High-purity quartz sand drying equipment of heat dissipation mechanism

By designing an air pump to heat the airflow and a cylinder tilting structure in the high-purity quartz sand drying equipment, uniform drying and cooling of quartz sand is achieved, solving the problem of uneven cooling in existing equipment and improving production efficiency.

CN223869734UActive Publication Date: 2026-02-03BINHAI WEIXIN TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202520052756.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-10
Publication Date
2026-02-03
Estimated Expiration
2035-01-10

AI Technical Summary

Technical Problem

Existing high-purity quartz sand drying equipment lacks a cooling process after drying, causing the quartz sand to cool naturally at high temperatures, which affects production efficiency.

Method used

A high-purity quartz sand drying device with a heat dissipation mechanism was designed. The device uses an air pump to deliver airflow for heating, and after heating through heating pipes, it is dried evenly using holes and a mesh plate. Then, it is cooled by the same airflow. The rotation of the cylinder column enables the quartz sand to tumble in the groove, ensuring uniform cooling.

Benefits of technology

This method achieves uniform drying and cooling of quartz sand, avoiding problems such as localized overheating or uneven cooling, and improving production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of quartz sand processing, in particular to high-purity quartz sand drying equipment of a heat dissipation mechanism, which comprises a shell, a feed port is arranged at the upper end of the shell, and a discharge port is arranged at the lower end of the shell; a cavity is formed in the box body; a cavity is formed in the cylinder, and a plurality of notches are formed in the side wall of the cylinder in an annular array mode. Heated external airflow is conveyed into the cavity through the connecting pipe, hot airflow in the cavity flows into the multiple notches through the multiple holes, quartz sand stored in the notches is dried, the cylinder rotates, the quartz sand is turned over in the notches, the quartz sand can be evenly dried through the hot airflow, and the quartz sand drying efficiency is improved. And the heating pipe stops running and does not heat the external airflow, and the external airflow flows into the cavity through the connecting pipe and then flows into the multiple notches through the multiple holes to cool the quartz sand in the notches.
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Description

TECHNICAL FIELD

[0001] The utility model relates to quartz sand processing technical field especially relates to a high purity quartz sand drying equipment of heat dissipation mechanism. BACKGROUND

[0002] The high purity quartz sand drying equipment is a special equipment for drying the washed high purity quartz sand. It is mainly used for drying the high purity quartz sand material with certain humidity and particle size range to ensure that it reaches the required drying degree, facilitating subsequent processing and use.

[0003] The existing part high purity quartz sand drying equipment only has the drying function, and lacks the cooling treatment stage after drying, which may cause the quartz sand to be still in a high temperature state after drying, and additional time is needed for natural cooling, thereby affecting the production efficiency. SUMMARY

[0004] The utility model discloses a high purity quartz sand drying equipment of heat dissipation mechanism, through the device, the effect of uniform drying heat dissipation of high purity quartz sand is realized, so that the problem of not being convenient for the uniform drying heat dissipation of high purity quartz sand in the prior art is solved.

[0005] In order to achieve the above-mentioned purpose, the utility model adopts the following technical scheme:

[0006] A high purity quartz sand drying equipment of heat dissipation mechanism, including the casing, the casing upper end is provided with the feed inlet, the casing lower extreme is provided with the discharge gate, the discharge gate inside is connected with the movable plate sliding, the movable plate is connected with the casing lateral wall sliding, the box is located in the casing lateral wall, the box is provided with the cavity inside, the cavity is fixed with a plurality of heating pipes inside, the box is fixed with the air pump inside, the air pump output and the cavity inside are communicated, the cylinder is located in the casing inside, the cylinder is provided with the chamber inside, the cylinder lateral wall is provided with a plurality of notches of annular array distribution, a plurality of hole holes are arranged equidistantly between the chamber and the notch, the hole hole is fixed with the net board no.

[0007] Preferably, the casing lateral wall is fixedly connected with a motor, and the casing lower end is rotatably connected with a screw rod inside, and the screw rod end is fixedly connected with the motor output end.

[0008] Preferably, the casing lower end is provided with two sliding grooves inside, one of the sliding grooves is rotatably connected with the screw rod, the sliding groove is slidably connected with a sliding block inside, the sliding block lateral wall is fixedly connected with the movable plate lateral wall, and the screw rod is threadedly connected with one of the sliding blocks.

[0009] Preferably, the shell side wall is provided with a plurality of heat dissipation holes, the plurality of heat dissipation holes are equidistantly arranged, the heat dissipation holes are communicated with the inside of the shell, and the inside of the heat dissipation holes is provided with a mesh plate one.

[0010] Preferably, the box body is fixedly connected with a driving motor, the box body side wall is rotatably connected with a main gear, and the output end of the driving motor is fixedly connected with the side wall of the main gear.

[0011] Preferably, the cylinder side wall is fixedly connected with a column body, the column body is rotatably connected with the shell side wall in a penetrating mode, the column body end is fixedly connected with a gear, and the outside of the gear is jointly provided with a belt with the outside of the main gear.

[0012] Compared with the prior art, the advantages of the utility model lie in:

[0013] 1. The air pump delivers external airflow to the inside of the cavity, the heating pipe in the cavity heats the external airflow, the heated external airflow is delivered to the inside of the cavity through the connecting pipe, the hot airflow in the cavity flows into the multiple grooves through the multiple holes, the quartz sand stored in the grooves is dried, the mesh plate two arranged in the holes prevents the quartz sand from falling into the cavity through the holes, the cylinder rotates, the quartz sand is turned over in the grooves, the hot airflow can uniformly dry the quartz sand, and the problems of local overheating or uneven drying of the quartz sand are avoided.

[0014] 2. When the quartz sand is dried, the air pump delivers external airflow to the inside of the cavity, the heating pipe stops heating the external airflow, the external airflow flows into the cavity through the connecting pipe, and then flows into the multiple grooves through the multiple holes, the quartz sand in the grooves is cooled, the cylinder rotates, the quartz sand is turned over in the grooves, the external airflow can uniformly cool the quartz sand, the problems of local overheating or uneven cooling of the quartz sand are avoided, and the overall performance of the quartz sand is ensured. BRIEF DESCRIPTION OF DRAWINGS

[0015] Figure 1 It is a front view of the external structure of the high-purity quartz sand drying equipment with a heat dissipation mechanism.

[0016] Figure 2 It is a bottom view of the external structure of the high-purity quartz sand drying equipment with a heat dissipation mechanism.

[0017] Figure 3 It is a side view of the high-purity quartz sand drying equipment with a heat dissipation mechanism.

[0018] Figure 4The utility model provides a kind of high-purity quartz sand drying equipment of overhead sectional structure schematic diagram of heat dissipation mechanism.

[0019] Figure 5 The utility model provides a kind of high-purity quartz sand drying equipment of bottom view sectional structure schematic diagram of heat dissipation mechanism.

[0020] In the drawing: 001 shell, 101 feed inlet, 102 discharge port, 103 movable plate, 104 motor, 105 screw rod, 106 chute, 107 sliding block, 108 heat dissipation hole, 109 net plate one, 002 box, 201 cavity, 202 heating pipe, 203 air pump, 204 connecting pipe, 205 drive motor, 206 main gear, 003 cylinder, 301 chamber, 302 slot, 303 hole, 304 net plate two, 305 column, 306 gear, 307 belt. DETAILED DESCRIPTION

[0021] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments.

[0022] REFERENCE Figures 1-5The utility model relates to a high -purity quartz sand drying equipment of heat abstractor, including casing 001, the upper end of casing 001 is provided with the feed inlet 101, and the lower end of casing 001 is provided with the discharge gate 102, and the inside sliding connection of discharge gate 102 is connected with movable plate 103, and movable plate 103 is slidably connected with the side wall of casing 001, box 002, box 002 is located in the side wall of casing 001, and the inside of box 002 is provided with cavity 201, and a plurality of heating pipes 202 are fixedly connected in cavity 201, and the inside of box 002 is fixedly connected with air pump 203, and air pump 203 output end communicates with the inside of cavity 201,The cylindrical column 003 is arranged inside the shell 001, the cavity 301 is arranged inside the cylindrical column 003, a plurality of notches 302 are arranged in the annular array of the side wall of the cylindrical column 003, a plurality of holes 303 are arranged equidistantly between the cavity 301 and the notches 302, the mesh plate two 304 is fixedly connected inside the hole 303, the connecting pipe 204 is arranged between the cavity 301 and the cavity 201, the connecting pipe 204 is fixedly connected with the side wall of the box body 002 and the side wall of the shell 001, the connecting pipe 204 is rotatably connected with the side wall of the cylindrical column 003, the side wall of the cylindrical column 003 is tightly attached to the inner wall of the shell 001, the collecting frame is arranged below the shell 001, and the collecting frame is located below the discharge port 102. The operator transports the high-purity quartz sand into the shell 001 through the feeding port 101, and the cylindrical column 003 rotates to rotate the corresponding notch 302 to below the feeding port 101. After a certain amount of quartz sand is stored in one of the notches 302, the cylindrical column 003 rotates to rotate another notch 302 to below the feeding port 101. After a plurality of notches 302 store a certain amount of quartz sand, the air pump 203 transports external airflow into the cavity 201, the external airflow is heated by the heating pipe 202 in the cavity 201, and the heated external airflow is transported into the cavity 301 through the connecting pipe 204. The hot airflow in the cavity 301 flows into the plurality of notches 302 through the plurality of holes 303, and the quartz sand stored in the notches 302 is dried. At the same time, the mesh plate two 304 arranged in the hole 303 prevents the quartz sand from falling into the cavity 301 through the hole 303. The rotation of the cylindrical column 003 causes the quartz sand in the notch 302 to overturn, so that the hot airflow can uniformly dry the quartz sand. When the quartz sand is dried, the air pump 203 transports external airflow into the cavity 201, the heating pipe 202 stops heating the external airflow, the external airflow flows into the cavity 301 through the connecting pipe 204, and then flows into the plurality of notches 302 through the plurality of holes 303. The quartz sand in the notches 302 is cooled, and the rotation of the cylindrical column 003 causes the quartz sand in the notches 302 to overturn, so that the external airflow can uniformly cool and radiate the quartz sand. After the quartz sand is cooled, the movable plate 103 slides transversely to expose and open the discharge port 102. The cylindrical column 003 rotates to rotate the opening end of the corresponding notch 302 to above the discharge port 102. The quartz sand in the notch 302 falls into the collecting frame below the shell 001 through the discharge port 102 under the action of gravity.

[0023] The motor 104 is fixedly connected to the side wall of the shell 001, and the screw rod 105 is rotatably connected to the lower end of the shell 001. The output end of the motor 104 is fixedly connected to the end of the screw rod 105, and the screw rod 105 is driven to rotate by the motor 104.

[0024] The lower end of the shell 001 is internally provided with two sliding grooves 106, one of which is rotationally connected with a screw rod 105, the sliding grooves 106 are internally slidably connected with sliding blocks 107, the side walls of the sliding blocks 107 are fixedly connected with the side walls of the movable plate 103, the screw rod 105 is threadedly connected with one of the sliding blocks 107, and when the screw rod 105 rotates, the one sliding block 107 slides transversely in the one sliding groove 106, and the one sliding block 107 drives the movable plate 103 to slide transversely.

[0025] The side wall of the shell 001 is provided with a plurality of heat dissipation holes 108, the plurality of heat dissipation holes 108 are equidistantly arranged, the heat dissipation holes 108 are in communication with the inside of the shell 001, and the heat dissipation holes 108 are internally provided with a mesh plate 109.

[0026] The box body 002 is internally fixedly connected with a driving motor 205, the side wall of the box body 002 is rotationally connected with a main gear 206, the output end of the driving motor 205 is fixedly connected with the side wall of the main gear 206, and the driving motor 205 drives the main gear 206 to rotate.

[0027] The side wall of the cylinder column 003 is fixedly connected with a column body 305, the column body 305 is rotationally connected with the side wall of the shell 001 in a penetrating mode, the end portion of the column body 305 is fixedly connected with a gear 306, the gear 306 is externally jointly provided with a belt 307 with the main gear 206, when the main gear 206 rotates, the other gear 306 is driven to rotate through the transmission of the belt 307, and the gear 306 drives the cylinder column 003 to rotate through the column body 305.

[0028] In the utility model, the operator conveys high-purity quartz sand into the shell 001 through the feeding port 101, drives the main gear 206 to rotate through the driving motor 205, drives the other gear 306 to rotate through the transmission of the belt 307, drives the cylinder column 003 to rotate through the column body 305, rotates the corresponding notch 302 to the lower side of the feeding port 101, and after storing appropriate quartz sand in the one notch 302, rotates the other notch 302 to the lower side of the feeding port 101.

[0029] After the plurality of notches 302 all store the appropriate amount of quartz sand, the air pump 203 will deliver external airflow to the inside of the cavity 201, the external airflow is heated by the heating pipe 202 inside the cavity 201, the heated external airflow is delivered to the inside of the chamber 301 through the connecting pipe 204, the hot airflow inside the chamber 301 flows to the inside of the plurality of notches 302 through the plurality of holes 303, the quartz sand stored in the notch 302 is dried, and the mesh plate two 304 arranged inside the hole 303 prevents the quartz sand from falling into the chamber 301 through the hole 303, the cylinder 003 rotates, so that the quartz sand is turned over in the notch 302, so that the hot airflow can uniformly dry the quartz sand.

[0030] When the quartz sand is dried, the air pump 203 delivers external airflow to the inside of the cavity 201, the heating pipe 202 stops working and does not heat the external airflow, the external airflow flows to the inside of the chamber 301 through the connecting pipe 204, and then flows to the inside of the plurality of notches 302 through the plurality of holes 303, and the quartz sand in the notch 302 is cooled, and the rotation of the cylinder 003 makes the quartz sand turn over in the notch 302, so that the external airflow can uniformly cool the quartz sand.

[0031] After the quartz sand is cooled, the screw rod 105 is driven to rotate by the motor 104, one of the sliding blocks 107 slides transversely in one of the sliding grooves 106, and one of the sliding blocks 107 drives the movable plate 103 to slide transversely, so that the discharge port 102 is exposed and opened, the cylinder 003 rotates, and the opening end of the corresponding notch 302 is rotated to above the discharge port 102, the quartz sand in the notch 302 falls to the inside of the collecting frame below the shell 001 under the action of gravity through the discharge port 102.

[0032] The above is only the preferred specific embodiment of the present application, but the protection scope of the present application is not limited thereto, any skilled person in the art can make equivalent replacement or change according to the technical scheme and the inventive concept of the present application within the technical range disclosed by the present application, which should be covered within the protection scope of the present application.

Claims

1. A high-purity quartz sand drying device with a heat dissipation mechanism, characterized in that, include The housing (001) has an inlet (101) at its upper end and an outlet (102) at its lower end. A movable plate (103) is slidably connected inside the outlet (102), and the movable plate (103) is slidably connected through the side wall of the housing (001). The housing (002) is located on the side wall of the shell (001). The housing (002) has a cavity (201) inside. Multiple heating tubes (202) are fixedly connected inside the cavity (201). An air pump (203) is fixedly connected inside the housing (002). The output end of the air pump (203) is connected to the inside of the cavity (201). A cylindrical column (003) is located inside a shell (001). A chamber (301) is provided inside the cylindrical column (003). Multiple slots (302) are arranged in a ring array on the side wall of the cylindrical column (003). Multiple holes (303) are arranged at equal intervals between the chamber (301) and the slots (302). A mesh plate (304) is fixedly connected inside the holes (303). A connecting pipe (204) is provided between the chamber (301) and the cavity (201). The connecting pipe (204) is fixedly connected through the side wall of the box (002) and the side wall of the shell (001). The connecting pipe (204) is rotatably connected through the side wall of the cylindrical column (003).

2. The high-purity quartz sand drying equipment with a heat dissipation mechanism according to claim 1, characterized in that, A motor (104) is fixedly connected to the side wall of the housing (001), and a screw (105) is rotatably connected inside the lower end of the housing (001). The end of the screw (105) is fixedly connected to the output end of the motor (104).

3. The high-purity quartz sand drying equipment for a heat dissipation mechanism according to claim 1, characterized in that, The lower end of the housing (001) is provided with two sliding grooves (106), one of which is rotatably connected to the screw (105). A slider (107) is slidably connected inside the sliding groove (106). The side wall of the slider (107) is fixedly connected to the side wall of the movable plate (103). The screw (105) is threadedly connected to one of the sliders (107).

4. The high-purity quartz sand drying equipment with a heat dissipation mechanism according to claim 1, characterized in that, The side wall of the housing (001) is provided with a plurality of heat dissipation holes (108), which are equidistant from each other. The heat dissipation holes (108) are connected to the interior of the housing (001), and a mesh plate (109) is provided inside the heat dissipation holes (108).

5. The high-purity quartz sand drying equipment with a heat dissipation mechanism according to claim 1, characterized in that, A drive motor (205) is fixedly connected inside the housing (002), and a main gear (206) is rotatably connected to the side wall of the housing (002). The output end of the drive motor (205) is fixedly connected to the side wall of the main gear (206).

6. The high-purity quartz sand drying equipment with a heat dissipation mechanism according to claim 1, characterized in that, A column (305) is fixedly connected to the side wall of the cylindrical column (003). The column (305) is rotatably connected to the side wall of the shell (001). A gear (306) is fixedly connected to the end of the column (305). A belt (307) is provided on the outside of the gear (306) and the outside of the main gear (206).