Wastewater odor treatment device
By designing a combination of storage and pressurized extrusion mechanisms, large particles of debris are dispersed using water pressure and rotational force, and then adsorbed by activated carbon or odor eliminators. This solves the problem of large particle accumulation in wastewater odor treatment and achieves efficient odor elimination.
Patent Information
- Application Number
- CN202520236804.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-14
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2035-02-14
AI Technical Summary
In existing technologies for wastewater odor treatment, the accumulation of large particles of pollutants affects the odor elimination effect and interferes with chemical agents.
A wastewater odor treatment device was designed, including a storage mechanism, a liquid abrasive mechanism, and a pressurized extrusion mechanism. Through the combination of an outer grinding chamber and an inner grinding chamber, large particulate impurities are dispersed by water pressure and rotational force, and then adsorbed by activated carbon or odor eliminators.
It effectively disperses large particles of debris, improves wastewater treatment efficiency, avoids siltation, and enhances odor elimination.
Smart Images

Figure CN223780005U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of wastewater treatment technology, specifically to a wastewater odor treatment device. Background Technology
[0002] Wastewater odor treatment is an essential process in water treatment, which includes alkaline washing, biological filtration, activated carbon adsorption, and chemical deodorization. These steps can effectively reduce acidic compounds and odors in wastewater.
[0003] Currently, wastewater odor treatment typically involves specific filters combined with chemical agents. However, this method has certain drawbacks. Due to the abundance of foreign matter in the wastewater, excessive accumulation of large particles can hinder the elimination or adsorption of odors and interfere with various chemical agents.
[0004] Therefore, a wastewater odor treatment device was designed to solve the above problems. Utility Model Content
[0005] This utility model aims to solve one of the technical problems existing in the prior art or related technologies.
[0006] Therefore, the technical solution adopted by this utility model is as follows:
[0007] A wastewater odor treatment device includes a storage mechanism, a liquid abrasive mechanism disposed within the storage mechanism, a pressure-boosting extrusion mechanism disposed within the storage mechanism, and multiple columns and multiple clamping blocks installed within the liquid abrasive mechanism and the pressure-boosting extrusion mechanism. The storage mechanism includes an outer cylinder with two symmetrically distributed drain pipes at both ends of the outer cylinder, and two annular grooves are formed in the ports at both ends of the outer cylinder. The liquid abrasive mechanism includes a first sealing plate movably installed in one end port of the outer cylinder, three grinding outer chambers disposed in the inner cavity of the outer cylinder, and a grinding inner chamber disposed in the grinding outer chambers. The pressure-boosting extrusion mechanism includes a second sealing plate movably installed in the other end port of the outer cylinder.
[0008] In a preferred embodiment, the present invention can be further configured as follows: the pressurized extrusion mechanism further includes two protective tubes installed at one end of the outer cylinder, two auxiliary pull rods movably installed in the two protective tubes, and a pressurizing ring is installed on the end of the two auxiliary pull rods that extends through the inner cavity of the outer cylinder;
[0009] A main pull rod is provided in the middle of the second sealing plate;
[0010] Two second sealing rings are provided on the side of the second sealing disc, and the two second sealing rings are fitted into two of the annular grooves.
[0011] In a preferred embodiment, the present invention can be further configured such that: a rotating wheel is installed on the end pipe on the outer side of the first sealing plate, and a wastewater input pipe is movably installed inside the end pipe on the outer side of the first sealing plate;
[0012] The first sealing plate has two first sealing rings on its side, and the two first sealing rings are fitted into two other annular grooves.
[0013] In a preferred embodiment, the present invention can be further configured such that the inner wall of the grinding chamber is provided with a recessed material storage groove;
[0014] The outer wall of the grinding chamber is provided with evenly distributed cutting edges;
[0015] Both the outer and inner grinding chambers are equipped with mesh openings.
[0016] In a preferred embodiment, the present invention may be further configured such that the storage mechanism includes a stabilizing pad installed at one end of the outer cylinder, an outer frame installed on the outer cylinder, an eccentric wheel movably installed inside the outer frame, a traction rod movably connected to the eccentric wheel, a vertical rod movably installed at the outer end of the traction rod, and a support plate installed at the bottom end of the vertical rod.
[0017] In a preferred embodiment, the present invention can be further configured such that the material storage mechanism also includes a power supply component installed on the outer cylinder;
[0018] The power supply component consists of a chassis, a motor, and gears. The gears are mounted on a longer shaft of the internal drive shaft of the motor, and a drive wheel is mounted on the other end of the internal drive shaft of the motor. A track is connected to the drive wheel.
[0019] The track drive is connected to the drive wheel and the sprocket.
[0020] In a preferred embodiment, the present invention can be further configured such that a first bearing is installed in the middle of the stabilizing pad;
[0021] The outer frame consists of a U-shaped frame and two pads, and a second bearing is installed in the pad ring in the middle of the U-shaped frame.
[0022] In a preferred embodiment, the present invention can be further configured such that a gear disk is mounted on the vertical shaft at the top of the eccentric wheel, and a pin is provided at the bottom of the eccentric wheel at a position off-center from the center.
[0023] By adopting the above technical solution, the beneficial effects achieved by this utility model are as follows:
[0024] 1. This utility model adds an outer cylinder to the wastewater treatment system, and sets up an evenly distributed grinding outer chamber and grinding inner chamber inside the outer cylinder. After the wastewater is injected into the grinding inner chamber, the large particles of impurities in the water can be effectively dispersed under the action of water pressure impact and rotation force. The dispersed foreign matter, together with the wastewater, is squeezed out of the grinding outer chamber. Activated carbon or odor eliminator can then adsorb or eliminate the odor in the wastewater. At the same time, the actively dispersed dirt can also be convenient for efficient sedimentation in the subsequent sludge removal tank. Attached Figure Description
[0025] Figure 1 This is a schematic diagram illustrating the use of this utility model;
[0026] Figure 2 This is a bottom view of the present invention;
[0027] Figure 3 This is an exploded view of the material storage mechanism of this utility model;
[0028] Figure 4 This is a schematic diagram of the liquid abrasive mechanism and the pressure extrusion mechanism of this utility model;
[0029] Figure 5 This utility model Figure 4 An internal diagram.
[0030] Figure label:
[0031] 100. Storage mechanism; 110. Outer cylinder; 120. Power supply assembly; 130. Track; 140. Stabilizing pad; 150. Outer frame; 160. Eccentric wheel; 170. Traction rod; 180. Vertical rod; 190. Support plate;
[0032] 200. Liquid abrasive mechanism; 210. First sealing plate; 220. Rotary wheel; 230. Wastewater inlet pipe; 240. First sealing ring; 250. Grinding outer chamber; 260. Grinding inner chamber;
[0033] 300. Pressure-boosting extrusion mechanism; 310. Second sealing disc; 320. Second sealing ring; 330. Protective tube; 340. Main tie rod; 350. Auxiliary tie rod; 360. Pressure-boosting ring;
[0034] 400. Column;
[0035] 500, Card Block. Detailed Implementation
[0036] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to specific embodiments and accompanying drawings. It should be noted that, unless otherwise specified, the embodiments and features of the present utility model can be combined with each other.
[0037] It should be understood that these descriptions are merely exemplary and not intended to limit the scope of this invention.
[0038] The following describes, with reference to the accompanying drawings, some embodiments of the present invention, providing a wastewater odor treatment device.
[0039] Example 1:
[0040] Combination Figure 1 Figure 5 As shown, the present invention provides a wastewater odor treatment device, including a storage mechanism 100, a liquid abrasive mechanism 200 disposed within the storage mechanism 100, a pressure-boosting extrusion mechanism 300 disposed within the storage mechanism 100, multiple columns 400 and multiple clamping blocks 500 installed within the liquid abrasive mechanism 200 and the pressure-boosting extrusion mechanism 300. The storage mechanism 100 is used to store a fixed amount of wastewater and, in conjunction with chemical agents or activated carbon, eliminate odors. The liquid abrasive mechanism 200 is used to disperse large particles of impurities in the wastewater. The pressure-boosting extrusion mechanism 300 is used to provide effective extrusion force to the dispersed impurities and wastewater to improve the efficient discharge of wastewater.
[0041] The storage mechanism 100 includes an outer cylinder 110, two symmetrically distributed drain pipes at both ends of the outer side of the outer cylinder 110, and two annular grooves in the ports at both ends of the outer cylinder 110, a stabilizing pad 140 installed at one end of the outer cylinder 110, an outer frame 150 installed on the outer cylinder 110, an eccentric wheel 160 movably installed in the outer frame 150, a traction rod 170 movably connected to the eccentric wheel 160, a vertical rod 180 movably installed at the outer end of the traction rod 170, and a support plate 190 installed at the bottom end of the vertical rod 180.
[0042] The liquid abrasive mechanism 200 includes a first sealing plate 210 movably installed in one end port of the outer cylinder 110, three grinding outer chambers 250 disposed in the inner cavity of the outer cylinder 110, and a grinding inner chamber 260 disposed in the grinding outer chambers 250.
[0043] The pressurized extrusion mechanism 300 includes a second sealing plate 310 movably installed in the other end port of the outer cylinder 110, two protective tubes 330 installed at one end of the outer cylinder 110, two auxiliary pull rods 350 movably installed in the two protective tubes 330, and a pressurized ring 360 installed on the end of the two auxiliary pull rods 350 that penetrate into the inner cavity of the outer cylinder 110.
[0044] The second sealing plate 310 is equipped with a main pull rod 340 in the middle;
[0045] Two second sealing rings 320 are provided on the side of the second sealing disc 310, and the two second sealing rings 320 are fitted into two of the annular grooves.
[0046] Activated carbon or odor eliminator granules are pre-placed into the gap between the outer grinding chamber 250 and the inner grinding chamber 260. Then, wastewater is transferred to the inner cavity of the inner grinding chamber 260 through the wastewater inlet pipe 230. Then, the motor in the power supply component 120 is started. At this time, the drive wheel at one end of the drive shaft of the motor will drive the track 130 and the rotating wheel 220. Finally, the first sealing plate 210 will cooperate with multiple columns 400 and multiple clamping blocks 500 to assist in rotating the three outer grinding chambers 250 and the three inner grinding chambers 260. At this time, large particles of foreign matter in the wastewater will be shaken apart by water pressure. Finally, the shaken foreign matter will be squeezed out from the mesh of the outer grinding chamber 250 and the inner grinding chamber 260 by water pressure.
[0047] The squeezed wastewater can be treated by broad-area adsorption after passing through activated carbon or odor-eliminating granules.
[0048] As the other end of the internal drive shaft of the motor engages with the gear-driven eccentric wheel 160, the traction rod 170 will pull the vertical rod 180 and the support plate 190 to reciprocate and extend. Ultimately, it can push the two auxiliary pull rods 350 and the main pull rod 340 horizontally. At this time, the two auxiliary pull rods 350 will pull the pressure ring 360 to move back and forth along the inner cavity of the outer cylinder 110. At this time, the wastewater will effectively squeeze out the dispersed foreign objects from the two end pipes on the outer wall of the outer cylinder 110.
[0049] Example 2:
[0050] Combination Figure 3 and Figure 4 As shown, based on Embodiment 1, the storage mechanism 100 further includes an energy supply component 120 installed on the outer cylinder 110;
[0051] The power supply component 120 consists of a chassis, a motor, and gears. The gears are mounted on a longer shaft of the internal drive shaft of the motor, and a drive wheel is mounted on the other end of the internal drive shaft. A track 130 is connected to the drive wheel.
[0052] Preferably, bolts are provided in the two clamping plates at the bottom of the chassis, and reinforcing beams are provided at the top and bottom of the outer cylinder 110, and the chassis is fixed to the top reinforcing beam by bolts.
[0053] Track 130 is driven to drive wheel and sprocket 220;
[0054] The first bearing is installed in the middle of the stabilizing pad 140.
[0055] Preferably, the stabilizing pad 140 is bolted to both ends of the two reinforcing beams, and the end tube on the outside of the first sealing plate 210 is installed in the first bearing inside the stabilizing pad 140.
[0056] The outer frame 150 consists of a U-shaped frame and two pads, and a second bearing is installed in the pad ring in the middle of the U-shaped frame;
[0057] A gear disk is mounted on the vertical shaft at the top of the eccentric wheel 160, and a pin is provided at the bottom of the eccentric wheel 160 off-center.
[0058] Preferably, the vertical shaft at the top of the eccentric wheel 160 is installed in the second bearing in the middle of the U-shaped frame, and the two pads are installed on both sides of the top reinforcing beam plate by multiple bolts;
[0059] The end of the traction rod 170 away from the vertical rod 180 is movably mounted on the outside of the pin.
[0060] Example 3:
[0061] Combination Figure 4 and Figure 5 As shown, in the above embodiment, a rotating wheel 220 is installed on the end pipe on the outer side of the first sealing plate 210, and a wastewater input pipe 230 is movably installed inside the end pipe on the outer side of the first sealing plate 210.
[0062] The first sealing disc 210 has two first sealing rings 240 on its side, and the two first sealing rings 240 are adapted to be snapped into two other annular grooves.
[0063] The inner wall of the grinding chamber 250 is provided with a recessed material storage trough;
[0064] The outer wall of the grinding chamber 260 is provided with evenly distributed cutting edges;
[0065] Both the outer grinding chamber 250 and the inner grinding chamber 260 have mesh openings inside.
[0066] Preferably, the outer cylinder 110, the first sealing plate 210 and the second sealing plate 310 are all made of stainless steel. Six uprights 400 and six locking blocks 500 are installed on the inner wall of the first sealing plate 210, while the other six uprights 400 and six locking blocks 500 are installed on the inner wall of the second sealing plate 310.
[0067] The diameter of the mesh holes on the inner wall of the grinding chamber 260 is twice that of the inner wall of the grinding chamber 250, and the cutting edge on the outer wall of the grinding chamber 260 is used to provide effective storage for activated carbon or odor eliminator particles.
[0068] The working principle and usage process of this utility model are as follows: three grinding inner chambers 260 are pre-installed movably inside three grinding outer chambers 250, and three adjacent grinding outer chambers 250 are snapped together by multiple columns 400, and three adjacent grinding inner chambers 260 are snapped together by multiple locking blocks 500.
[0069] Next, the three sets of grinding outer chambers 250 and grinding inner chambers 260 are placed in the inner cavity of the outer cylinder 110, and the second sealing plate 310 is installed at one end of the outer cylinder 110. Then, large granular activated carbon or odor eliminator granules are put into the gap between the grinding inner chamber 260 and the grinding outer chamber 250. Then, the first sealing plate 210 is installed at the other end of the outer cylinder 110.
[0070] After the wastewater inlet pipe 230 transfers the wastewater to the inner cavity of the outer cylinder 110, the wastewater will immediately enter the inner cavities of the three grinding chambers 260. When the power supply component 120 starts and runs, one end of the transmission shaft inside the motor drives the track 130 to rotate. At this time, the other end of the track 130 will drive the first sealing plate 210 and the three sets of grinding outer chambers 250 and grinding inner chambers 260. At this time, the foreign matter in the wastewater will be shaken apart by the water pressure. Finally, the shaken dirt will be squeezed out through the gaps between the grinding inner chambers 260 and the grinding outer chambers 250. The shaken dirt and sewage can then be deodorized by large-particle activated carbon or odor eliminator particles.
[0071] When the wastewater is mixed and pressurized, the dispersed dirt is squeezed out. The gear at the other end of the transmission shaft inside the motor drives the eccentric wheel 160 to rotate, and the traction rod 170 reciprocates. Finally, the vertical rod 180, together with the support plate 190, pushes the two auxiliary pull rods 350 and the main pull rod 340. The two auxiliary pull rods 350 then drive the pressurizing ring 360 to reciprocate and pressurize the wastewater in the inner cavity of the outer cylinder 110 after the odor has been eliminated. This allows the wastewater to be effectively squeezed out. The main pull rod 340 reciprocates towards the inner cavity of the three grinding chambers 260, and the ribbon-like foreign objects in the wastewater can be gathered together, thereby preventing the ribbon-like foreign objects from clogging the gaps in the inner wall of the grinding chamber 260.
[0072] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.
Claims
1. A wastewater odor treatment device, comprising a storage mechanism (100), characterized in that, It also includes a liquid abrasive mechanism (200) disposed in the storage mechanism (100), a pressure extrusion mechanism (300) disposed in the storage mechanism (100), a plurality of columns (400) and a plurality of clamping blocks (500) installed in the liquid abrasive mechanism (200) and the pressure extrusion mechanism (300); The storage mechanism (100) includes an outer cylinder (110), and two symmetrically distributed drain pipes are provided at both ends of the outer side of the outer cylinder (110), and two annular grooves are opened in the ports at both ends of the outer cylinder (110). The liquid abrasive mechanism (200) includes a first sealing plate (210) movably installed in one end port of the outer cylinder (110), three grinding outer chambers (250) disposed in the inner cavity of the outer cylinder (110), and a grinding inner chamber (260) disposed in the grinding outer chambers (250); The pressurized extrusion mechanism (300) includes a second sealing disc (310) movably mounted in the other end port of the outer cylinder (110).
2. The wastewater odor treatment device according to claim 1, characterized in that, The pressurized extrusion mechanism (300) also includes two protective tubes (330) installed at one end of the outer cylinder (110), two auxiliary pull rods (350) movably installed in the two protective tubes (330), and pressurized rings (360) are installed on the ends of the two auxiliary pull rods (350) that penetrate into the inner cavity of the outer cylinder (110); The second sealing plate (310) is provided with a main pull rod (340) in the middle; Two second sealing rings (320) are provided on the side of the second sealing disc (310), and the two second sealing rings (320) are fitted into two of the annular grooves.
3. The wastewater odor treatment device according to claim 1, characterized in that, A rotating wheel (220) is installed on the end pipe on the outer side of the first sealing plate (210), and a wastewater input pipe (230) is movably installed inside the end pipe on the outer side of the first sealing plate (210); The first sealing plate (210) has two first sealing rings (240) on its side, and the two first sealing rings (240) are fitted into two other annular grooves.
4. The wastewater odor treatment device according to claim 1, characterized in that, The inner wall of the grinding chamber (250) is provided with a recessed storage trough; The outer wall of the grinding chamber (260) is provided with uniformly distributed cutting edges; Both the outer grinding chamber (250) and the inner grinding chamber (260) have mesh openings inside.
5. The wastewater odor treatment device according to claim 1, characterized in that, The storage mechanism (100) also includes a stabilizing pad (140) installed at one end of the outer cylinder (110), an outer frame (150) installed on the outer cylinder (110), an eccentric wheel (160) movably installed in the outer frame (150), a traction rod (170) movably connected to the eccentric wheel (160), a vertical rod (180) movably installed at the outer end of the traction rod (170), and a support plate (190) installed at the bottom end of the vertical rod (180).
6. The wastewater odor treatment device according to claim 1, characterized in that, The storage mechanism (100) also includes a power supply component (120) installed on the outer cylinder (110); The power supply component (120) consists of a chassis, a motor and gears. The gears are mounted on a longer shaft of the internal drive shaft of the motor, and a drive wheel is mounted on the other end of the internal drive shaft of the motor. A track (130) is connected to the drive wheel. The track (130) is driven to the drive wheel and the sprocket (220).
7. The wastewater odor treatment device according to claim 5, characterized in that, A first bearing is installed in the middle of the stabilizing pad (140); The outer frame (150) consists of a U-shaped frame and two pads, and a second bearing is provided in the pad ring in the middle of the U-shaped frame.
8. The wastewater odor treatment device according to claim 5, characterized in that, A gear disk is mounted on the vertical shaft at the top of the eccentric wheel (160), and a pin is provided at the bottom of the eccentric wheel (160) off-center.