CN110762141A - Wind power yaw device brake multilayer laminated friction plate forming process and product - Google Patents

Wind power yaw device brake multilayer laminated friction plate forming process and product Download PDF

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Publication number
CN110762141A
CN110762141A CN201910940539.8A CN201910940539A CN110762141A CN 110762141 A CN110762141 A CN 110762141A CN 201910940539 A CN201910940539 A CN 201910940539A CN 110762141 A CN110762141 A CN 110762141A
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CN
China
Prior art keywords
wear
layer
fiber cloth
resistant
friction plate
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Pending
Application number
CN201910940539.8A
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Chinese (zh)
Inventor
周完成
梁军
钟招汉
周安
黄国演
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GUANGDONG XINZHI SEAL TECHNOLOGY Co Ltd
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GUANGDONG XINZHI SEAL TECHNOLOGY Co Ltd
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Priority to CN201910940539.8A priority Critical patent/CN110762141A/en
Publication of CN110762141A publication Critical patent/CN110762141A/en
Pending legal-status Critical Current

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16DCOUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
    • F16D65/00Parts or details
    • F16D65/02Braking members; Mounting thereof
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16DCOUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
    • F16D69/00Friction linings; Attachment thereof; Selection of coacting friction substances or surfaces
    • F16D69/02Composition of linings ; Methods of manufacturing
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16DCOUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
    • F16D69/00Friction linings; Attachment thereof; Selection of coacting friction substances or surfaces
    • F16D69/04Attachment of linings
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16DCOUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
    • F16D69/00Friction linings; Attachment thereof; Selection of coacting friction substances or surfaces
    • F16D2069/005Friction linings; Attachment thereof; Selection of coacting friction substances or surfaces having a layered structure
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16DCOUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
    • F16D69/00Friction linings; Attachment thereof; Selection of coacting friction substances or surfaces
    • F16D2069/005Friction linings; Attachment thereof; Selection of coacting friction substances or surfaces having a layered structure
    • F16D2069/008Layers of fibrous materials
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16DCOUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
    • F16D69/00Friction linings; Attachment thereof; Selection of coacting friction substances or surfaces
    • F16D69/04Attachment of linings
    • F16D2069/0425Attachment methods or devices
    • F16D2069/045Bonding
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16DCOUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
    • F16D2200/00Materials; Production methods therefor
    • F16D2200/006Materials; Production methods therefor containing fibres or particles
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16DCOUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
    • F16D2250/00Manufacturing; Assembly
    • F16D2250/0023Shaping by pressure
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16DCOUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
    • F16D2250/00Manufacturing; Assembly
    • F16D2250/0061Joining
    • F16D2250/0069Adhesive bonding

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Wind Motors (AREA)
  • Braking Arrangements (AREA)

Abstract

The invention discloses a forming process and a product of a wind power yaw device brake multilayer laminated friction plate, wherein the forming process comprises the following steps: 1) preparing a bonding base material, a supporting fiber cloth and a wear-resistant fiber cloth; 2) placing the support fiber cloth in an adhesive base material for impregnation treatment, and impregnating the adhesive base material to prepare a support layer prepreg, wherein the single-layer thickness of the support layer prepreg is 0.1-2 mm; putting the wear-resistant fiber cloth into an adhesive base material for impregnation treatment, and impregnating the adhesive base material to prepare a wear-resistant layer prepreg, wherein the single-layer thickness of the wear-resistant layer prepreg is 0.1-2 mm; 3) laminating a plurality of layers of support layer prepregs and a plurality of layers of wear-resistant layer prepregs, wherein the plurality of layers of support layer prepregs are stacked and laminated to form a support layer, and the plurality of layers of wear-resistant layer prepregs are stacked and laminated to form a wear-resistant layer, so that a semi-finished friction plate with a lower layer as a support layer and an upper layer as a wear-resistant layer is formed; 4) and curing the semi-finished friction plate to form the wind power yaw device braking multilayer laminated friction plate.

Description

Wind power yaw device brake multilayer laminated friction plate forming process and product
Technical Field
The invention relates to a friction plate forming process, in particular to a wind power yaw device brake multilayer laminated friction plate forming process and a product.
Background
At the present stage, the brake friction plate of the wind power yaw device is mostly made of metal powder metallurgy, although the material is wear-resistant and high-temperature-resistant, and the friction coefficient can be regulated and controlled by a doped carbon material, the problem of noise pollution caused by squeal caused by vibration cannot be solved. Another key problem is: because the metal alloy has higher hardness, the brake disc can be damaged, and the maintenance cost is increased sharply.
Disclosure of Invention
In view of the above disadvantages, the present invention provides a forming process of a multilayer laminated friction plate for braking a wind power yaw device, which solves the noise problem of the current friction plate and ensures the health of the fan staff and the surrounding residents; the wear-resisting effect of the friction plate is improved, the abrasion and the scratch to the brake disc are avoided, and the maintenance cost is reduced; the friction plate has the advantages of small density, light weight, convenient carrying and convenient construction.
The technical scheme adopted by the invention is as follows: a forming process of a multilayer laminated friction plate for braking of a wind power yaw device is characterized by comprising the following steps:
1) preparing a bonding base material, a supporting fiber cloth and a wear-resistant fiber cloth; the bonding base material is one or a mixture of two materials of acrylate resin and epoxy resin; the supporting fiber cloth is carbon fiber cloth or glass fiber cloth; the wear-resistant fiber cloth is polyester cloth, ultra-high molecular weight polyethylene fiber cloth or aramid fiber cloth; the wear-resistant fiber cloth is added with a friction-reducing wear-resistant material, the friction-reducing wear-resistant material is one or a mixture of more of graphite, graphene, molybdenum disulfide, PTFE, brass and fluoropolymer, and is a powder material with the particle size of 0.1-300 mu m or a fibrous material with the length-diameter ratio of more than 5; the weight proportion of the antifriction and wear-resistant material in the wear-resistant fiber cloth is 3-20%;
2) placing the support fiber cloth in an adhesive base material for impregnation treatment, and impregnating the adhesive base material to prepare a support layer prepreg, wherein the single-layer thickness of the support layer prepreg is 0.1-2 mm; putting the wear-resistant fiber cloth into an adhesive base material for impregnation treatment, and impregnating the adhesive base material to prepare a wear-resistant layer prepreg, wherein the single-layer thickness of the wear-resistant layer prepreg is 0.1-2 mm;
3) laminating a plurality of layers of support layer prepregs and a plurality of layers of wear-resistant layer prepregs, wherein the plurality of layers of support layer prepregs are stacked and laminated to form a support layer, and the plurality of layers of wear-resistant layer prepregs are stacked and laminated to form a wear-resistant layer, so that a semi-finished friction plate with a lower layer as a support layer and an upper layer as a wear-resistant layer is formed;
4) and curing the semi-finished friction plate to form the wind power yaw device braking multilayer laminated friction plate.
Preferably, in the step 1), the volume proportion of the supporting fiber cloth in the friction plate is 20-80%.
Preferably, in the step 1), the wear-resistant fiber cloth accounts for 20-80% of the friction plate by volume.
Preferably, in the step 2), the impregnation treatment is performed at normal temperature; and after the dipping treatment, freezing and storing for later use.
Preferably, in the step 3), the multiple layers are stacked and laminated in sequence by using a plurality of layers of supporting layer prepregs and a plurality of layers of wear-resistant layer prepregs, and the lamination is performed once every time; or, after the multiple layers of laminated layers are completely stacked, the multiple layers of supporting layer prepregs and the multiple layers of wear-resistant layer prepregs are laminated at one time.
Preferably, in step 4), the curing process includes the steps of: the mixture is primarily cured through an oven and then is completely cured in a curing room.
The inorganic components are added and subjected to surface treatment, such as radiation treatment, coupling agent modification treatment or acid-base treatment.
An electric yaw brake multilayer laminated friction plate prepared by the molding process.
The invention has the following advantages: the problem of noise of the current friction plate is solved, and the health of workers of the fan and surrounding residents is guaranteed; the wear-resisting effect of the friction plate is improved, the abrasion and the scratch to the brake disc are avoided, and the maintenance cost is reduced; the friction plate has the advantages of small density, light weight, convenient carrying and convenient construction.
The present invention will be further described with reference to the following description and embodiments in conjunction with the accompanying drawings.
Drawings
FIG. 1 is a side view of a friction plate;
in the figure: a support layer 1; a wear resistant layer 2.
Detailed Description
The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings, and it is obvious that the described embodiments are only a part of the embodiments of the present invention, and not all of the embodiments. All other embodiments, which can be derived by a person skilled in the art from the embodiments given herein without making any creative effort, shall fall within the protection scope of the present invention.
It should be noted that if directional indications (such as … …, which is up, down, left, right, front, back, top, bottom, inner, outer, vertical, transverse, longitudinal, counterclockwise, clockwise, circumferential, radial, axial) are provided in the embodiments of the present invention, the directional indications are only used for explaining the relative position relationship, motion condition, etc. of the components at a specific posture (as shown in the attached drawings), and if the specific posture is changed, the directional indications are changed accordingly.
In addition, if there is a description relating to "first" or "second", etc. in the embodiments of the present invention, the description of "first" or "second", etc. is for descriptive purposes only and is not to be construed as indicating or implying relative importance or implicitly indicating the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one such feature. In addition, technical solutions between various embodiments may be combined with each other, but must be realized by a person skilled in the art, and when the technical solutions are contradictory or cannot be realized, such a combination should not be considered to exist, and is not within the protection scope of the present invention.
Example 1
Referring to fig. 1, the forming process of the multilayer laminated friction plate for braking of the wind power yaw device provided by the embodiment includes the following steps:
1) preparing a bonding base material, a supporting fiber cloth and a wear-resistant fiber cloth; the bonding base material is one or two of acrylate resin and epoxy resin, the supporting fiber cloth is carbon fiber cloth or glass fiber cloth, the volume proportion of the supporting fiber cloth in the friction plate is 20-80%, the wear-resistant fiber cloth is polyester cloth, ultra-high molecular weight polyethylene fiber cloth or aramid fiber cloth, and the volume proportion of the wear-resistant fiber cloth in the friction plate is 20-80%; the anti-friction and anti-wear material is added into the anti-wear fiber cloth, the anti-friction and anti-wear material is one or a mixture of more of graphite, graphene, molybdenum disulfide, PTFE, brass and fluoropolymer, the anti-friction and anti-wear material is powder with the particle size of 0.1-300 mu m or a fibrous material with the length-diameter ratio of more than 5, and the weight proportion of the anti-friction and anti-wear material in the anti-wear fiber cloth is 3-20%;
2) placing the support fiber cloth in an adhesive base material for impregnation treatment, and impregnating the adhesive base material to prepare a support layer prepreg, wherein the single-layer thickness of the support layer prepreg is 0.1-2 mm; putting the wear-resistant fiber cloth into an adhesive base material for impregnation treatment, and impregnating the adhesive base material to prepare a wear-resistant layer prepreg, wherein the single-layer thickness of the wear-resistant layer prepreg is 0.1-2 mm; the dipping treatment is carried out at normal temperature; after dipping treatment, freezing and storing for later use;
3) laminating a plurality of layers of support layer prepregs and a plurality of layers of wear-resistant layer prepregs, wherein the plurality of layers of support layer prepregs are stacked and laminated to form a support layer, and the plurality of layers of wear-resistant layer prepregs are stacked and laminated to form a wear-resistant layer, so that a semi-finished friction plate with a lower layer as a support layer and an upper layer as a wear-resistant layer is formed; the multi-layer lamination is formed by sequentially laminating a plurality of layers of supporting layer prepregs and a plurality of layers of wear-resistant layer prepregs, wherein the lamination is carried out once every time; or after the multiple layers are laminated by the multiple layers of supporting layer prepregs and the multiple layers of wear-resistant layer prepregs, the multiple layers are laminated at one time;
4) and curing the semi-finished friction plate, wherein the curing process comprises the following steps: the wind power yaw device brake multilayer laminated friction plate is formed by firstly carrying out primary curing through an oven and then putting the wind power yaw device into a curing room for complete curing. The lower layer of the multilayer laminated friction plate for braking the wind power yaw device is a supporting layer 1, and the upper layer is a wear-resistant layer 2.
The inorganic components are added and subjected to surface treatment, such as radiation treatment, coupling agent modification treatment or acid-base treatment.
The electric yaw device brake multilayer laminated friction plate prepared by the forming process.
Example 2
This embodiment is substantially the same as embodiment 1, except that:
1) preparing a bonding base material, a supporting fiber cloth and a wear-resistant fiber cloth; the bonding base material is one or a mixture of two materials of acrylate resin and epoxy resin, the supporting fiber cloth is carbon fiber cloth or glass fiber cloth, the volume proportion of the supporting fiber cloth in the friction plate is 80%, the wear-resistant fiber cloth is polyester cloth, ultra-high molecular weight polyethylene fiber cloth or aramid fiber cloth, and the volume proportion of the wear-resistant fiber cloth in the friction plate is 20%; the anti-friction and wear-resistant material is added into the wear-resistant fiber cloth, is one of graphite, graphene, molybdenum disulfide, PTFE, brass and fluoropolymer, is powder with the particle size of 0.1-300 mu m or is a fibrous material with the length-diameter ratio of more than 5, and accounts for 3% of the wear-resistant fiber cloth;
2) placing the support fiber cloth in an adhesive base material for impregnation treatment, and impregnating the adhesive base material to prepare a support layer prepreg, wherein the single-layer thickness of the support layer prepreg is 0.1-2 mm; putting the wear-resistant fiber cloth into an adhesive base material for impregnation treatment, and impregnating the adhesive base material to prepare a wear-resistant layer prepreg, wherein the single-layer thickness of the wear-resistant layer prepreg is 0.1-2 mm; the dipping treatment is carried out at normal temperature; after dipping treatment, freezing and storing for later use;
3) laminating a plurality of layers of support layer prepregs and a plurality of layers of wear-resistant layer prepregs, wherein the plurality of layers of support layer prepregs are stacked and laminated to form a support layer, and the plurality of layers of wear-resistant layer prepregs are stacked and laminated to form a wear-resistant layer, so that a semi-finished friction plate with a lower layer as a support layer and an upper layer as a wear-resistant layer is formed; the multi-layer lamination is formed by sequentially laminating a plurality of layers of supporting layer prepregs and a plurality of layers of wear-resistant layer prepregs, wherein the lamination is carried out once every time;
4) and curing the semi-finished friction plate, wherein the curing process comprises the following steps: the wind power yaw device brake multilayer laminated friction plate is formed by firstly carrying out primary curing through an oven and then putting the wind power yaw device into a curing room for complete curing. The lower layer of the multilayer laminated friction plate for braking the wind power yaw device is a supporting layer 1, and the upper layer is a wear-resistant layer 2.
Example 3
This embodiment is substantially the same as embodiment 1, except that: 1) preparing a bonding base material, a supporting fiber cloth and a wear-resistant fiber cloth; the bonding base material is one or a mixture of two materials of acrylate resin and epoxy resin, the supporting fiber cloth is carbon fiber cloth or glass fiber cloth, the volume proportion of the supporting fiber cloth in the friction plate is 20%, the wear-resistant fiber cloth is polyester cloth, ultra-high molecular weight polyethylene fiber cloth or aramid fiber cloth, and the volume proportion of the wear-resistant fiber cloth in the friction plate is 80%; the anti-friction and wear-resistant material is a mixture of graphite, graphene, molybdenum disulfide, PTFE (polytetrafluoroethylene), brass and a fluorine-containing polymer, is powder with the particle size of 0.1-300 mu m or is a fibrous material with the length-diameter ratio of more than 5, and is added into the wear-resistant fiber cloth, and the weight proportion of the anti-friction and wear-resistant material in the wear-resistant fiber cloth is 20%;
2) placing the support fiber cloth in an adhesive base material for impregnation treatment, and impregnating the adhesive base material to prepare a support layer prepreg, wherein the single-layer thickness of the support layer prepreg is 0.1-2 mm; putting the wear-resistant fiber cloth into an adhesive base material for impregnation treatment, and impregnating the adhesive base material to prepare a wear-resistant layer prepreg, wherein the single-layer thickness of the wear-resistant layer prepreg is 0.1-2 mm; the dipping treatment is carried out at normal temperature; after dipping treatment, freezing and storing for later use;
3) laminating a plurality of layers of support layer prepregs and a plurality of layers of wear-resistant layer prepregs, wherein the plurality of layers of support layer prepregs are stacked and laminated to form a support layer, and the plurality of layers of wear-resistant layer prepregs are stacked and laminated to form a wear-resistant layer, so that a semi-finished friction plate with a lower layer as a support layer and an upper layer as a wear-resistant layer is formed; after the multiple layers are laminated completely, the multiple layers of supporting layer prepregs and the multiple layers of wear-resistant layer prepregs are laminated at one time;
4) and curing the semi-finished friction plate, wherein the curing process comprises the following steps: the wind power yaw device brake multilayer laminated friction plate is formed by firstly carrying out primary curing through an oven and then putting the wind power yaw device into a curing room for complete curing. The lower layer of the multilayer laminated friction plate for braking the wind power yaw device is a supporting layer 1, and the upper layer is a wear-resistant layer 2.
Example 4
This embodiment is substantially the same as embodiment 1, except that: 1) preparing a bonding base material, a supporting fiber cloth and a wear-resistant fiber cloth; the adhesive base material is acrylate resin, the supporting fiber cloth is carbon fiber cloth or glass fiber cloth, the volume proportion of the supporting fiber cloth in the friction plate is 50%, the wear-resistant fiber cloth is polyester cloth, and the volume proportion of the wear-resistant fiber cloth in the friction plate is 50%; the anti-friction and anti-wear material is added into the wear-resistant fiber cloth, the anti-friction and anti-wear material is graphite, the graphite is powder with the particle size of 0.1-300 mu m, and the weight proportion of the anti-friction and anti-wear material in the wear-resistant fiber cloth is 20%;
2) placing the support fiber cloth in an adhesive base material for impregnation treatment, and impregnating the adhesive base material to prepare a support layer prepreg, wherein the single-layer thickness of the support layer prepreg is 0.1-2 mm; putting the wear-resistant fiber cloth into an adhesive base material for impregnation treatment, and impregnating the adhesive base material to prepare a wear-resistant layer prepreg, wherein the single-layer thickness of the wear-resistant layer prepreg is 0.1-2 mm; the dipping treatment is carried out at normal temperature; after dipping treatment, freezing and storing for later use;
3) laminating a plurality of layers of support layer prepregs and a plurality of layers of wear-resistant layer prepregs, wherein the plurality of layers of support layer prepregs are stacked and laminated to form a support layer, and the plurality of layers of wear-resistant layer prepregs are stacked and laminated to form a wear-resistant layer, so that a semi-finished friction plate with a lower layer as a support layer and an upper layer as a wear-resistant layer is formed; after the multiple layers are laminated completely, the multiple layers of supporting layer prepregs and the multiple layers of wear-resistant layer prepregs are laminated at one time;
4) and curing the semi-finished friction plate, wherein the curing process comprises the following steps: the wind power yaw device brake multilayer laminated friction plate is formed by firstly carrying out primary curing through an oven and then putting the wind power yaw device into a curing room for complete curing. The lower layer of the multilayer laminated friction plate for braking the wind power yaw device is a supporting layer 1, and the upper layer is a wear-resistant layer 2.
Example 5
This embodiment is substantially the same as embodiment 1, except that: 1) preparing a bonding base material, a supporting fiber cloth and a wear-resistant fiber cloth; the bonding base material is epoxy resin, the supporting fiber cloth is carbon fiber cloth or glass fiber cloth, the volume proportion of the supporting fiber cloth in the friction plate is 50%, the wear-resistant fiber cloth is ultrahigh molecular weight polyethylene fiber cloth, and the volume proportion of the wear-resistant fiber cloth in the friction plate is 50%; wherein, the wear-resistant fiber cloth is added with a friction-reducing wear-resistant material, the friction-reducing wear-resistant material is molybdenum disulfide, the molybdenum disulfide is powder with the particle size of 0.1-300 mu m or a fibrous material with the length-diameter ratio of more than 5, and the weight proportion of the friction-reducing wear-resistant material in the wear-resistant fiber cloth is 20%;
2) placing the support fiber cloth in an adhesive base material for impregnation treatment, and impregnating the adhesive base material to prepare a support layer prepreg, wherein the single-layer thickness of the support layer prepreg is 0.1-2 mm; putting the wear-resistant fiber cloth into an adhesive base material for impregnation treatment, and impregnating the adhesive base material to prepare a wear-resistant layer prepreg, wherein the single-layer thickness of the wear-resistant layer prepreg is 0.1-2 mm; the dipping treatment is carried out at normal temperature; after dipping treatment, freezing and storing for later use;
3) laminating a plurality of layers of support layer prepregs and a plurality of layers of wear-resistant layer prepregs, wherein the plurality of layers of support layer prepregs are stacked and laminated to form a support layer, and the plurality of layers of wear-resistant layer prepregs are stacked and laminated to form a wear-resistant layer, so that a semi-finished friction plate with a lower layer as a support layer and an upper layer as a wear-resistant layer is formed; after the multiple layers are laminated completely, the multiple layers of supporting layer prepregs and the multiple layers of wear-resistant layer prepregs are laminated at one time;
4) and curing the semi-finished friction plate, wherein the curing process comprises the following steps: the wind power yaw device brake multilayer laminated friction plate is formed by firstly carrying out primary curing through an oven and then putting the wind power yaw device into a curing room for complete curing. The lower layer of the multilayer laminated friction plate for braking the wind power yaw device is a supporting layer 1, and the upper layer is a wear-resistant layer 2.
Through tests, the forming process and the product of the multilayer laminated friction plate for braking of the wind power yaw device can well solve the noise problem of the current friction plate and ensure the health of workers of a fan and surrounding residents; the wear-resisting effect of the friction plate is improved, the abrasion and the scratch to the brake disc are avoided, and the maintenance cost is reduced; the friction plate has the advantages of small density, light weight, convenient carrying and convenient construction.
The invention is not limited to the above embodiment, and other wind power yaw device brake multilayer laminated friction plate forming processes and products obtained by adopting the same or similar technical characteristics as the above embodiment of the invention are within the protection scope of the invention.

Claims (7)

1. A forming process of a multilayer laminated friction plate for braking of a wind power yaw device is characterized by comprising the following steps:
preparing a bonding base material, a supporting fiber cloth and a wear-resistant fiber cloth; the bonding base material is one or a mixture of two materials of acrylate resin and epoxy resin; the supporting fiber cloth is carbon fiber cloth or glass fiber cloth; the wear-resistant fiber cloth is polyester cloth, ultra-high molecular weight polyethylene fiber cloth or aramid fiber cloth; the wear-resistant fiber cloth is added with a friction-reducing wear-resistant material, the friction-reducing wear-resistant material is one or a mixture of more of graphite, graphene, molybdenum disulfide, PTFE, brass and fluoropolymer, and is a powder material with the particle size of 0.1-300 mu m or a fibrous material with the length-diameter ratio of more than 5; the weight proportion of the antifriction and wear-resistant material in the wear-resistant fiber cloth is 3-20%;
placing the support fiber cloth in an adhesive base material for impregnation treatment, and impregnating the adhesive base material to prepare a support layer prepreg, wherein the single-layer thickness of the support layer prepreg is 0.1-2 mm; putting the wear-resistant fiber cloth into an adhesive base material for impregnation treatment, and impregnating the adhesive base material to prepare a wear-resistant layer prepreg, wherein the single-layer thickness of the wear-resistant layer prepreg is 0.1-2 mm;
laminating a plurality of layers of support layer prepregs and a plurality of layers of wear-resistant layer prepregs, wherein the plurality of layers of support layer prepregs are stacked and laminated to form a support layer, and the plurality of layers of wear-resistant layer prepregs are stacked and laminated to form a wear-resistant layer, so that a semi-finished friction plate with a lower layer as a support layer and an upper layer as a wear-resistant layer is formed;
and curing the semi-finished friction plate to form the wind power yaw device braking multilayer laminated friction plate.
2. The forming process of the multilayer laminated friction plate for the braking of the wind power yaw device according to claim 1, wherein in the step 1), the supporting fiber cloth accounts for 20-80% of the friction plate by volume.
3. The forming process of the multilayer laminated friction plate for the braking of the wind power yaw device according to claim 1, wherein in the step 1), the wear-resistant fiber cloth accounts for 20-80% of the friction plate by volume.
4. The forming process of the multilayer laminated friction plate for the braking of the wind power yaw device according to claim 1, wherein in the step 2), the dipping treatment is performed at normal temperature; and after the dipping treatment, freezing and storing for later use.
5. The forming process of the multilayer laminated friction plate for the braking of the wind power yaw device according to claim 1, wherein in the step 3), the multilayer lamination is formed by sequentially laminating a plurality of layers of supporting layer prepregs and a plurality of layers of wear layer prepregs, and the lamination is performed once every time the layers are laminated; or, after the multiple layers of laminated layers are completely stacked, the multiple layers of supporting layer prepregs and the multiple layers of wear-resistant layer prepregs are laminated at one time.
6. The process for forming a multilayer laminated friction plate for a wind power yaw brake according to claim 1, wherein in the step 4), the curing process comprises the following steps: the mixture is primarily cured through an oven and then is completely cured in a curing room.
7. An electric yaw brake multi-layer laminate friction plate prepared by the molding process of any one of claims 1 to 6.
CN201910940539.8A 2019-09-30 2019-09-30 Wind power yaw device brake multilayer laminated friction plate forming process and product Pending CN110762141A (en)

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CN201910940539.8A CN110762141A (en) 2019-09-30 2019-09-30 Wind power yaw device brake multilayer laminated friction plate forming process and product

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CN114060440A (en) * 2020-07-30 2022-02-18 广东新志密封技术有限公司 Wear-resistant composite material, friction plate, wind power yaw brake block and wind power yaw brake system

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CN102705410A (en) * 2012-06-15 2012-10-03 株洲时代新材料科技股份有限公司 Composite friction plate and preparation method thereof
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CN1960835A (en) * 2004-05-03 2007-05-09 3M创新有限公司 Backup back plane for microfinishing and methods
CN101870438A (en) * 2010-06-21 2010-10-27 临安华龙摩擦材料有限公司 Friction brake disk of double-speed electric-block and preparation method thereof
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CN114060440A (en) * 2020-07-30 2022-02-18 广东新志密封技术有限公司 Wear-resistant composite material, friction plate, wind power yaw brake block and wind power yaw brake system

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Application publication date: 20200207