Energy-saving titanium anode baking furnace
By introducing a moving mechanism and a carrying mechanism into the titanium anode baking furnace, and using a stepper motor to drive gears and racks to achieve the alternating movement of the carrying basket, the problem of low baking efficiency in the existing technology is solved, production efficiency is improved, and waste heat is effectively utilized.
Patent Information
- Application Number
- CN202423151349.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-19
- Publication Date
- 2026-01-02
- Estimated Expiration
- 2034-12-19
AI Technical Summary
Existing titanium anode fixture baking ovens are inefficient during the baking process, requiring workers to wait for the previous batch to finish baking before placing the next batch of fixtures, resulting in low production efficiency.
The design employs a moving mechanism and a carrying mechanism. Through the cooperation of a stepper motor-driven gear and rack, the carrying basket can be moved alternately, allowing the titanium anode fixture to be placed or removed on the other side while baking on one side, and the residual heat can be used to preheat the unbaked fixture.
This improved the baking efficiency of titanium anode fixtures, reduced waiting time, and enabled efficient baking and waste heat utilization of titanium anode fixtures.
Smart Images

Figure CN223747954U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to titanium anode production field, concretely is a kind of energy-saving titanium anode baking oven. BACKGROUND
[0002] Titanium anode fixture is the anode in titanium-based metal oxide coating. According to the different surface catalytic coating, it has oxygen evolution function and chlorine evolution function. Generally, electrode materials should have good electrical conductivity, small electrode distance change, strong corrosion resistance, good mechanical strength and processing performance, long service life, low cost, and good electrocatalytic performance for electrode reaction. Titanium is the most suitable metal for the above comprehensive requirements. In the manufacturing process of titanium anode fixture, welding, sand blasting, annealing, brushing and baking are required. The baking process is to evaporate all the solvent. If the evaporation is not complete, it will affect the coating adhesion and the electrochemical performance of the electrode during the hot oxidation process.
[0003] The current titanium anode fixture baking oven, as described in patent No. CN218223307U, includes an oven body and a conveying table. The conveying table is located on one side of the oven body inlet and is opposite to it. The oven body outer wall is fixedly connected with a mounting box, and the mounting box outer wall is fixedly connected with a servo motor. A plurality of conveying rollers are rotatably connected inside the oven body. The conveying rollers are sequentially arranged. The conveying rollers are connected with the mounting box through the oven body. The outermost conveying roller inside the oven body is fixedly connected with a driving sprocket at one end, and the remaining conveying rollers are fixedly connected with driven sprockets at one end. The output end of the servo motor is fixedly connected to the driving sprocket.
[0004] According to the above related technology, the inventor believes that when using, the titanium anode fixture is placed on the top of the conveying table. The guide rollers are rotatably arranged on the conveying table. The fixture is pushed by hand and transmitted to the conveying rollers arranged inside the oven body through inertia. The servo motor is connected to the power supply, which drives the connected driving sprocket to rotate. The chain between the driving sprocket and the plurality of driven sprockets drives the plurality of driven sprockets and the driving sprocket to rotate in the same direction. The titanium anode fixture is placed in the middle of the oven body. The oven body door is closed. In this process, the worker needs to wait for the previous batch to be baked and remove the baked titanium anode fixture before placing the subsequent titanium anode fixture to be baked, which results in low titanium anode fixture baking efficiency. UTILITY MODEL CONTENTS
[0005] The utility model aims to provide an energy-saving titanium anode baking oven to solve the problems raised in the above background technology.
[0006] To achieve the above purpose, the utility model provides the following technical scheme:
[0007] An energy-saving titanium anode baking furnace, comprising
[0008] The moving mechanism comprises a furnace shell, the inside of the furnace shell is uniformly and fixedly connected with a plurality of electric heating pipes, a U-shaped sliding plate is slidably penetrated into the inside of the furnace shell, both sides of the U-shaped sliding plate are fixedly connected with side plates, a partition plate is fixedly connected at the inside middle position of the U-shaped sliding plate, the bottoms of two groups of side plates are fixedly connected with connecting plates, a rack is fixedly connected between the two groups of connecting plates, the bottom of the rack is meshingly connected with a gear, a rotating shaft is fixedly penetrated into the inside of the gear, the rotating shaft is rotatably connected with the furnace shell, one side of the furnace shell is fixedly connected with a stepping motor, and the output end of the stepping motor is fixedly connected with the rotating shaft.
[0009] The carrying mechanism comprises a taking and placing opening symmetrically formed in one side wall of the U-shaped sliding plate, and one side of the taking and placing opening is provided with a carrying basket which is detachably connected with the U-shaped sliding plate.
[0010] As a further scheme of the utility model, the bottoms of the four corners of the furnace shell are fixedly connected with supporting columns, and the bottoms of the supporting columns are lower than the bottom of the stepping motor.
[0011] As a further scheme of the utility model, the opposite sides of the two groups of side plates are fixedly connected with side columns, and the bottoms of each group of electric heating pipes are rotatably connected with rollers.
[0012] As a further scheme of the utility model, the bottoms of each group of carrying baskets are movably connected with a plurality of rolling balls on both sides, the inside of the U-shaped sliding plate is symmetrically fixedly connected with supporting strips corresponding to each row of rolling balls, one side of the furnace shell is symmetrically fixedly connected with connecting rods, the two sides of the two groups of connecting rods are symmetrically fixedly connected with vertical rods, and the vertical rods are fixedly connected with two supporting strips on the side close to the furnace shell.
[0013] As a further scheme of the utility model, the opposite sides of the two groups of supporting strips are fixedly connected with side rods, and the side rods are fixedly connected with supporting rods away from the supporting strips.
[0014] As a further scheme of the utility model, the two sides of the furnace shell are fixedly connected with cover plates matched with the U-shaped sliding plate, the tops of the two groups of cover plates are symmetrically fixedly connected with diagonal rods, and the diagonal rods are fixedly connected with the furnace shell.
[0015] As a further scheme of the utility model, the side away from the U-shaped sliding plate of each group of carrying baskets is fixedly connected with a shielding plate matched with the taking and placing opening.
[0016] Compared with the prior art, the utility model has the beneficial effects that:
[0017] The utility model discloses adopt above -mentioned structure, through the mutual cooperation of U -shaped slide, side plate, stepping motor and rack, make when stepping motor start work can drive the rotation of pivot and gear, the gear can drive rack, connecting plate, side plate and U -shaped slide left and right movement when rotating, make can be in the inside alternation of two groups of bearing basket put in titanium anode jig of waiting roasting, after starting the stepping motor alternately the bearing basket of both sides and the titanium anode jig of placing in bearing basket inside moves to the inside of furnace shell and roasts, make the titanium anode jig in one side bearing basket inside roasts can put in titanium anode jig of waiting roasting in the inside of another side bearing basket, thereby effectively reduce the waiting time, and then improve the roasting efficiency of titanium anode jig. BRIEF DESCRIPTION OF DRAWINGS
[0018] The utility model will be further explained in detail in connection with the embodiment in the drawings, but does not constitute any limit to the utility model.
[0019] Figure 1 It is a partial structure sectional view of an energy-saving titanium anode baking furnace.
[0020] Figure 2 It is a partial structure sectional view of an energy-saving titanium anode baking furnace. Figure 1 A structure schematic view of the energy-saving titanium anode baking furnace.
[0021] Figure 3 It is a structure schematic view of another view of an energy-saving titanium anode baking furnace.
[0022] Figure 4 It is a structure schematic view of another view of an energy-saving titanium anode baking furnace. Figure 2 B structure schematic view of the energy-saving titanium anode baking furnace.
[0023] In the drawing: 1, moving mechanism;101, furnace shell;102, electric heating tube;103, support column;104, U-shaped slide;105, side plate;106, baffle;107, connecting plate;108, rack;109, stepping motor;110, gear;111, pivot;112, side column;113, roller;2, bearing mechanism;201, bearing basket;202, taking and placing opening;203, support strip;204, supporting strip;205, ball groove;206, ball;207, side rod;208, support rod;209, vertical rod;210, connecting rod;211, cover plate;212, inclined pull rod;213, shielding plate. DETAILED DESCRIPTION
[0024] The technical solutions of the patent will be further described in detail in combination with specific embodiments.
[0025] Please refer to Figures 1-4 The energy-saving titanium anode baking furnace comprises a moving mechanism 1, the moving mechanism 1 comprises a furnace shell 101, a plurality of electric heating pipes 102 are uniformly and fixedly connected in the furnace shell 101, and the electric heating pipes 102 are arranged to provide a heat source when the titanium anode jig is baked. A U-shaped sliding plate 104 is slidably penetrated into the furnace shell 101, side plates 105 are fixedly connected to the two sides of the U-shaped sliding plate 104, the U-shaped sliding plate 104 is arranged to enclose the two sides of the U-shaped sliding plate 104, and the side plates 105 can close one side of the furnace shell 101 when the side plates 105 move to contact the furnace shell 101. A partition plate 106 is fixedly connected to the middle position of the inside of the U-shaped sliding plate 104, the partition plate 106 is arranged to divide the inside of the U-shaped sliding plate 104 into two baking areas, so that the two baking areas can be alternately slid into the inside of the furnace shell 101 for baking.
[0026] The carrying mechanism 2 comprises a taking and placing opening 202 symmetrically arranged in one side wall of the U-shaped sliding plate 104, one side of the taking and placing opening 202 is provided with a carrying basket 201 which can be detachably connected with the U-shaped sliding plate 104, and the inside of the carrying basket 201 is used for accommodating the titanium anode jig to be baked. The bottom of each group of carrying baskets 201 is uniformly and movably connected with a plurality of balls 206, and the inside of the U-shaped sliding plate 104 is symmetrically and fixedly connected with a support strip 203 corresponding to each row of balls 206, the support strip 203 is arranged to support the carrying basket 201 and the ball 206 after the carrying basket 201 moves into the inside of the U-shaped sliding plate 104. The two sides of the furnace shell 101 are fixedly connected with cover plates 211 matched with the U-shaped sliding plate 104, the cover plates 211 are arranged to cover the top of the U-shaped sliding plate 104 on the corresponding side after the one side of the U-shaped sliding plate 104 moves out of the inside of the furnace shell 101, so as to reduce the heat loss of the titanium anode jig after baking.
[0027] The top of the two groups of cover plates 211 is fixedly connected with the inclined pull rod 212, and each group of inclined pull rods 212 is fixedly connected with the furnace shell 101. The inclined pull rod 212 is arranged to further connect and fix the cover plate 211 and the furnace shell 101, thereby improving the connection stability of the furnace shell 101 and the cover plate 211. The side away from the U-shaped slide plate 104 of each group of bearing baskets 201 is fixedly connected with the baffle plate 213, and the baffle plate 213 is matched with the taking and placing opening 202. The arrangement of the inclined pull rod 212 is used to block the taking and placing opening 202 after the bearing basket 201 moves to the inside of the U-shaped slide plate 104, so as to reduce the heat loss. One side of the furnace shell 101 is fixedly connected with the connecting rod 210, and the two sides of the two groups of connecting rods 210 are fixedly connected with the vertical rod 209. The side close to the furnace shell 101 of each group of vertical rods 209 is fixedly connected with two supporting strips 204, and the supporting strips 204 correspond to the supporting strips 203. The arrangement of the supporting strips 204 can support the bearing basket 201 when it moves out of the inside of the U-shaped slide plate 104.
[0028] The opposite sides of the two supporting strips 204 are fixedly connected with the side rod 207, and the end away from the supporting strip 204 of each group of side rods 207 is fixedly connected with the supporting rod 208. The arrangement of the side rod 207 and the supporting rod 208 is used to assist the supporting of the supporting strip 204. The top of each group of supporting strips 204 and each group of supporting strips 203 is provided with a ball groove 205 matched with the ball 206. The arrangement of the ball groove 205 is used to limit the rolling of the ball 206, thereby guiding the sliding movement of the bearing basket 201. The bottom of the two groups of side plates 105 is fixedly connected with the connecting plate 107, and the connecting plate 107 is fixedly connected with the rack 108. The bottom of the rack 108 is meshingly connected with the gear 110. When the gear 110 rotates, it is used to drive the rack 108 to move left and right, thereby driving the connecting plate 107, the side plate 105 and the U-shaped slide plate 104 to move left and right.
[0029] The opposite sides of the two groups of side plates 105 are fixedly connected with the side column 112, and the bottom of each group of electric heating pipes 102 is rotatably connected with the roller 113. The arrangement of the side column 112 and the roller 113 is used to assist the supporting of the U-shaped slide plate 104 and the side plate 105. The inside of the gear 110 is fixedly penetrated with the rotating shaft 111, and the rotating shaft 111 is rotatably connected with the furnace shell 101. One side of the furnace shell 101 is fixedly connected with the stepping motor 109, and the output end of the stepping motor 109 is fixedly connected with the rotating shaft 111. The arrangement of the stepping motor 109 is used to drive the rotating shaft 111 and the gear 110 to rotate when starting to work. The bottom of the furnace shell 101 is fixedly connected with the supporting column 103, and the bottom of the supporting column 103 is lower than the bottom of the stepping motor 109. The arrangement of the supporting column 103 is used to lift the furnace shell 101, so as to reduce the probability of the stepping motor 109 touching the ground.
[0030] When in use, the titanium anode fixtures to be baked are placed in the inner part of each group of the bearing baskets 201, then the bearing basket 201 on the upper side of one side is pushed into the inner part of the U-shaped slide plate 104, then the stepping motor 109 is started to drive the rotating shaft 111 and the gear 110 to rotate, the gear 110 can drive the rack 108 to move when rotating, the rack 108 can drive the connecting plate 107, the side plate 105 and the U-shaped slide plate 104 to move when moving, so as to drive the titanium anode fixtures to be baked to move to the inner part of the furnace shell 101, until the corresponding side plate 105 moves to abut against the outer wall of the furnace shell 101, then the electric heating pipe 102 is started to bake the titanium anode fixtures in the inner part of the furnace shell 101, during the baking process, the bearing basket 201 on the upper side of the other side is pushed into the inner part of the U-shaped slide plate 104 on the upper side of the other side, after the titanium anode fixtures in the inner part of the bearing basket 201 on the upper side of one side are baked;
[0031] The stepping motor 109 is started again to move the bearing basket 201 on the upper side of one side and the baked titanium anode fixtures out of the inner part of the furnace shell 101, while the bearing basket 201 on the upper side of the other side in the inner part of the U-shaped slide plate 104 and the titanium anode fixtures in the inner part are moved to the inner part of the furnace shell 101, so that the bearing basket 201 on the upper side of the other side and the titanium anode fixtures in the inner part are baked by the electric heating pipe 102 in operation, at this time, the bearing basket 201 on the lower side of one side is pushed into the inner part of the U-shaped slide plate 104 on the lower side of one side, so that the titanium anode fixtures in the inner part of the two groups of bearing baskets 201 on the upper side and the lower side of one side are both on the inner part of the U-shaped slide plate 104 on the one side, so that the residual heat in the baked titanium anode fixtures can preheat the titanium anode fixtures to be baked, thereby realizing the effective utilization of the residual heat.
[0032] When the titanium anode fixtures on the upper side of the other side are baked, the bearing basket 201 on the upper side of one side is pulled out of the inner part of the U-shaped slide plate 104, then the stepping motor 109 is started to move the bearing basket 201 on the lower side of one side to the inner part of the furnace shell 101, while the bearing basket 201 on the other side is moved out of the inner part of the furnace shell 101, then the bearing basket 201 on the lower side of the other side is pushed into the inner part of the U-shaped slide plate 104, so that the titanium anode fixtures in the inner part of the bearing basket 201 on the lower side of the other side can exchange heat with the titanium anode fixtures baked in the inner part of the bearing basket 201 on the upper side of the other side, then the titanium anode fixtures baked on the upper side of one side are taken out and the titanium anode fixtures to be baked are placed in, then the above process is repeated, so that the bearing baskets 201 on the two sides alternately take and place the titanium anode fixtures to be baked and exchange heat.
[0033] The above-mentioned embodiments are preferred embodiments of the present application, which are only used for conveniently illustrating the present application, and do not limit the present application in any form, and any person with ordinary knowledge in the art can make equivalent embodiments with partial changes or modifications within the technical features disclosed by the present application without departing from the technical features of the present application, and the equivalent embodiments still belong to the scope of the technical features of the present application.
Claims
1. An energy-saving titanium anode baking oven, characterized in that, Comprising The moving mechanism (1) includes the furnace shell (101), the inside of the furnace shell (101) is uniformly fixedly connected with a plurality of electric heating pipes (102), the inside of the furnace shell (101) is slidably penetrated with a U-shaped sliding plate (104), the two sides of the U-shaped sliding plate (104) are fixedly connected with side plates (105), the inside of the U-shaped sliding plate (104) is fixedly connected with a partition plate (106) at the middle position, the bottom of the two groups of side plates (105) is fixedly connected with connecting plates (107), the two groups of connecting plates (107) are fixedly connected with a rack (108), the bottom of the rack (108) is meshingly connected with a gear (110), the inside of the gear (110) is fixedly penetrated with a rotating shaft (111), the rotating shaft (111) is rotatably connected with the furnace shell (101), one side of the furnace shell (101) is fixedly connected with a stepping motor (109), and the output end of the stepping motor (109) is fixedly connected with the rotating shaft (111). The bearing mechanism (2) includes a taking and placing opening (202) symmetrically formed in one side wall of the U-shaped sliding plate (104), and one side of the taking and placing opening (202) is provided with a bearing basket (201) which can be detachably connected with the U-shaped sliding plate (104).
2. The energy-saving titanium anode baking furnace according to claim 1, characterized in that, The bottom of the furnace shell (101) is fixedly connected with support columns (103), and the bottom of the support columns (103) is lower than the bottom of the stepping motor (109).
3. The energy-saving titanium anode baking furnace according to claim 1, characterized in that, The opposite sides of the two groups of side plates (105) are fixedly connected with side columns (112), and the bottom of each group of electric heating pipes (102) is rotatably connected with a roller (113).
4. The energy-saving titanium anode baking furnace according to claim 3, characterized in that, The bottom of each group of bearing baskets (201) is movably connected with a plurality of rolling balls (206), the inside of the U-shaped sliding plate (104) is symmetrically fixedly connected with support strips (203) corresponding to each row of rolling balls (206), one side of the furnace shell (101) is symmetrically fixedly connected with connecting rods (210), the two sides of the two groups of connecting rods (210) are symmetrically fixedly connected with vertical rods (209), and the side of each group of vertical rods (209) close to the furnace shell (101) is fixedly connected with two supporting strips (204).
5. The energy-saving titanium anode baking furnace according to claim 4, characterized in that, The opposite sides of the two groups of supporting strips (204) are fixedly connected with side rods (207), and the end of each group of side rods (207) away from the supporting strips (204) is fixedly connected with a support rod (208).
6. The energy-saving titanium anode baking furnace according to claim 1, characterized in that, The two sides of the furnace shell (101) are fixedly connected with cover plates (211) corresponding to the U-shaped sliding plate (104), the top of the two groups of cover plates (211) is symmetrically fixedly connected with inclined pull rods (212), and each group of inclined pull rods (212) is fixedly connected with the furnace shell (101).
7. The energy-saving titanium anode baking furnace according to claim 1, characterized in that, Each group of the bearing basket (201) is fixedly connected with a shielding plate (213) away from one side of the U-shaped slide plate (104), and the shielding plate (213) is matched with the taking and placing opening (202).
Citation Information
Patent Citations
Oven mechanism for titanium anode production
CN218223307U