, the detected cement blocks can also be pushed to the inner cavity of the collecting box through the blanking opening, the top of the detection table is cleaned, and the subsequent cement blocks can be conveniently detected.
5. The utility model can drive the feeding device by arranging the driving device, thereby facilitating the use of the feeding device by a user.
6. According to the cement block centering device, the support frame is arranged, the clamping plates can be driven to synchronously move through the sliding columns to feed cement blocks, meanwhile, the detected cement blocks can be pushed into the inner cavity of the collecting box, the clamping plates can be supported and limited through the sliding columns, the cement blocks can be pushed to be centered through the clamping plates, the pushing columns are arranged to drive the clamping plates to move, the two clamping plates are close to each other, and the cement blocks to be detected are centered.
7. According to the utility model, the screw rod can be driven to rotate through the arranged motor, the control board and the control column can be driven to move through the arrangement of the screw rod, and the support frame can be driven to move through the arrangement of the control board and the control column.
Drawings
FIG. 1 is a schematic view of an overall perspective structure provided by an embodiment of the present utility model;
fig. 2 is a schematic perspective view of a protective component according to an embodiment of the present utility model;
FIG. 3 is a schematic perspective view of a detection platform according to an embodiment of the present utility model;
Fig. 4 is a schematic perspective view of a feeding device and a driving device according to an embodiment of the present utility model.
In the figure, 1, a control terminal; 2, a detection main body, 3, a detection table, 4, a support plate, 5, a protection plate, 6, a protection frame, 7, a protection assembly, 8, a feeding device, 9, a driving device, 10, a collection box, 11, an extrusion groove, 12, a feed opening, 701, a double-shaft cylinder, 702, a shielding plate, 801, a support frame, 802, a sliding column, 803, a clamping plate, 804, a pushing column, 901, a motor, 902, a screw rod, 903, a control board, 904 and a control column.
Detailed Description
For a further understanding of the utility model, its features and advantages, reference is now made to the following examples, which are illustrated in the accompanying drawings.
The structure of the present utility model will be described in detail with reference to the accompanying drawings.
As shown in fig. 1 to 4, the building material compression-resistant detection device provided by the embodiment of the utility model comprises a control terminal 1, a detection main body 2 and a detection table 3, wherein a support plate 4 is fixedly connected to the front side of the top of the detection table 3, protection plates 5 are fixedly connected to the left side and the right side in the middle of the top of the detection table 3, a protection frame 6 is fixedly connected to the rear side of the top of the detection table 3, a protection assembly 7 is arranged on the front side of the detection main body 2, a feeding device 8 is arranged on the rear side of the support plate 4, a driving device 9 matched with the feeding device 8 is arranged on the front side of the support plate 4, and a collecting box 10 is arranged on the rear side of the bottom of the detection table 3.
Referring to fig. 3, an extrusion groove 11 matched with the feeding device 8 is formed on the surface of the front side of the top of the detection table 3, and a blanking opening 12 corresponding to the position of the collecting box 10 is formed on the surface of the rear side of the top of the detection table 3.
By adopting the scheme, the pushing column 804 can drive the two clamping plates 803 to mutually approach in the moving process by arranging the extrusion groove 11, the cement blocks to be detected are centered, the detection main body 2 is convenient to detect the cement blocks, and the detected cement blocks can be pushed into the inner cavity of the collecting box 10 by the supporting frame 801 and the clamping plates 803 to be collected by arranging the blanking opening 12.
Referring to fig. 2, the protection assembly 7 includes a double-shaft cylinder 701, the rear side of the double-shaft cylinder 701 is fixedly connected with the detection body 2, and the output end of the double-shaft cylinder 701 is fixedly connected with a shielding plate 702.
By adopting the scheme, the cement blocks can be protected in the detection process by arranging the protection component 7, the cement fragments are prevented from splashing, the shielding plate 702 can be driven to lift by arranging the double-shaft air cylinder 701, the cement blocks can be shielded by arranging the shielding plate 702, and the cement fragments are prevented from splashing out of the detection area in the detection process.
Referring to fig. 4, the feeding device 8 includes a supporting frame 801, two sliding columns 802 are provided at the top of the inner side of the supporting frame 801, clamping plates 803 are respectively sleeved on the left side and the right side of the surface of the sliding columns 802, and pushing columns 804 are provided at the bottom of the clamping plates 803.
By adopting the scheme, the cement blocks to be detected can be centered by arranging the feeding device 8 and pushed into the detection area of the detection main body 2, so that the detection main body 2 is convenient for detecting the cement blocks, and meanwhile, the detected cement blocks can be pushed to the inner cavity of the collecting box 10 through the discharging opening 12 to clean the top of the detection table 3, so that the subsequent cement blocks can be detected conveniently.
Referring to fig. 4, the driving device 9 includes a motor 901, a screw rod 902 is provided at a front side of the motor 901, a control board 903 is sleeved on a surface of the screw rod 902, and control posts 904 are provided at left and right sides of a rear side of the control board 903.
By adopting the scheme, the feeding device 8 can be driven by arranging the driving device 9, so that a user can conveniently use the feeding device 8.
Referring to fig. 3 and 4, the left and right sides of the sliding column 802 are fixedly connected with the inner side of the supporting frame 801, the clamping plate 803 is slidably connected with the sliding column 802 through a linear bearing, the top of the pushing column 804 is fixedly connected with the clamping plate 803, and the bottom of the pushing column 804 passes through the extrusion groove 11 and extends to the inner cavity of the extrusion groove 11 to contact with the inner wall of the extrusion groove 11.
By adopting the scheme, the support frame 801 is arranged, the clamping plates 803 can be driven to synchronously move through the sliding columns 802, the cement blocks can be fed, meanwhile, the detected cement blocks can be pushed into the inner cavity of the collecting box 10, the clamping plates 803 can be supported and limited through the sliding columns 802, the cement blocks can be pushed to be centered through the clamping plates 803, the clamping plates 803 can be driven to move through the pushing columns 804, the two clamping plates 803 are made to approach each other, and the cement blocks to be detected are centered.
Referring to fig. 3 and 4, the rear side of the motor 901 is fixedly connected with the support plate 4, the rear side of the screw rod 902 is fixedly connected with the output end of the motor 901, the control plate 903 is in threaded connection with the screw rod 902, the front side of the control column 904 is fixedly connected with the control plate 903, and the rear side of the control column 904 penetrates through the support plate 4 and extends to the outer side of the support plate 4 to be fixedly connected with the support frame 801.
By adopting the scheme, the screw rod 902 can be driven to rotate through the arranged motor 901, the control plate 903 and the control column 904 can be driven to move through the arranged screw rod 902, and the support frame 801 can be driven to move through the arranged control plate 903 and the control column 904.
The working principle of the utility model is as follows:
When the device is used, the double-shaft air cylinder 701 is started to retract, the shielding plate 702 is driven to move upwards, when the shielding plate 702 reaches a proper position, a building cement block to be detected is placed on one side opposite to two clamping plates 803, then the motor 901 is started to rotate positively, the screw rod 902 is driven to rotate, the control plate 903 and the control column 904 are driven to synchronously move backwards in the rotating process of the screw rod 902, the control column 904 can drive the support frame 801 to synchronously move backwards, the support frame 801 can drive the clamping plates 803 to synchronously move backwards through the sliding column 802, the clamping plates 803 can drive the pushing column 804 to move along the track of the inner cavity of the extrusion groove 11 in the moving process of the clamping plates 803, the clamping plates 803 can be firstly moved towards the cement block in the moving process of the backward, the cement block is pushed to be centered, the cement block is conveniently detected by the detection main body 2, after the cement block is centered, the clamping plates are not moved any more, simultaneously, the detection main body 2 is pushed to the detection main body after the cement block is centered by the sliding column 802 and the clamping plates through the sliding column 802 in the moving backwards, the detection main body after the cement block is reset, the cement block 803 is reset, and the detection area is reset, and the cement block 803 is protected to be reset, and the detection area is protected, and the detection area is started to rotate down, and the shielding plate 803 is protected;
When the detection is completed, when the top of the detection platform 3 needs to be cleaned, the double-shaft air cylinder 701 is started to retract to drive the shielding plate 702 to move upwards, after the shielding plate 702 reaches a proper position, the motor 901 is started to rotate forwards to enable the support frame 801 and the clamping plate 803 to approach to a detection area, when the support frame 801 and the clamping plate 803 reach a proper position, the support frame 801 and the clamping plate 803 can be contacted with a cement block after the detection, at the moment, the motor 901 continues to rotate forwards, the support frame 801 and the clamping plate 803 continuously move backwards and push the inspected cement block and cement fragments to synchronously move backwards, the cement fragments are pushed into the feed opening 12 of the support plate 4 and fall into the inner cavity of the collecting box 10, and meanwhile, because the clamping plate 803 can drive the pushing column 804 to move along the track of the inner cavity of the extrusion groove 11, and the rear side of the extrusion groove 11 is communicated with the feed opening 12, so that the pushing column 804 can push the cement fragments possibly falling into the inner cavity of the extrusion groove 11 into the inner cavity of the collecting box together in the moving process, and cleaning is completed.
In summary, this building materials resistance to compression detection device, through setting up backup pad 4, guard plate 5, guard frame 6, protection subassembly 7, material feeding unit 8, drive arrangement 9 and collection box 10's cooperation use, it detects the time spent to have some influence detection efficiency's problem to have current concrete pressure testing machine, concretely speaking, the operating personnel need manually place the concrete cement piece at the detection bench top of detecting the main part inner chamber, and to ensure that it puts rightly and be in the position in the middle, the convenience detects the main part, and after the detection is accomplished, still need operating personnel personally take out the cement piece that the detection was accomplished, still need clear up the cement fragment of detecting the surface of platform 3 afterwards, the comparatively consuming time of whole process is laborious, the problem of detection efficiency has been influenced.
It is noted that relational terms such as first and second, and the like are used solely to distinguish one entity or action from another entity or action without necessarily requiring or implying any actual such relationship or order between such entities or actions. Moreover, the terms "comprises," "comprising," or any other variation thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements but may include other elements not expressly listed or inherent to such process, method, article, or apparatus.
Although embodiments of the present utility model have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made therein without departing from the principles and spirit of the utility model, the scope of which is defined in the appended claims and their equivalents.