WO2017016420A1 - 一种模组化多贯流风轮风机 - Google Patents

一种模组化多贯流风轮风机 Download PDF

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Publication number
WO2017016420A1
WO2017016420A1 PCT/CN2016/090614 CN2016090614W WO2017016420A1 WO 2017016420 A1 WO2017016420 A1 WO 2017016420A1 CN 2016090614 W CN2016090614 W CN 2016090614W WO 2017016420 A1 WO2017016420 A1 WO 2017016420A1
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Prior art keywords
volute
turbine drive
turbine
opened
wind wheel
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PCT/CN2016/090614
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English (en)
French (fr)
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区述培
刘华强
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区述培
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Publication of WO2017016420A1 publication Critical patent/WO2017016420A1/zh

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03DWIND MOTORS
    • F03D3/00Wind motors with rotation axis substantially perpendicular to the air flow entering the rotor 
    • F03D3/02Wind motors with rotation axis substantially perpendicular to the air flow entering the rotor  having a plurality of rotors
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03DWIND MOTORS
    • F03D3/00Wind motors with rotation axis substantially perpendicular to the air flow entering the rotor 
    • F03D3/04Wind motors with rotation axis substantially perpendicular to the air flow entering the rotor  having stationary wind-guiding means, e.g. with shrouds or channels
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/70Wind energy
    • Y02E10/74Wind turbines with rotation axis perpendicular to the wind direction

Definitions

  • the utility model relates to the technical field of ventilation equipment, in particular to a modular multi-flow wind turbine.
  • the double-flow wind turbine is popular among manufacturers because of its double air volume and diverse air outlets.
  • Patent No. 201420617250.5 discloses a smooth running double-flow fan.
  • the double-flow fan is installed horizontally horizontally, and the core part has two cross-flow wind wheels, and two motors are installed together on the side plate. And located in the same volute, the motor is installed on the same side, and the air passage composed of the volute and the vortex tongue is bilaterally symmetrical, so the wind deflector of the two wind wheels must be the opposite structure, and the motor is turned opposite, so that the actual production On the top are two sets of wind turbine systems, increasing production costs and reducing production efficiency.
  • the utility model aims to solve the above-mentioned deficiencies of the prior art, and provides a modular multi-flow wind turbine fan with simple structure and reasonable structure, and adopts a modular design to unitize the cross-flow fan module. Easy to disassemble and install.
  • a modular multi-flow wind turbine fan is characterized in that it comprises a fan bracket, and at least two mounting ports are opened on the fan bracket, and each of the mounting ports is provided with a wind wheel module unit, and each wind wheel module unit is composed of
  • the volute casing and the turbine transmission component are assembled, the turbine transmission component is installed in the volute casing, and the ventilating shell is provided with an air inlet and an air outlet, and the air outlet is correspondingly fitted with the installation port, and the two turbine transmission components in the adjacent two volutes are In the same direction or reverse installation, each turbine transmission component is composed of a wind wheel and a motor.
  • the modular design realizes that the air volume is multiplied, the air is concentrated or concentrated, and the structure is simple and easy to produce.
  • the two turbine drive assemblies in the adjacent two scrolls are installed in the same direction, and the motors installed in the same direction as the two turbine drive assemblies are disposed at the bottom of the scroll shell, drivingly connected with the bottom end of the wind wheel, and the air inlet is opened at The left side of the center dividing line of each volute.
  • the two turbine drive assemblies in the adjacent two scrolls are installed in the same direction, and the motors installed in the same direction as the two turbine drive assemblies are all disposed on the top of the scroll shell, drivingly connected with the top end of the wind wheel, and the air inlet opening is opened in each The right side of the center of the volute is divided.
  • the two turbine drive assemblies in the adjacent two volutes are reverse mounted, and the reverse mounted motor of the left side turbine drive assembly is disposed at the bottom of the volute, and is drivingly coupled to the bottom end of the wind wheel, and the volute
  • the air inlet is opened on the left side of the center dividing line of the volute;
  • the motor of the right side turbine drive assembly is disposed at the top of the volute, and is drivingly connected to the top end of the wind wheel, and
  • the air inlet of the scroll is opened on the right side of the center dividing line of the scroll;
  • the air inlets on the two scrolls are mirror-symmetrical with the middle dividing line of the fan bracket.
  • Two turbine drive assemblies in adjacent volutes are reverse mounted, and the motor mounted in the reverse direction is a motor of the left side turbine drive assembly disposed at the top of the volute, drivingly coupled to the top end of the rotor, and the volute
  • the air inlet is opened on the right side of the center dividing line of the volute;
  • the motor of the right side turbine drive assembly is disposed at the top bottom of the volute, and is drivingly connected with the bottom end of the wind wheel, and the air inlet of the volute is opened at the The left side of the center line of the volute;
  • the air inlets on the two volutes are mirror symmetrical with the middle dividing line of the fan bracket.
  • the mounting hole is laterally and longitudinally symmetric, and the corresponding wind wheel module unit is also symmetrically mounted on the mounting hole in a horizontally and longitudinally corresponding manner, and the volute of the wind wheel module unit is provided with a fastening hole matched with the mounting hole to reduce the fan.
  • the production cost of the bracket mold increases the general efficiency of the accessories and reduces the production complexity.
  • the modular multi-flow wind turbine fan of the utility model has the advantages of simple, compact and reasonable structure, realizes air outlet or concentration, or dispersion, and the air volume is multiplied, and adopts modular design to effectively reduce manufacturing cost and improve production. Efficiency, unitizing the cross-flow fan module, easy to disassemble and install, making the fan easier to expand.
  • FIG. 1 is a structural view of a fan bracket of the present invention.
  • FIG. 2 is a structural view of a fan module unit of the present invention.
  • Figure 3 is a schematic view of Embodiment 1 of the present invention.
  • Embodiment 2 of the present invention is a schematic view of Embodiment 2 of the present invention.
  • Figure 5 is a schematic view of Embodiment 3 of the present invention.
  • Figure 6 is a schematic view of Embodiment 4 of the present invention.
  • a modular multi-flow wind turbine fan is characterized in that it comprises a fan bracket 1 and at least two mounting ports 2 are opened on the fan bracket 1 for each installation.
  • a wind wheel module unit 3 is mounted on the port 2
  • each wind wheel module unit 3 is composed of a scroll 4 and a turbine drive assembly 5, and the turbine drive assembly 5 is mounted in the scroll 4, and the scroll 4 is opened.
  • the tuyere 6 and the air outlet 7, the air outlet 7 is correspondingly fitted with the mounting port 2, and the two turbine transmission components 501, 502 in the adjacent two scrolls 401, 402 are installed in the same direction or in opposite directions, and each of the turbine transmission components 5 It consists of a wind wheel 8 and a motor 9.
  • the modular design realizes that the air volume is multiplied, the air is concentrated or concentrated, and the structure is simple and easy to produce.
  • the two turbine drive assemblies 501, 502 in the adjacent two scrolls 401, 402 are installed in the same direction, and the same direction is installed as two turbine drive assemblies 501,
  • the motors 9 of 502 are disposed at the bottom of the two scrolls 401, 402, and are drivingly coupled to the bottom end of the wind wheel 8, and the air inlets 6 are opened to the left of the center dividing line of each of the scrolls 4.
  • the present embodiment is similar to the first embodiment except that the two turbine drive assemblies 501, 502 in the adjacent two scrolls 401, 402 are installed in the same direction.
  • the motors 9 mounted in the same direction as the two turbine drive assemblies 501, 502 are both disposed at the top of the volutes 401, 402, drivingly coupled to the top end of the rotor 8, and the air inlets 6 are formed in the center dividing line of each of the scrolls 4.
  • the present embodiment is similar to the first embodiment except that the two turbine drive assemblies 501, 502 in the adjacent two scrolls 401, 402 are reverse mounted.
  • the motor 9 reversely mounted to the left side turbine drive assembly 501 is disposed at the bottom of the volute 401, and is drivingly coupled to the bottom end of the wind wheel 8, and the air inlet 6 of the scroll 401 is opened at the center of the volute 401.
  • the left side of the line; the motor of the turbine drive assembly 502 on the right side is disposed at the top of the volute 402, and is drivingly coupled to the top end of the wind wheel 8, and the air inlet 6 of the volute 402 is opened at the center of the volute 402.
  • the air inlets 6 on the two scrolls 401, 402 are mirror-symmetrical with the middle dividing line of the fan bracket 1.
  • the present embodiment is similar to the third embodiment except that the two turbine drive assemblies 501, 502 in the adjacent two scrolls 401, 402 are reverse mounted.
  • the motor 9 reversely mounted to the left side turbine drive assembly 501 is disposed at the top of the volute 401, is drivingly coupled to the top end of the wind wheel 8, and the air inlet 6 of the volute 401 is opened at the center separation line of the volute 401.
  • the motor 9 of the turbine drive assembly 502 on the right side is disposed at the top and bottom of the volute 402, and is drivingly coupled to the bottom end of the wind wheel 8, and the air inlet 6 of the volute 402 is opened at the volute 402.
  • the left side of the center dividing line; the air inlets 6 on the two scrolls 401, 402 are mirror-symmetrical with the intermediate dividing line of the fan bracket 1.
  • the fan bracket 1 is provided with a mounting hole 10, and the mounting hole 10 is laterally and longitudinally symmetric.
  • the volute 4 of the wind wheel module unit 3 is provided with a fastening hole 11 matched with the mounting hole 10 to reduce the production of the mold of the fan bracket 1 Cost, improve the general efficiency of accessories, and reduce production complexity.

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  • Engineering & Computer Science (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Sustainable Development (AREA)
  • Sustainable Energy (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Structures Of Non-Positive Displacement Pumps (AREA)

Abstract

一种模组化多贯流风轮风机,包括风机支架(1),风机支架(1)上开设有至少两个安装口(2),每个安装口(2)上安装有风轮模组单元(3),每个风轮模组单元(3)由涡壳(4)和涡轮传动组件(5)组成,涡轮传动组件(5)安装在涡壳(4)内,且涡壳(4)上开设有进风口(6)和出风口(7),出风口(7)与安装口(2)对应安装配合,相邻两涡壳(4)内的两涡轮传动组件(5)为同向安装或反向安装,每个涡轮传动组件由风轮(8)和电机(9)组成,采用模组化设计实现风量成倍增大,出风或集中或分散,并且结构简单,易于生产。

Description

一种模组化多贯流风轮风机 技术领域
本实用新型涉及通风设备技术领域,尤其是一种模组化多贯流风轮风机。
背景技术
双贯流风轮风机因其风量倍增、出风口多样而受生产企业的欢迎。
专利号为201420617250.5公开了一种运行平稳的双贯流风机,根据专利文件描述,其双贯流风机横向水平安装,核心部分具有两个贯流风轮,两个电机,共同安装于侧板上,且位于同一个涡壳内,电机同侧安装,而涡壳与涡舌组成的风道是左右对称,所以其两个风轮的导风片必为相反结构,电机转向相反,这样其生产实际上就是两套风轮系统,增加生产成本,降低生产的效率。
实用新型内容
本实用新型的目的在于解决上述现有技术的不足,而提供一种结构简单、合理的一种模组化多贯流风轮风机,采用模组化的设计,将贯流风机模组单元化,能够易于拆卸和安装。
本实用新型解决其技术问题所采用的技术方案是:
一种模组化多贯流风轮风机,其特征是,包括风机支架,风机支架上开设有至少两个安装口,每个安装口上安装有风轮模组单元,每个风轮模组单元由涡壳和涡轮传动组件组成,涡轮传动组件安装在涡壳内,且涡壳上开设有进风口和出风口,出风口与安装口对应安装配合,相邻两涡壳内的两涡轮传动组件为同向安装或反向安装,每个涡轮传动组件由风轮和电机组成,,采用模组化设计实现风量成倍增大,出风或集中或分散,并且结构简单,易于生产。
相邻两涡壳内的两涡轮传动组件为同向安装,所述同向安装为两涡轮传动组件的电机均设置在涡壳的底部,与风轮的底端驱动连接,且进风口开设在每个涡壳的中心分割线的左侧。
相邻两涡壳内的两涡轮传动组件为同向安装,所述同向安装为两涡轮传动组件的电机均设置在涡壳的顶部,与风轮的顶端驱动连接,且进风口开设在每个涡壳的中心分割线的右侧。
相邻两涡壳内的两涡轮传动组件为反向安装,所述反向安装为左侧的涡轮传动组件的电机设置在涡壳的底部,与风轮的底端驱动连接,且该涡壳的进风口开设在该涡壳的中心分隔线的左侧;右侧的涡轮传动组件的电机设置在涡壳的顶部,与风轮的顶端驱动连接,且 该涡壳的进风口开设在该涡壳的中心分隔线的右侧;使两涡壳上的进风口以风机支架的中间分割线构成镜像对称。
相邻两涡壳内的两涡轮传动组件为反向安装,所述反向安装为左侧的涡轮传动组件的电机设置在涡壳的顶部,与风轮的顶端驱动连接,且该涡壳的进风口开设在该涡壳的中心分隔线的右侧;右侧的涡轮传动组件的电机设置在涡壳的顶底部,与风轮的底端驱动连接,且该涡壳的进风口开设在该涡壳的中心分隔线的左侧;使两涡壳上的进风口以风机支架的中间分割线构成镜像对称。
所述安装孔为横向和纵向对称,对应风轮模组单元也相应地横向和纵向对称安装在安装孔上,风轮模组单元的涡壳设有与安装孔配合的紧固孔,减少风机支架模具的生产成本,提高配件通用的效率,降低生产复杂性。
本实用新型的有益效果是:
本实用新型的一种模组化多贯流风轮风机,其结构简单紧凑、合理,实现出风口或集中,或分散,风量成倍增加,采用模组化的设计,有效降低制造成本,提高生产效率,将贯流风机模组单元化,能够易于拆卸和安装,使风机更容易扩展使用。
附图说明
图1是本实用新型的风机支架结构图。
图2是本实用新型图的风机模组单元结构图。
图3是本实用新型的实施例1示意图。
图4是本实用新型的实施例2示意图。
图5是本实用新型的实施例3示意图。
图6是本实用新型的实施例4示意图。
具体实施方式
下面结合附图和实施例对本实用新型进一步说明。
第一实施例:如图1至图2所示,一种模组化多贯流风轮风机,其特征是,包括风机支架1,风机支架1上开设有至少两个安装口2,每个安装口2上安装有风轮模组单元3,每个风轮模组单元3由涡壳4和涡轮传动组件5组成,涡轮传动组件5安装在涡壳4内,且涡壳4上开设有进风口6和出风口7,出风口7与安装口2对应安装配合,相邻两涡壳401、402内的两涡轮传动组件501、502为同向安装或反向安装,每个涡轮传动组件5由风轮8和电机9组成,采用模组化设计实现风量成倍增大,出风或集中或分散,并且结构简单,易于生产。
作为本实施例更具体的实施方案:如图3所示,相邻两涡壳401、402内的两涡轮传动组件501、502为同向安装,所述同向安装为两涡轮传动组件501、502的电机9均设置在两涡壳401、402的底部,与风轮8的底端驱动连接,且进风口6开设在每个涡壳4的中心分割线的左侧。
第二实施例:如图4所示,本实施例与第一实施例相似,不同之处在于,相邻两涡壳401、402内的两涡轮传动组件501、502为同向安装,所述同向安装为两涡轮传动组件501、502的电机9均设置在涡壳401、402的顶部,与风轮8的顶端驱动连接,且进风口6开设在每个涡壳4的中心分割线的右侧。
第三实施例:如图5所示,本实施例与第一实施例相似,不同之处在于,相邻两涡壳401、402内的两涡轮传动组件501、502为反向安装,所述反向安装为左侧的涡轮传动组件501的电机9设置在涡壳401的底部,与风轮8的底端驱动连接,且该涡壳401的进风口6开设在该涡壳401的中心分隔线的左侧;右侧的涡轮传动组件502的电机设置在涡壳402的顶部,与风轮8的顶端驱动连接,且该涡壳402的进风口6开设在该涡壳402的中心分隔线的右侧;使两涡壳401、402上的进风口6以风机支架1的中间分割线构成镜像对称。
第四实施例:如图6所示,本实施例与第三实施例相似,不同之处在于,相邻两涡壳401、402内的两涡轮传动组件501、502为反向安装,所述反向安装为左侧的涡轮传动组件501的电机9设置在涡壳401的顶部,与风轮8的顶端驱动连接,且该涡壳401的进风口6开设在该涡壳401的中心分隔线的右侧;右侧的涡轮传动组件502的电机9设置在该涡壳402的顶底部,与风轮8的底端驱动连接,且该涡壳402的进风口6开设在该涡壳402的中心分隔线的左侧;使两涡壳401、402上的进风口6以风机支架1的中间分割线构成镜像对称。
所述风机支架1设有安装孔10,安装孔10为横向和纵向对称,风轮模组单元3的涡壳4设有与安装孔10配合的紧固孔11,减少风机支架1模具的生产成本,提高配件通用的效率,降低生产复杂性。
以上所述的具体实施例,仅为本实用新型较佳的实施例而已,举凡依本实用新型申请专利范围所做的等同设计,均应为本实用新型的技术所涵盖。

Claims (6)

  1. 一种模组化多贯流风轮风机,其特征是,包括风机支架(1),风机支架(1)上开设有至少两个安装口(2),每个安装口(2)上安装有风轮模组单元(3),每个风轮模组单元(3)由涡壳(4)和涡轮传动组件(5)组成,涡轮传动组件(5)安装在涡壳(4)内,且涡壳(4)上开设有进风口(6)和出风口(7),出风口(7)与安装口(2)对应安装配合,相邻两涡壳(401)、(402)内的两涡轮传动组件(501)、(502)为同向安装或反向安装,每个涡轮传动组件(5)由风轮(8)和电机(9)组成。
  2. 根据权利要求1所述的模组化多贯流风轮风机,其特征在于:相邻两涡壳(401)、(402)内的两涡轮传动组件(501)、(502)为同向安装,所述同向安装为两涡轮传动组件(501)、(502)的电机(9)均设置在两涡壳(401)、(402)的底部,与风轮(8)的底端驱动连接,且进风口(6)开设在每个涡壳(4)的中心分割线的左侧。
  3. 根据权利要求1所述的模组化多贯流风轮风机,其特征在于:相邻两涡壳(401)、(402)内的两涡轮传动组件(501)、(502)为同向安装,所述同向安装为两涡轮传动组件(501)、(502)的电机(9)均设置在涡壳(401)、(402)的顶部,与风轮(8)的顶端驱动连接,且进风口(6)开设在每个涡壳(4)的中心分割线的右侧。
  4. 根据权利要求1所述的模组化多贯流风轮风机,其特征在于:相邻两涡壳(401)、(402)内的两涡轮传动组件(501)、(502)为反向安装,所述反向安装为左侧的涡轮传动组件(501)的电机(9)设置在涡壳(401)的底部,与风轮(8)的底端驱动连接,且该涡壳(401)的进风口(6)开设在该涡壳(401)的中心分隔线的左侧;右侧的涡轮传动组件(502)的电机设置在涡壳(402)的顶部,与风轮(8)的顶端驱动连接,且该涡壳(402)的进风口(6)开设在该涡壳(402)的中心分隔线的右侧;使两涡壳(401)、(402)上的进风口(6)以风机支架(1)的中间分割线构成镜像对称。
  5. 根据权利要求1所述的模组化多贯流风轮风机,其特征在于:相邻两涡壳(401)、(402)内的两涡轮传动组件(501)、(502)为反向安装,所述反向安装为左侧的涡轮传动组件(501)的电机(9)设置在涡壳(401)的顶部,与风轮(8)的顶端驱动连接,且该涡壳(401)的进风口(6)开设在该涡壳(401)的中心分隔线的右侧;右侧的涡轮传动组件(502)的电机(9)设置在该涡壳(402)的顶底部,与风轮(8)的底端驱动连接,且该涡壳(402)的进风口(6)开设在该涡壳(402)的中心分隔线的左侧;使两涡壳(401)、(402)上的进风口(6)以风机支架(1)的中间分割线构成镜像对称。
  6. 根据权利要求1所述的模组化多贯流风轮风机,其特征在于:所述风机支架(1)设有安装孔(10),安装孔(10)为横向和纵向对称,风轮模组单元(3)的涡壳(4)设有与安装 孔(10)配合的紧固孔(11)。
PCT/CN2016/090614 2015-07-30 2016-07-20 一种模组化多贯流风轮风机 WO2017016420A1 (zh)

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CN204877999U (zh) * 2015-07-30 2015-12-16 区述培 一种模组化多贯流风轮风机
CN107740749A (zh) * 2017-11-20 2018-02-27 唐克碧 一种三维立体聚能风道垂直轴大功率高效风力发电系统

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CN101649815A (zh) * 2009-09-09 2010-02-17 刘百清 模块化风力发电装置
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CN101649815A (zh) * 2009-09-09 2010-02-17 刘百清 模块化风力发电装置
KR100946198B1 (ko) * 2009-10-09 2010-03-09 태창엔이티 주식회사 모듈형 멀티 풍력발전기 시스템
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