Lithium-containing glass powder mixture roasting equipment
By designing a calcination device for lithium-containing glass powder mixtures, the problem of uneven heating during the calcination of lithium glass powder mixtures was solved by using a combination of heating tubes and vibration components, thus improving the calcination effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- QINGHAI DINGNENG ENVIRONMENTAL PROTECTION TECHNOLOGY CO LTD
- Filing Date
- 2025-01-24
- Publication Date
- 2026-05-05
AI Technical Summary
In the existing technology, lithium glass powder mixtures cannot be heated evenly during calcination, resulting in poor calcination effect.
A lithium-containing glass powder mixture calcination device is used, including a furnace body, a base, and calcination components. The mixture is heated by heating tubes and vibrating components drive the placement plate to vibrate up and down, so that the mixture is heated evenly. The exhaust gas is discharged through the exhaust port.
This method achieves thorough and uniform heating of the lithium glass powder mixture, thus improving the calcination effect.
Smart Images

Figure CN224202186U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of lithium aluminum silicon microcrystalline glass waste recycling technology, and in particular to a lithium-containing glass powder mixture calcination equipment. Background Technology
[0002] Lithium, as the lightest metallic element, has a corresponding elemental form that is the lightest metal in nature. It possesses many unique and excellent properties. Glass-ceramics are multiphase solid materials prepared through a specific heat treatment process for nucleation and crystallization. They are composed of a glass phase and a microcrystalline phase and have outstanding thermal, chemical, optical, and mechanical properties. Currently, they are widely used in fields such as construction, medicine, and microelectronics.
[0003] In the process of efficiently recovering lithium from lithium aluminum silicon microcrystalline glass waste and preparing lithium carbonate, the lithium aluminum silicon microcrystalline glass needs to be crushed once to obtain lithium-containing glass powder. Then, the lithium-containing glass powder is mixed evenly with calcination aid to obtain a mixture. Finally, the mixture is calcined to obtain calcined sand.
[0004] However, in the existing technology, the lithium-containing glass powder mixture cannot be heated completely and evenly during calcination, resulting in poor calcination effect. Utility Model Content
[0005] The purpose of this invention is to provide a calcination device for lithium-containing glass powder mixtures, which aims to solve the technical problem in the prior art that the lithium-containing glass powder mixtures cannot be heated completely and evenly during calcination, resulting in poor calcination effect.
[0006] To achieve the above objectives, this utility model employs a lithium-containing glass powder mixture calcination device, comprising a furnace body, a base, and calcination components. The base is fixedly connected to the furnace body and is located below the furnace body. The top surface of the furnace body has an exhaust hole.
[0007] The roasting assembly includes a door, a placement plate, a mounting plate, a heating tube, a vibration component, and auxiliary components. The door is rotatably connected to the furnace body and is located on the outside of the furnace body. The placement plate is located inside the furnace body. The mounting plate is detachably connected to the furnace body and is located inside the furnace body. The heating tube is detachably connected to the mounting plate and is located on the inside of the mounting plate. The vibration component is located inside the furnace body. The auxiliary components are located inside the furnace body.
[0008] The vibration component includes a limiting tube, a rotating rod, a rotating disk, a connecting rod, and a driving unit. The limiting tube is fixedly connected to the furnace body and located inside the furnace body. The rotating rod is rotatably connected to the limiting tube and located inside the limiting tube. The rotating disk is detachably connected to the rotating rod and located at one end of the rotating rod. The connecting rod is detachably connected to the rotating disk and located on the side of the rotating disk away from the rotating rod. The driving unit is located above the rotating disk.
[0009] The drive unit includes a swing arm, a vibrating rod, and a limiting ring. One end of the swing arm is rotatably connected to the connecting rod and wraps around the connecting rod. The vibrating rod is rotatably connected to the swing arm and is located at the end of the swing arm away from the vibrating rod. The limiting ring is slidably connected to the vibrating rod and wraps around the vibrating rod, and the limiting ring is fixedly connected to the furnace body.
[0010] The auxiliary components include a roasting shell, a telescopic rod, and a spring. The roasting shell is slidably connected to the placement plate and wraps around the placement plate. The telescopic rod is detachably connected to the placement plate and is located below the placement plate. The spring is detachably connected to the placement plate and wraps around the telescopic rod.
[0011] The auxiliary components include a movable plate and a slide. The slide is fixedly connected to the furnace body and located inside the furnace body. The movable plate is slidably connected to the slide and located inside the slide. The movable plate is also fixedly connected to the roasting shell.
[0012] This utility model discloses a lithium-containing glass powder mixture calcination device. The lithium-containing glass powder mixture is placed on the placement plate and heated by the heating tube for calcination. At the same time, the vibration component is controlled to drive the placement plate to vibrate up and down, so that the lithium-containing glass powder mixture above the placement plate can be fully and evenly heated. The generated exhaust gas can be discharged through the exhaust hole, thereby improving the calcination effect. Attached Figure Description
[0013] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0014] Figure 1 This is a schematic diagram of the structure of the lithium-containing glass powder mixture calcination equipment of this utility model.
[0015] Figure 2This is a front view of the lithium-containing glass powder mixture calcination equipment of this utility model.
[0016] Figure 3 This is a rear view of the lithium-containing glass powder mixture calcination equipment of this utility model.
[0017] Figure 4 This is the utility model Figure 2 A cross-sectional view of the AA line structure.
[0018] 101-Furnace body, 102-Base, 103-Exhaust vent, 104-Door, 105-Placement plate, 106-Mounting plate, 107-Heating tube, 108-Limiting tube, 109-Rotating rod, 110-Rotating disc, 111-Connecting rod, 112-Swing rod, 113-Vibration rod, 114-Limiting ring, 115-Roasting shell, 116-Telescopic rod, 117-Spring, 118-Moving plate, 119-Slide groove, 120-Motor. Detailed Implementation
[0019] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model.
[0020] Please see Figures 1-4 ,in Figure 1 This is a schematic diagram of the structure of the lithium-containing glass powder mixture calcination equipment of this utility model. Figure 2 This is a front view of the lithium-containing glass powder mixture calcination equipment of this utility model. Figure 3 This is a rear view of the lithium-containing glass powder mixture calcination equipment of this utility model. Figure 4 This is the utility model Figure 2 A cross-sectional view of the AA line structure.
[0021] This utility model provides a calcination device for lithium-containing glass powder mixture, including a furnace body 101, a base 102 and a calcination assembly. The base 102 is fixedly connected to the furnace body 101 and is located below the furnace body 101. The top surface of the furnace body 101 has an exhaust hole 103.
[0022] The roasting assembly includes a door 104, a placement plate 105, a mounting plate 106, a heating tube 107, a vibration component, and auxiliary components. The door 104 is rotatably connected to the furnace body 101 and is located on the outside of the furnace body 101. The placement plate 105 is disposed inside the furnace body 101. The mounting plate 106 is detachably connected to the furnace body 101 and is located inside the furnace body 101. The heating tube 107 is detachably connected to the mounting plate 106 and is located on the inside of the mounting plate 106. The vibration component is disposed inside the furnace body 101, and the auxiliary components are disposed inside the furnace body 101.
[0023] In this embodiment, the lithium-containing glass powder mixture is placed on the placement plate 105 and heated and calcined by the heating tube 107. At the same time, the vibration component is controlled to drive the placement plate 105 to vibrate up and down, so that the lithium-containing glass powder mixture above the placement plate 105 can be fully and evenly heated. The generated exhaust gas can be discharged through the exhaust hole 103, thereby improving the calcination effect.
[0024] Furthermore, the vibration component includes a limiting tube 108, a rotating rod 109, a rotating disk 110, a connecting rod 111, and a driving unit. The limiting tube 108 is fixedly connected to the furnace body 101 and is located inside the furnace body 101. The rotating rod 109 is rotatably connected to the limiting tube 108 and is located inside the limiting tube 108. The rotating disk 110 is detachably connected to the rotating rod 109 and is located at one end of the rotating rod 109. The connecting rod 111 is detachably connected to the rotating disk 110 and is located on the side of the rotating disk 110 away from the rotating rod 109. The driving unit is disposed above the rotating disk 110.
[0025] In this embodiment, the limiting tube 108 fixes the position of the rotating rod 109. By controlling the motor 120 fixed on the outside of the furnace body 101, the rotating rod 109 can be driven to rotate. The rotation of the rotating rod 109 can drive the rotating disk 110 to rotate. The rotation of the rotating disk 110 can drive the connecting rod 111 to rotate around the rotating disk 110. Thus, the placement plate 105 can be driven to vibrate through the driving unit.
[0026] Furthermore, the drive unit includes a swing arm 112, a vibrating rod 113, and a limiting ring 114. One end of the swing arm 112 is rotatably connected to the connecting rod 111 and wraps around the connecting rod 111. The vibrating rod 113 is rotatably connected to the swing arm 112 and is located at the end of the swing arm 112 away from the vibrating rod 113. The limiting ring 114 is slidably connected to the vibrating rod 113 and wraps around the vibrating rod 113. The limiting ring 114 is fixedly connected to the furnace body 101.
[0027] In this embodiment, when the connecting rod 111 rotates around the rotating disk 110, the swing rod 112 will start to swing. Under the restriction of the limiting ring 114, the swing rod 112 will drive the vibrating rod 113 to move up and down reciprocally, so that the placement plate 105 can be vibrated by the vibrating rod 113.
[0028] Furthermore, the auxiliary components include a roasting shell 115, a telescopic rod 116, and a spring 117. The roasting shell 115 is slidably connected to the placement plate 105 and covers the placement plate 105. The telescopic rod 116 is detachably connected to the placement plate 105 and is located below the placement plate 105. The spring 117 is detachably connected to the placement plate 105 and covers the telescopic rod 116.
[0029] In this embodiment, the roasting shell 115 can prevent the mixture from splashing during vibration, and the telescopic rod 116 and the spring 117 can assist the placement plate 105 in resetting.
[0030] Furthermore, the auxiliary components also include a movable plate 118 and a slide 119. The slide 119 is fixedly connected to the furnace body 101 and located inside the furnace body 101. The movable plate 118 is slidably connected to the slide 119 and located inside the slide 119. The movable plate 118 is also fixedly connected to the roasting shell 115.
[0031] In this embodiment, the slide 119 allows the movable plate 118 to slide within the slide 119, thereby facilitating the placement plate 105 to be placed into or removed from the furnace body 101.
[0032] The above-disclosed embodiments are merely preferred embodiments of the present utility model and should not be construed as limiting the scope of the present utility model. Those skilled in the art can understand that implementing all or part of the above-described embodiments and making equivalent changes in accordance with the claims of the present utility model are still within the scope of the utility model.
Claims
1. A calcination apparatus for a lithium-containing glass powder mixture, comprising a furnace body and a base, wherein the base is fixedly connected to the furnace body and is located below the furnace body, and the top surface of the furnace body has an exhaust port, characterized in that, It also includes calcination components; The roasting assembly includes a door, a placement plate, a mounting plate, a heating tube, a vibration component, and auxiliary components. The door is rotatably connected to the furnace body and is located on the outside of the furnace body. The placement plate is located inside the furnace body. The mounting plate is detachably connected to the furnace body and is located inside the furnace body. The heating tube is detachably connected to the mounting plate and is located on the inside of the mounting plate. The vibration component is located inside the furnace body. The auxiliary components are located inside the furnace body.
2. The lithium-containing glass powder mixture calcination equipment as described in claim 1, characterized in that, The vibration component includes a limiting tube, a rotating rod, a rotating disk, a connecting rod, and a driving unit. The limiting tube is fixedly connected to the furnace body and located inside the furnace body. The rotating rod is rotatably connected to the limiting tube and located inside the limiting tube. The rotating disk is detachably connected to the rotating rod and located at one end of the rotating rod. The connecting rod is detachably connected to the rotating disk and located on the side of the rotating disk away from the rotating rod. The driving unit is located above the rotating disk.
3. The lithium-containing glass powder mixture calcination equipment as described in claim 2, characterized in that, The drive unit includes a swing arm, a vibrating rod, and a limiting ring. One end of the swing arm is rotatably connected to the connecting rod and wraps around the connecting rod. The vibrating rod is rotatably connected to the swing arm and is located at the end of the swing arm away from the vibrating rod. The limiting ring is slidably connected to the vibrating rod and wraps around the vibrating rod, and the limiting ring is fixedly connected to the furnace body.
4. The lithium-containing glass powder mixture calcination equipment as described in claim 1, characterized in that, The auxiliary components include a roasting shell, a telescopic rod, and a spring. The roasting shell is slidably connected to the placement plate and wraps around the placement plate. The telescopic rod is detachably connected to the placement plate and is located below the placement plate. The spring is detachably connected to the placement plate and wraps around the telescopic rod.
5. The lithium-containing glass powder mixture calcination equipment as described in claim 4, characterized in that, The auxiliary components also include a movable plate and a slide. The slide is fixedly connected to the furnace body and located inside the furnace body. The movable plate is slidably connected to the slide and located inside the slide. The movable plate is also fixedly connected to the roasting shell.