Wear-resistant ceramic composite metal sheath

By adopting wear-resistant ceramic composite metal sheath structure in the slurry pump, the problems of the assembly complexity and high maintenance cost of the full ceramic slurry pump are solved, and the wear resistance and corrosion resistance in the wear-prone areas are achieved, which extends the service life and is suitable for mineral dressing, metallurgy and chemical industries.

CN223270192UActive Publication Date: 2025-08-26JIANGXI NAIPU MINING MASCH CO LTD
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Patent Information

Application Number
CN202422701661.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-03-25
Publication Date
2025-08-26
Estimated Expiration
2034-03-25

AI Technical Summary

Technical Problem

The existing all-ceramic slurry pumps have limitations in terms of assembly complexity, high maintenance costs, poor design flexibility and insufficient wear resistance, especially in terms of large-scale and runner optimization.

Method used

It adopts a wear-resistant ceramic composite metal sheath structure, which consists of ceramic blocks and metal frames. The ceramic blocks are fixed in the easily worn area to form a detachable or integrated structure, which improves wear resistance and corrosion resistance, and the easily worn area can be replaced separately.

Benefits of technology

It improves the overall service life and design flexibility of the slurry pump, reduces maintenance costs, and is suitable for the transportation of solid particles and corrosive media in the fields of ore dressing, metallurgy and chemical industry.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a wear-resistant ceramic composite metal sheath, which comprises a sheath ceramic block and a sheath metal shell, and the sheath ceramic block is fixed inside the sheath metal shell. The sheath ceramic blocks are divided into one or more sheath ceramic blocks along the circumferential direction of the sheath metal shell and cover an overflowing surface or an easy-to-wear area in the sheath; the easy-to-wear area refers to an area where the linear velocity of fluid near the sheath is greater than 20m / s and / or backflow is generated; the radial height of the sheath ceramic block does not exceed 300mm; the width of the outer diameter of the sheath ceramic block does not exceed 300mm; the thickness of the sheath ceramic block ranges from 15 mm to 30 mm. The utility model further discloses a slurry pump comprising the wear-resistant ceramic composite metal sheath.
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Description

[0001] This application is a divisional application of the Chinese utility model patent application filed on March 25, 2024, with application number 202420585383.2 and utility model name "Wear-resistant ceramic composite metal slurry pump for mineral processing." Technical Field

[0002] The utility model belongs to the technical field of a centrifugal slurry pump for mineral processing and wear-resistant ceramics, and relates to a wear-resistant ceramic composite metal sheath and a slurry pump. Background Art

[0003] The flow passage materials of existing all-ceramic slurry pumps in the prior art only include a pure ceramic layer. The integrated design of the pure ceramic flow passage may increase the complexity of the assembly process, especially when it needs to be combined with other metal parts of the pump, ensuring precise alignment may be more difficult. When the pump is maintained or the flow passage needs to be replaced, the pure ceramic structure may require the entire module to be replaced, rather than replacing or repairing a locally damaged part, which may lead to increased maintenance costs and time. The pure ceramic flow passage may limit the flexibility of the design. For example, when the flow channel shape or size needs to be optimized to improve pump efficiency, the difficulty of processing ceramics may limit the adjustment of these structural details. The pure ceramic structure may fix a specific flow channel shape and size at the beginning of the design, which may limit the ability to adjust or optimize the pump performance later, especially when the pump needs to adapt to different working conditions. In addition, the pure ceramic flow passage may be limited in size and shape because it needs to maintain sufficient structural strength and stability as a whole, which may limit the pursuit of flow channel optimization during design.

[0004] Compared with all-ceramic sheaths, all-ceramic sheaths cannot be made too large. Although they are easy to shape, they have poor wear resistance and are easy to break. Utility Model Content

[0005] In order to address the deficiencies in the prior art, the purpose of the present invention is to provide a wear-resistant ceramic composite metal sheath and a slurry pump, aiming to solve the problems that the full silicon carbide flow passage parts of the slurry pump are difficult to scale up, easily break, and have inflexible designs. By arranging ceramic blocks on the metal skeleton of the sheath, the sheath in the slurry pump is made wear-resistant, corrosion-resistant, has a long service life, and is low in cost.

[0006] In order to achieve the above technical objectives, the present invention adopts the following technical solutions:

[0007] The utility model provides a wear-resistant ceramic composite metal sheath, which is a detachable structure with front and rear halves or directly made into an integrated structure, including a sheath ceramic block and a sheath metal shell, and the sheath ceramic block is fixed inside the sheath metal shell; specifically, the sheath ceramic block is divided into one or more along the circumferential direction of the sheath metal shell, covering the entire internal flow surface of the metal sheath or a local wear-prone area, the wear-prone area refers to an area where the fluid linear velocity near the sheath is greater than 20m / s and / or backflow is generated, such as a tongue area, and the sheath ceramic block is fixed on the sheath metal shell.

[0008] The radial height of the sheath ceramic block does not exceed 300 mm; the outer diameter width of the sheath ceramic block does not exceed 300 mm; and the thickness of the sheath ceramic block ranges from 15 to 30 mm.

[0009] The present utility model also provides a wear-resistant ceramic composite metal slurry pump for mineral processing, the slurry pump comprising: a bracket, a bearing assembly, a stuffing box, a pump casing, and a flow-through piece; the flow-through piece comprises a front guard plate, a rear guard plate, the above-mentioned sleeve, and an impeller, the front guard plate, the rear guard plate, the sleeve, and the impeller all adopt a structure in which ceramic blocks are fixedly arranged on a metal skeleton, thereby improving the wear resistance and corrosion resistance of the wear-prone area of ​​the flow-through piece; the ceramic blocks are fixedly arranged on the metal skeleton of the wear-prone area of ​​the flow-through piece; the wear-prone area refers to an area where the fluid linear velocity near the flow-through piece is greater than 20m / s and / or backflow occurs.

[0010] The bracket is the basic supporting structure of the slurry pump, which is used to fix and carry the bearing assembly, pump shaft and other important components, and ensure the stability and balance of the slurry pump during operation;

[0011] The bearing assembly is mounted on the bracket and includes an axial bearing and a radial bearing, which are used to support and guide the rotation of the pump shaft and bear the axial force and radial force transmitted by the impeller;

[0012] The stuffing box is located at one end or both ends of the pump shaft and has a built-in stuffing seal and / or other forms of shaft sealing devices, which are used to prevent the slurry in the slurry pump from leaking outward along the axial direction, thereby maintaining the working efficiency of the slurry pump and preventing environmental pollution;

[0013] The pump casing is the main structure of the slurry pump, usually composed of upper and lower halves, or front and rear halves, connected by bolts. Components including flow-through parts and / or other wear-resistant bushings are installed inside the pump casing, which is connected to the bracket to form a complete slurry conveying channel.

[0014] In the overflow parts,

[0015] The front guard plate is installed in front of the impeller and cooperates with the inner wall of the pump casing and the sleeve to form a transition flow channel before the slurry enters the impeller, thereby reducing the direct impact and wear of the slurry on the impeller inlet;

[0016] The rear guard plate is installed behind the impeller and cooperates with the inner wall of the pump casing and the sleeve to form a transition channel for the slurry to flow from the impeller to the outlet section of the pump casing, so that the slurry flowing out of the impeller smoothly transitions to the outlet section of the pump casing, playing a role in anti-wear and shock absorption;

[0017] The sheath is tightly attached to the inner wall of the pump casing, forming a spiral flow channel for the slurry to flow through, converting the energy generated by the impeller into the static pressure energy of the slurry. The sheath itself has high wear resistance and protects the pump casing from wear;

[0018] The impeller is mounted on the pump shaft and is driven to rotate by the motor to pressurize and transport the slurry. The impeller, the front guard plate, the rear guard plate and the jacket form a continuous slurry flow channel.

[0019] The various components of the slurry pump are nested and interconnected, forming an efficient and wear-resistant slurry delivery system. The pump shaft runs through the entire pump body, transmitting the motor's power through the bearing assembly to the impeller. The impeller operates within the flow channel formed by the jacket, while the guard plate protects and guides the slurry flow, ensuring that the slurry pump maintains good performance and a long service life under long-term, high-intensity operating conditions.

[0020] The ceramic block is a wear-resistant ceramic material, including one or more of reaction-sintered silicon carbide ceramics, pressureless-sintered silicon carbide, silicon nitride ceramics or recrystallized ceramics; the density of the ceramic block is not less than 3.03g / cm 3 , hardness not less than 90HRA; flexural strength not less than 350MPa;

[0021] The radial height of the ceramic block does not exceed 300 mm, the outer diameter width does not exceed 300 mm; the thickness ranges from 15 to 30 mm;

[0022] The gaps between the ceramic blocks are filled with adhesive at high pressure to ensure the integrity of the wear surface of the ceramic blocks and prevent the slurry from wearing through the skeleton through the gaps;

[0023] The metal skeleton is made of materials including high chromium alloy, Q235B carbon structural steel or QT500-7 ductile iron.

[0024] In the slurry pump, the front guard plate and the rear guard plate are respectively installed in front and behind the impeller;

[0025] The front guard plate and / or the rear guard plate both include a guard plate ceramic block and a guard plate metal frame, and the guard plate ceramic block is fixed to the guard plate metal frame by adhesive; the guard plate metal frame includes an integrated hollow metal cylinder and a flat metal ring fixed to one end of the hollow metal cylinder, the inner ring size of the flat metal ring matches the inner diameter of the hollow metal cylinder, the interior of the hollow metal cylinder corresponds to the flow channel inlet area of ​​the slurry pump, and the lower surface of the flat metal ring corresponds to the guard plate plane area; the guard plate ceramic block is attached to the flow channel inlet area and / or the guard plate plane area, that is, the guard plate ceramic block completely fits and covers the inner surface of the hollow metal cylinder and / or the lower surface of the flat metal ring;

[0026] The protective plate ceramic block covering the inner surface of the hollow metal cylinder is an integrated cylindrical ceramic block; and / or,

[0027] The guard plate ceramic blocks covering the lower surface of the planar metal ring are one or more layers, each layer including a ceramic block group consisting of one or more circles of ceramic blocks; the ceramic block group is divided into one or more circles according to the radial width of the ring on the lower surface of the guard plate; the ceramic block groups of each two adjacent circles are staggered and interlocked by setting a step-like structure; each circle of the ceramic block group is divided into one or more equal parts along the circumferential direction, and the number of ceramic blocks in the inner and outer circles can be the same or different; the ceramic blocks in the inner and outer circles are mutually nested and fitted in the circumferential and radial directions, and the adjacent ceramic blocks in each circle are staggered and interlocked by setting a step-like structure;

[0028] In a specific embodiment, the protective plate ceramic blocks covering the lower surface of the metal ring are 1-2 layers in the axial direction, which prevents the slurry from wearing through the metal skeleton from the joints and affecting the service life.

[0029] The joints between the inner ring guard plate ceramic blocks and the outer ring guard plate ceramic blocks of the ceramic block group are staggered.

[0030] The guard plate ceramic blocks are mutually nested and fitted in both the circumferential direction and the radial direction.

[0031] The sharp corners of the ceramic blocks of the inner ring guard plate are matched with the impeller inlet, and the matching clearance is controlled at 1-5mm to prevent the slurry from flowing back to the inlet;

[0032] The metal plane of the guard plate and the outermost side of the ceramic block bonded and fixed on the metal plane are wrapped with a sealing ring, that is, the outer side of the guard plate is wrapped with a sealing ring, which can ensure a certain sealing performance when assembled with the sleeve.

[0033] The impeller includes an impeller ceramic block and an impeller metal frame;

[0034] The impeller ceramic block is bonded and fixed to the wear-prone area of ​​the impeller; the wear-prone area of ​​the impeller includes the impeller suction port, the outer diameter circumference of the front cover plate, the outer diameter circumference of the rear cover plate, and the blade working surface; the corresponding impeller ceramic blocks include the impeller suction port ceramic block, the front cover plate outer diameter circumference ceramic block, the rear cover plate outer diameter circumference ceramic block, and the blade working surface ceramic block;

[0035] The impeller metal frame is made of high chromium alloy material.

[0036] In the present invention, different ceramic blocks can be selected from different components according to actual needs, or can be selected from the same components.

[0037] In a specific embodiment, the impeller includes a front cover plate, a rear cover plate and a plurality of blades, the front cover plate and the rear cover plate are arranged opposite to each other, the plurality of blades are arranged between the front cover plate and the rear cover plate, and the front cover plate and the rear cover plate are connected through the plurality of blades; in the impeller, each blade is in the shape of a circular arc.

[0038] In the specific implementation process, the ceramic blocks that need to be bonded to the guard plate, the jacket, and the impeller can be fixed in the grooves with appropriate size and depth provided on the metal frame by bonding the ceramic blocks in the grooves.

[0039] In a specific implementation process, a plurality of the grooves are provided on the inner side surface of the front cover plate facing the rear cover plate, and are spaced apart along the circumferential direction of the inner side surface of the front cover plate; and / or,

[0040] The plurality of grooves are provided on the inner side surface of the rear cover plate facing the front cover plate, and are spaced apart along the circumferential direction of the inner side surface of the rear cover plate; and / or,

[0041] A plurality of grooves are provided on the inner surface of the impeller suction port; and / or,

[0042] A plurality of grooves are provided on the working surface of each blade.

[0043] Each of the wear-resistant ceramic blocks is fixedly connected to the impeller body.

[0044] The utility model also provides a preparation method of a composite material of a ceramic block bonded to a metal, the preparation method comprising: applying an adhesive on the surface of the ceramic block, placing the adhesive on the bonding position of the metal skeleton, placing the metal skeleton bonded with the ceramic block into an oven for curing, setting the temperature to 80-100°C, and drying for 1-2 hours, thereby improving the surface bonding strength between the ceramic and the metal.

[0045] In the utility model, when the ceramic blocks are partially severely worn, they can be replaced individually, thereby extending the service life and reducing maintenance costs.

[0046] The beneficial effects of the utility model are as follows: the utility model improves the overall service life of the slurry pump by fixing the divided ceramics on the wear surface of the metal skeleton of the sheath and other flow-through parts in the slurry pump, and solves the problem that silicon carbide ceramics are difficult to scale up and are very brittle by using the solution of fixing the ceramics in blocks according to the wear area. The ceramic blocks can be replaced individually and the maintenance cost is low, further improving production efficiency.

[0047] The ceramic composite metal slurry pump provided by the utility model takes advantage of the wear resistance and corrosion resistance of ceramics. The block design solves the problem that silicon carbide ceramics are difficult to scale up and are very brittle. The ceramic blocks can be replaced individually and the maintenance cost is low. It is particularly suitable for conveying media containing solid particles and corrosive media in mineral processing, metallurgy, chemical industry, etc. BRIEF DESCRIPTION OF THE DRAWINGS

[0048] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without paying any creative work.

[0049] Figure 1 The utility model is a structural schematic diagram of a wear-resistant ceramic composite metal slurry pump for mineral processing.

[0050] Figure 2 This is a schematic structural diagram of a ceramic composite metal front guard plate of the present invention.

[0051] Figure 3 This is a cross-sectional view of a ceramic composite metal front guard plate structure of the present invention.

[0052] Figure 4 This is a schematic diagram of a ceramic composite metal sheath structure of the utility model.

[0053] Figure 5 This is a cross-sectional view of a ceramic composite metal sheath structure of the utility model.

[0054] Figure 6 This is a schematic diagram of the structure of a ceramic composite metal impeller of the utility model.

[0055] Figure 7 This is a cross-sectional view of a ceramic composite metal impeller structure of the utility model.

[0056] In the figure, 1. bracket; 2. bearing assembly; 3. stuffing box; 4. pump casing; 5. front guard plate; 6. rear guard plate; 7. sleeve; 8. impeller; 9. guard plate ceramic block; 9a. cylindrical ceramic block; 9b. inner ring guard plate ceramic block; 9c. outer ring guard plate ceramic block; 11. guard plate metal frame; 12. sleeve ceramic block; 13. sleeve metal shell; 14. impeller ceramic block; 14a. impeller suction port ceramic block; 14b. front cover plate outer diameter circumference ceramic block; 14c. rear cover plate outer diameter circumference; 14d. blade working surface ceramic block; 15. impeller metal frame. DETAILED DESCRIPTION

[0057] The present invention is further described in detail with reference to the following specific examples and accompanying drawings. The processes, conditions, experimental methods, etc. for implementing the present invention, except for those specifically mentioned below, are all common knowledge and common common sense in the art and are not particularly limited in the present invention.

[0058] In the description of the present application, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise" and the like indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as limiting the present application. In addition, the terms "first" and "second" are used for descriptive purposes only and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined as "first" and "second" may explicitly or implicitly include one or more of the said features. In the description of the present application, "multiple" means two or more, unless otherwise clearly and specifically defined.

[0059] In the description of this application, it should be noted that, unless otherwise expressly specified or limited, the terms "installed," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integral connections; they can refer to mechanical connections, electrical connections, or mutual communication; they can refer to direct connections or indirect connections through an intermediate medium; they can refer to internal communication between two components or the interaction between two components. Those skilled in the art will understand the specific meanings of the above terms in this application based on specific circumstances.

[0060] In this application, unless otherwise expressly specified or limited, a first feature being "above" or "below" a second feature may include the first and second features being in direct contact, or may include the first and second features being in contact not directly but through another feature between them. Moreover, a first feature being "above," "above," and "above" a second feature may include the first feature being directly above or obliquely above the second feature, or may simply mean that the first feature is higher in level than the second feature. A first feature being "below," "below," and "below" a second feature may include the first feature being directly below or obliquely below the second feature, or may simply mean that the first feature is lower in level than the second feature.

[0061] In this application, the term "comprising" is an open expression, that is, including the contents specified in the present invention, but not excluding other aspects.

[0062] In this application, the term "about" when applied to a value means allowing some slight imprecision in the value in the calculation or measurement (approximately or reasonably close to the value by some means).

[0063] In this application, the term "and / or" includes any and all combinations of one or more of the associated listed items.

[0064] The disclosure below provides many different embodiments or examples for realizing different structures of the present application. In order to simplify the disclosure of the present application, the components and settings of specific examples are described below. Of course, they are merely examples and are not intended to limit the present application. In addition, the present application may repeat reference numbers and / or reference letters in different examples, and such repetition is for the purpose of simplicity and clarity, and does not itself indicate the relationship between the various embodiments and / or settings discussed. In addition, the present application provides examples of various specific processes and materials, but those of ordinary skill in the art will appreciate the application of other processes and / or the use of other materials.

[0065] The utility model provides a wear-resistant ceramic composite metal slurry pump for mineral processing, the slurry pump comprising: a bracket 1, a bearing assembly 2, a stuffing box 3, a pump casing 4, a front guard plate 5, a rear guard plate 6, a sleeve 7, and an impeller 8. The front guard plate 5, the rear guard plate 6, the sleeve 7, the impeller 8 and other flow-through parts all adopt a structure in which ceramic blocks are bonded to a metal skeleton.

[0066] Furthermore, the CFD and Rocky coupling calculation method is used to simulate the wear-prone areas of the flow-through parts such as the front guard plate 5, the rear guard plate 6, the jacket 7 and the impeller 8, and ceramic blocks are bonded to the corresponding wear areas;

[0067] Furthermore, the front guard plate 5 and the rear guard plate 6 each include a guard plate ceramic block 9 and a guard plate metal frame 11; the guard plate ceramic block 9 is bonded and fixed to the guard plate metal frame 11; the guard plate ceramic block 9 is divided into two areas, an entrance and a plane area, and a cylindrical ceramic block 9a is bonded to the guard plate entrance; the ceramic blocks in the plane area are divided into one or more circles according to the diameter of the guard plate, and the inner circle guard plate ceramic block 9b and the outer circle guard plate ceramic block 9c are evenly divided into one or more circles along the circumferential direction, and the circumferential direction and the radial direction are nested and fitted with each other to prevent the slurry from wearing through the guard plate metal frame 11 from the joints, thereby affecting the service life;

[0068] The seams of the inner ring guard plate ceramic block 9b and the seams of the outer ring guard plate ceramic block 9c should be staggered;

[0069] The sharp corners of the inner ring guard plate ceramic block 9b cooperate with the inlet of the impeller 8 to prevent the slurry from flowing back to the inlet;

[0070] The outer diameter of the guard plate 8 is wrapped with a sealing ring, which ensures a certain degree of sealing when assembled with the sheath 7.

[0071] Furthermore, the sheath 7 is an integral structure, comprising a sheath ceramic block 12 and a sheath metal shell 13; the sheath ceramic block 12 is divided into one or more sections along the circumference of the sheath metal shell 13; based on the calculated easily worn area of ​​the sheath, the sheath ceramic block 12 is fixed to the sheath metal shell 13 by an adhesive, covering the entire metal sheath flow surface or a local location with severe wear, such as the tongue area;

[0072] Furthermore, the impeller 8 comprises an impeller ceramic block 14 and an impeller metal frame 15;

[0073] The impeller ceramic block 14 is bonded to the impeller 8's easily worn areas based on the calculated easily worn areas, including the impeller suction port, the outer diameter circumference of the front cover plate, the outer diameter circumference of the rear cover plate, and the blade working surface. The impeller ceramic block 14 is bonded to the main surface of the impeller 8 and then cured at high temperature.

[0074] The impeller metal frame 15 is made of high chromium alloy material;

[0075] Furthermore, the adhesive can be one or more of epoxy resin structural adhesive, AB adhesive, etc.; the gaps between the ceramic blocks are filled with the adhesive under high pressure to ensure the integrity of the wear surface of the ceramic blocks and prevent the slurry from grinding through the skeleton through the gaps;

[0076] Furthermore, the ceramic blocks are made of wear-resistant ceramic materials, including the guard plate ceramic block 9, the sheath ceramic block 12 and the impeller ceramic block 14, which can be made of any one of reaction-sintered silicon carbide ceramics, pressureless-sintered silicon carbide, silicon nitride ceramics or recrystallized ceramics, either alone or in combination to form a wear-resistant ceramic layer; the density of the ceramic blocks is not less than 3.03 g / cm 3 , hardness not less than 90HRA; flexural strength not less than 350MPa;

[0077] Furthermore, when the ceramic blocks are severely worn locally, they can be replaced individually, thus extending their service life and reducing maintenance costs.

[0078] Furthermore, the material of the metal skeleton can be high chromium alloy, Q235B carbon structural steel or QT500-7 ductile iron and other grades of materials.

[0079] Example 1

[0080] like Figure 1 The wear-resistant ceramic composite metal slurry pump for mineral processing in this embodiment includes a bracket 1, a bearing assembly 2, a stuffing box 3, a pump casing 4, a front guard plate 5, a rear guard plate 6, a sleeve 7, and an impeller 8;

[0081] like Figure 2 As shown, the front guard plate 5 includes a guard plate ceramic block 9 and a guard plate metal frame 11.

[0082] The guard plate ceramic block 9 is divided into two areas, the entrance and the plane area. The cylindrical ceramic block 9a is bonded to the entrance of the front guard plate; the ceramic blocks in the plane area are divided into two circles. The inner and outer circle ceramic blocks are evenly distributed along the circumferential direction, including 8 inner circle guard plate ceramic blocks 9b and 12 outer circle guard plate ceramic blocks 9c. The circumferential direction and radial direction are nested and fitted with each other, as shown in FIG. Figure 3 As shown, this prevents slurry from wearing through the metal frame at the joints, shortening its lifespan. The joints between the inner and outer ring shield ceramic blocks 9b and 9c are staggered. The sharp corners of the inner shield ceramic blocks align with the impeller inlet to prevent slurry from flowing back into the impeller. A sealing ring 9d is wrapped around the outer diameter of the shield to ensure a tight seal when assembled with the sleeve. The shield metal frame 11 is made of Q235B carbon structural steel. The metal bonding method for the rear shield 6 is the same as for the front shield 5.

[0083] like Figure 4 and Figure 5As shown, the sheath 7 is an integral structure, comprising a sheath ceramic block 12 and a sheath metal shell 13; the sheath ceramic block 12 is divided into 17 parts along the circumferential direction of the sheath metal shell 13; the wear position is obtained by using CFD and Rocky coupling calculation method, the sheath ceramic block 12 covers the entire metal sheath flow surface, and the sheath ceramic block 12 is fixed to the sheath metal shell 13 by adhesive 10; wherein, the sheath metal shell 13 is made of QT500-7 ductile iron material.

[0084] like Figure 6 and Figure 7 As shown, the impeller 8 includes an impeller ceramic block 14 and an impeller metal frame 15. The impeller ceramic block 14 is bonded to the impeller's easily worn areas, including the impeller suction port, the front cover circumference, the rear cover circumference, and the blade working surface, based on the wear area calculated by CFD and Rocky coupling. The impeller ceramic block 14 is bonded to the surface of the impeller 8 body and then cured at high temperature. The impeller metal frame 15 is made of high chromium alloy material.

[0085] In this embodiment, the guard plate ceramic block 9, the jacket ceramic block 12 and the impeller ceramic block 14 are made of reaction-sintered silicon carbide material.

[0086] The adhesive can be epoxy resin structural adhesive, AB adhesive or a combination of resin and silicon carbide; the gaps between the ceramic blocks are filled with adhesive under high pressure to ensure the integrity of the wear surface of the ceramic blocks and prevent the slurry from grinding through the skeleton through the gaps;

[0087] Combined with the above steps, the front guard plate 5, rear guard plate 6, sleeve 7, impeller 8, pump casing 4, bearing assembly 2, stuffing box 3 and bracket 1 with ceramic bonding metal are finally assembled to form a complete slurry pump.

[0088] Example 2

[0089] The wear-resistant ceramic composite metal slurry pump for mineral processing in this embodiment includes a bracket 1, a bearing assembly 2, a stuffing box 3, a pump casing 4, a front guard plate 5, a rear guard plate 6, a sleeve 7, and an impeller 8;

[0090] The front guard plate 5 comprises a guard plate ceramic block 9 and a guard plate metal frame 11.

[0091] The shield's ceramic blocks 9 are divided into two areas: the inlet and the flat surface. A cylindrical ceramic block 9a is bonded to the front shield's inlet. The flat surface area is divided into three rings, with the inner and outer rings evenly spaced circumferentially. These blocks comprise seven inner ring blocks 9b and ten outer ring blocks 9c, nesting and fitting together circumferentially and radially to prevent slurry from wearing through the metal frame at the joints, which could affect its lifespan. The joints between the inner and outer ring blocks 9b and 9c are staggered. The sharp corners of the inner ring blocks mate with the impeller inlet to prevent slurry from backflowing into the inlet. A sealing ring 9d is wrapped around the outer diameter of the shield to ensure a tight seal when assembled with the sleeve. The shield's metal frame 11 is made of Q235B carbon structural steel. The metal bonding method for the rear shield 6 is the same as for the front shield 5.

[0092] The sheath 7 is an integral structure, comprising a sheath ceramic block 12 and a sheath metal shell 13; the sheath ceramic block 12 is divided into 15 parts along the circumferential direction of the sheath metal shell 13; the sheath flow surface is covered with local areas of severe wear, and the severe wear areas of the tongue area are separated by CFD and Rocky coupling calculation methods, and the sheath ceramic block 12 is fixed to the sheath metal shell 13 by adhesive 10; wherein, the sheath metal shell 13 is made of QT500-7 ductile iron material.

[0093] The impeller 8 comprises an impeller ceramic block 14 and an impeller metal frame 15. The impeller ceramic block 14 is bonded to the impeller's wear-prone areas, including the impeller suction port, the front cover circumference, the rear cover circumference, and the blade working surface, based on the wear areas calculated by CFD and Rocky coupling. The impeller ceramic block 14 is bonded to the surface of the impeller 8 body and then cured at high temperature. The impeller metal frame 15 is made of high-chromium alloy material.

[0094] In this embodiment, the guard plate ceramic block 9, the jacket ceramic block 12 and the impeller ceramic block 14 are made of pressureless sintered silicon carbide material.

[0095] The adhesive can be AB glue; the gaps between the ceramic blocks are filled with the adhesive under high pressure to ensure the integrity of the wear surface of the ceramic blocks and prevent the slurry from wearing through the skeleton through the gaps;

[0096] Combined with the above steps, the front guard plate 5, rear guard plate 6, sleeve 7, impeller 8, pump casing 4, bearing assembly 2, stuffing box 3 and bracket 1 with ceramic bonding metal are finally assembled to form a complete slurry pump.

[0097] Example 3

[0098] This embodiment provides a method for preparing a composite material of ceramic blocks bonded to metal, the preparation method comprising: applying an adhesive to the surface of the ceramic block, placing the adhesive on the bonding position of the metal skeleton, placing the metal skeleton bonded with the ceramic block into an oven for curing, setting the temperature to 80°C and the drying time to 2 hours.

[0099] Example 4

[0100] This embodiment provides an impeller that cooperates with a slurry pump jacket, wherein the impeller includes an impeller body and a plurality of wear-resistant ceramic blocks bonded thereto, wherein the impeller is made of cemented carbide.

[0101] Among them, the impeller is made of cemented carbide, which can improve the stability of the mechanical properties of the slurry pump impeller.

[0102] The number of wear-resistant ceramic blocks can be set according to actual conditions and is not specifically limited here.

[0103] The impeller comprises a front cover plate, a rear cover plate and a plurality of blades. The front cover plate and the rear cover plate are arranged opposite to each other. The plurality of blades are arranged between the front cover plate and the rear cover plate. The front cover plate and the rear cover plate are connected through the plurality of blades.

[0104] A plurality of grooves are provided in the wear-prone area of ​​the impeller, and the wear-resistant ceramic blocks are arranged in the grooves and fixedly connected to the impeller.

[0105] In a specific embodiment, multiple grooves can be set in the wear-prone area of ​​the impeller, and a wear-resistant ceramic block can be set in each groove. The high hardness, wear resistance and corrosion resistance of the wear-resistant ceramic can be utilized to improve the local wear resistance of the slurry pump impeller, thereby increasing the life of the slurry pump impeller and solving the problem of short life of the slurry pump impeller.

[0106] The use of multiple small wear-resistant ceramic blocks placed in the wear-prone areas of the impeller can solve the process difficulty of large-scale wear-resistant ceramics and reduce the cost of the slurry pump impeller. The size of the wear-resistant ceramic blocks can be determined according to the diameter of the impeller and the ceramic molding process.

[0107] An impeller suction port is provided in the middle of the impeller front cover plate, wherein the fluid enters the slurry pump impeller through the impeller suction port.

[0108] The plurality of grooves are arranged on the inner side surface of the front cover plate facing the rear cover plate and are spaced apart along the circumferential direction of the inner side surface of the front cover plate. That is, the inner side surface of the front cover plate facing the rear cover plate is a position prone to wear of the impeller.

[0109] The plurality of grooves are arranged on the inner side of the rear cover plate facing the front cover plate and are spaced apart along the circumferential direction of the inner side of the rear cover plate. That is, the inner side of the rear cover plate facing the front cover plate is a position prone to wear of the impeller.

[0110] The plurality of grooves are arranged on the inner surface of the impeller suction port, that is, the inner surface of the impeller suction port is a position prone to wear of the impeller.

[0111] The working surface of each blade is provided with a plurality of grooves, that is, the working surface of each blade is a part of the impeller that is prone to wear.

[0112] Each wear-resistant ceramic block is fixedly connected to the impeller through an adhesive.

[0113] The plurality of wear-resistant ceramic blocks include at least one of silicon carbide ceramics, silicon nitride-bonded silicon carbide ceramics, silicon oxide ceramics-bonded silicon carbide ceramics and recrystallized ceramics.

[0114] For example, multiple wear-resistant ceramic blocks are all silicon carbide ceramics, or a portion of the multiple wear-resistant ceramic inserts are silicon carbide ceramics, and the remaining portions are silicon nitride-bonded silicon carbide ceramics. In other words, the wear-resistant ceramic blocks can be composed of any one of silicon carbide ceramics, silicon nitride-bonded silicon carbide ceramics, silicon oxide ceramics-bonded silicon carbide ceramics, and recrystallized ceramics, either alone or in combination.

[0115] Among them, the impeller is cast in one piece.

[0116] A raised portion is provided in the middle of the rear cover plate, and a threaded hole for matching and connecting with the pump shaft of the slurry pump is provided at the center of the raised portion.

[0117] Wherein, the shape of each blade is arc-shaped.

[0118] The slurry pump impeller provided in the present invention provides multiple grooves in the wear-prone areas of the impeller, with a wear-resistant ceramic block placed in each groove. By utilizing the high hardness, wear resistance, and corrosion resistance of the wear-resistant ceramic, the local wear resistance of the slurry pump impeller is improved, thereby extending the life of the slurry pump impeller and resolving the problem of short impeller life. Furthermore, because the impeller is made of cemented carbide, the mechanical properties of the slurry pump impeller are stable. Finally, the use of multiple small wear-resistant ceramic blocks in the wear-prone areas of the impeller can solve the process difficulty of large-scale wear-resistant ceramics and reduce the cost of the slurry pump impeller.

[0119] The protection content of the present invention is not limited to the above embodiments. Without departing from the spirit and scope of the present invention, any changes and advantages that can be thought of by those skilled in the art are included in the present invention and are protected by the appended claims.

Claims

1. A wear-resistant ceramic composite metal sheath, characterized in that: The sheath (7) comprises: a sheath ceramic block (12) and a sheath metal shell (13), wherein the sheath ceramic block (12) is fixed inside the sheath metal shell (13); the sheath ceramic block (12) is divided into one or more parts along the circumferential direction of the sheath metal shell (13), covering the internal flow surface or the easily-worn area of ​​the sheath; the easily-worn area refers to an area near the sheath where the fluid linear velocity is greater than 20 m / s and / or backflow occurs.

2. The sheath according to claim 1, wherein The radial height of the sheath ceramic block (12) does not exceed 300 mm.

3. The sheath according to claim 1, wherein: The outer diameter width of the sheath ceramic block (12) does not exceed 300 mm.

4. The sheath according to claim 1, wherein: The thickness of the sheath ceramic block (12) ranges from 15 to 30 mm.