The disclosure relates to the technical field of material drying, and in particular to a solid material drying system.
Solid materials, such as granular fertilizers or fertilizer spikes, have a high moisture content during the preparation process. In order to make the materials easy to store, transport and use or to make the materials meet the requirements of further processing, the excessive water needs to be removed from the materials. An existing material drying system generally implements drying through the relative motion of a material and an airflow, that is, the material falls by gravity, and the airflow moves upwards. However, to enable a material to fall by gravity, the material needs to be fed all at once or intermittently. Feeding a large quantity all at once can easily cause uneven drying, and intermittently feeding in batches is likely to cause accumulation of subsequent materials, which is not conducive to continuous production. Moreover, existing drying equipment does not provide desirable drying effects because of different sizes, moisture contents, quantities, and dryness requirements. Therefore, it is necessary to propose a solution for further solving the above problems.
The disclosure is intended to provide a solid material drying system to overcome the shortcomings in the prior art.
To solve the above technical problem, the disclosure adopts the following technical solution:
The disclosure provides a solid material drying system, including a drying tower and a closed annular conveyor belt at the bottom of the drying tower. A solid material enters the drying tower through the conveyor belt, and a first airflow moves towards the top of the drying tower from the bottom of the drying tower through the conveyor belt.
Side walls of the drying tower are provided with several openings, and a second airflow moves towards the outside of the drying tower from the inside of the drying tower through the openings. Blocking plates that can block the openings are disposed at positions close to and above the openings inside the drying tower, and the blocking plates are hinged with the side walls of the drying tower. Several holes are arranged on the conveyor belt.
Preferably, several openings are arranged along a height direction of the drying tower.
Preferably, several openings are arranged along the circumferential direction of the drying tower.
Preferably, the blocking plates have a curved geometric shape, which are curved towards the lower end of the drying tower.
Preferably, the several openings are symmetrically arranged along the central axis of the drying tower.
Preferably, the several openings are staggered along the height direction of the drying tower.
Preferably, the several blocking plates are staggered along the height direction of the drying tower.
Preferably, two of the blocking plates located on opposite side walls partially overlap.
Compared with the prior art, the disclosure has the following beneficial effects:
(1) The disclosure is suitable for drying solid materials, especially granular fertilizers or fertilizer spikes, and can be efficiently and universally applied to the drying of various types of solid materials. Moreover, the disclosure can be used for drying solid materials with different sizes, moisture contents, quantities, and dryness requirements.
(2) The disclosure uses a closed annular conveyor belt to uniformly and continuously deliver materials into a drying tower and to make materials inside the drying tower spiral up, which avoids varying dryness among materials caused by accumulation of materials that occurs when a large quantity of materials are fed all at once.
(3) The disclosure uses holes on the conveyor belt to form a revolving airflow to separate materials at a spacing, thereby improving drying efficiency and drying uniformity. Moreover, the airflow in the middle part of the annular conveyor belt is unobstructed and thus has high flow rate and low pressure, so that the materials directly above the conveyor belt can gradually move closer to the middle to further reduce the accumulation of materials, which is conducive to drying, and reduces materials at the inner edge of the drying tower, facilitating material recovery.
(4) In the disclosure, outlets at different heights are arranged on side walls of the drying tower, so that materials can be discharged from the drying tower at different heights, thereby controlling the dryness of the materials.
To describe the technical solutions in the examples of the disclosure or in the prior art more clearly, the accompanying drawings required for describing the examples or the prior art will be described briefly below. Apparently, the accompanying drawings in the following description show some examples of the disclosure, and a person of ordinary skill in the art may still derive other drawings from these accompanying drawings without creative efforts.
In the figures, 1 represents a drying tower, 2 represents a conveyor belt, 3 represents an opening, 4 represents a blocking plate, 5 represents a hole, 6 represents a material inlet, 10 represents a material-entering direction, 20 represents a first airflow direction, and 30 represents a second airflow direction.
The technical solutions in the examples of the disclosure are clearly and completely described below with reference to the accompanying drawings in the examples of the disclosure. Apparently, the described examples are merely a part rather than all of the examples of the disclosure. All other examples obtained by a person of ordinary skill in the art based on the examples of the disclosure without creative efforts shall fall within the protection scope of the disclosure.
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In a specific implementation, the blocking plate 4 can be hinged with the side wall of the drying tower 1. Further, the blocking plate 4 can be disposed to have a curved geometric shape, which is curved towards the lower end of the drying tower 1 to form a downward-curving arc to guide a material into the outlet 3.
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In summary, the disclosure is suitable for drying solid materials, especially granular fertilizers or fertilizer spikes, and can be efficiently and universally applied to the drying of various types of solid materials. Moreover, the disclosure can be used for drying solid materials with different sizes, moisture contents, quantities, and dryness requirements.
It is apparent for those skilled in the art that the disclosure is not limited to the details of the above exemplary examples, and that the disclosure may be implemented in other specific forms without departing from the spirit or basic features of the disclosure. The examples should be regarded as exemplary and non-limiting in every respect, and the scope of the disclosure is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of equivalent elements of the claims should be included in the disclosure. The reference numeral in the claims should not be considered as limiting the involved claims.
It should be understood that although this specification is described in accordance with the examples, not every example includes only an independent technical solution. Such a description is merely for the sake of clarity, and those skilled in the art should take the specification as a whole. The technical solutions in the examples can also be appropriately combined to form other implementations which are comprehensible for those skilled in the art.
Number | Date | Country | Kind |
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201911037621.6 | Oct 2019 | CN | national |