WO2018032547A1 - 一种液压驱动飞轮储能的破碎锤 - Google Patents

一种液压驱动飞轮储能的破碎锤 Download PDF

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Publication number
WO2018032547A1
WO2018032547A1 PCT/CN2016/097922 CN2016097922W WO2018032547A1 WO 2018032547 A1 WO2018032547 A1 WO 2018032547A1 CN 2016097922 W CN2016097922 W CN 2016097922W WO 2018032547 A1 WO2018032547 A1 WO 2018032547A1
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Prior art keywords
flywheel
drill rod
impact
support
rod
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PCT/CN2016/097922
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English (en)
French (fr)
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顾祥茂
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顾祥茂
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Publication of WO2018032547A1 publication Critical patent/WO2018032547A1/zh

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    • EFIXED CONSTRUCTIONS
    • E01CONSTRUCTION OF ROADS, RAILWAYS, OR BRIDGES
    • E01CCONSTRUCTION OF, OR SURFACES FOR, ROADS, SPORTS GROUNDS, OR THE LIKE; MACHINES OR AUXILIARY TOOLS FOR CONSTRUCTION OR REPAIR
    • E01C23/00Auxiliary devices or arrangements for constructing, repairing, reconditioning, or taking-up road or like surfaces
    • E01C23/06Devices or arrangements for working the finished surface; Devices for repairing or reconditioning the surface of damaged paving; Recycling in place or on the road
    • E01C23/12Devices or arrangements for working the finished surface; Devices for repairing or reconditioning the surface of damaged paving; Recycling in place or on the road for taking-up, tearing-up, or full-depth breaking-up paving, e.g. sett extractor
    • EFIXED CONSTRUCTIONS
    • E01CONSTRUCTION OF ROADS, RAILWAYS, OR BRIDGES
    • E01CCONSTRUCTION OF, OR SURFACES FOR, ROADS, SPORTS GROUNDS, OR THE LIKE; MACHINES OR AUXILIARY TOOLS FOR CONSTRUCTION OR REPAIR
    • E01C23/00Auxiliary devices or arrangements for constructing, repairing, reconditioning, or taking-up road or like surfaces
    • E01C23/06Devices or arrangements for working the finished surface; Devices for repairing or reconditioning the surface of damaged paving; Recycling in place or on the road
    • E01C23/12Devices or arrangements for working the finished surface; Devices for repairing or reconditioning the surface of damaged paving; Recycling in place or on the road for taking-up, tearing-up, or full-depth breaking-up paving, e.g. sett extractor
    • E01C23/122Devices or arrangements for working the finished surface; Devices for repairing or reconditioning the surface of damaged paving; Recycling in place or on the road for taking-up, tearing-up, or full-depth breaking-up paving, e.g. sett extractor with power-driven tools, e.g. oscillated hammer apparatus
    • E01C23/124Devices or arrangements for working the finished surface; Devices for repairing or reconditioning the surface of damaged paving; Recycling in place or on the road for taking-up, tearing-up, or full-depth breaking-up paving, e.g. sett extractor with power-driven tools, e.g. oscillated hammer apparatus moved rectilinearly, e.g. road-breaker apparatus with reciprocating tools, with drop-hammers
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B02CRUSHING, PULVERISING, OR DISINTEGRATING; PREPARATORY TREATMENT OF GRAIN FOR MILLING
    • B02CCRUSHING, PULVERISING, OR DISINTEGRATING IN GENERAL; MILLING GRAIN
    • B02C1/00Crushing or disintegrating by reciprocating members
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02FDREDGING; SOIL-SHIFTING
    • E02F3/00Dredgers; Soil-shifting machines
    • E02F3/04Dredgers; Soil-shifting machines mechanically-driven
    • E02F3/96Dredgers; Soil-shifting machines mechanically-driven with arrangements for alternate or simultaneous use of different digging elements
    • E02F3/966Dredgers; Soil-shifting machines mechanically-driven with arrangements for alternate or simultaneous use of different digging elements of hammer-type tools
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02FDREDGING; SOIL-SHIFTING
    • E02F5/00Dredgers or soil-shifting machines for special purposes
    • E02F5/30Auxiliary apparatus, e.g. for thawing, cracking, blowing-up, or other preparatory treatment of the soil

Definitions

  • the invention belongs to the technical field of breakers, and in particular relates to a breaker hammer for storing energy of a hydraulically driven flywheel.
  • the drill rod of the breaker uses hydraulic drive, nitrogen drive and other technologies.
  • it is required to hit a hard object, it is required to have a higher hydraulic oil pressure and a higher pressure of nitrogen, which will undoubtedly increase the cost and reduce the hammer.
  • the service life of the breaker is required to have a higher hydraulic oil pressure and a higher pressure of nitrogen, which will undoubtedly increase the cost and reduce the hammer.
  • the invention designs a breaker for storing energy of a hydraulically driven flywheel to solve the above problems.
  • the present invention discloses a hydraulic hammer for energy storage of a flywheel, which is realized by the following technical solutions.
  • a hydraulically driven flywheel energy storage breaker characterized in that it comprises a flywheel, a hydraulic motor, a hydraulic inlet and outlet, a first support, a second support, a first side plate, a side plate support, a second side plate, and an impact spring , hydraulic push rod, drill rod sleeve, drill rod, flywheel impact block, flywheel shaft, impact rod, impact hammer, first spring support, second spring support, push rod support, drill rod block, drill rod reciprocating hole, impact Hammer reciprocating hole, wherein a flywheel impact block is mounted on the flywheel, two hydraulic inlets and outlets are mounted on the hydraulic motor, and a hydraulic motor, a first support, a flywheel, a second side plate, and a hydraulic motor shaft and a flywheel shaft are sequentially mounted on the flywheel shaft Fixed connection, the flywheel is fixed on the flywheel shaft; the first support is mounted on the second support inner edge surface, the second support is mounted on the first side plate, and seven are installed between the first side plate and the second side plate Side plate support
  • the hydraulic motor can drive the flywheel to rotate.
  • the flywheel impact block rotates around the flywheel shaft and reaches a certain speed.
  • the hydraulic push rod is extended under the action of the hydraulic oil pressure.
  • the second spring support mounted on the impact hammer slides upward in the reciprocating hole of the impact hammer, and drives the impact hammer and the impact rod to move upward, so that the flywheel impact block can strike the impact rod; the impact rod is subjected to the force to drive the impact hammer to move downward.
  • the second spring support slides downward in the reciprocating hole of the impact hammer, the impact spring is extended, and the hydraulic push rod is compressed.
  • the hydraulic oil in the hydraulic push rod has no pressure, is in a free flow state, and the hydraulic pressure in the hydraulic push rod
  • the oil does not interfere with the compression process of the hydraulic push rod; when the impact hammer hits the drill rod, the drill rod moves downward to hit the object; after the drill rod hits the object, it is mounted on the drill rod due to the upward movement of the reaction force of the object.
  • the drill rod block slides upward in the reciprocating hole of the drill rod; the impact hammer is moved upward by the reciprocating pulling force of the spring, and the rotating flywheel impact block will hit the impact rod again, so that the drill rod can continuously strike the object.
  • the first side plate and the second side plate are respectively provided with two mounting holes.
  • a wear layer is installed between the drill rod and the drill rod sleeve.
  • the flywheel impact block and the impact rod collision surface are provided with wear-resistant sheets.
  • the drill head of the above drill rod is pointed.
  • the flywheel of the invention is mounted on the flywheel shaft, and the flywheel impact block is mounted on the flywheel.
  • the flywheel impact block will continuously hit the impact rod mounted on the impact hammer, thereby making the impact hammer
  • the downward movement strikes the drill rod; the invention designs the impact mechanism of the breaker, and uses the flywheel on the impact structure to drive the heavy-weight flywheel with a small hydraulic oil pressure, and utilizes a huge inertial force. Increase the impact strength and have a strong practical effect.
  • Figure 1 is a schematic view of the overall component distribution.
  • Figure 2 is a schematic view of the internal structure of the breaker.
  • Figure 3 is a side view of the internal structure of the breaker.
  • Figure 4 is a perspective view of the drill sleeve.
  • Figure 5 is a schematic view showing the installation of a flywheel and a hydraulic motor.
  • Figure 6 is a schematic view showing the side panel, the first support, and the second support.
  • Figure 7 is a schematic view showing the installation of the impact hammer and the impact rod.
  • Figure 8 is a schematic view showing the installation of the drill rod and the drill rod block.
  • FIG. 1 and 3 it comprises a flywheel 1, a hydraulic motor 2, a hydraulic inlet and outlet 3, a first support 4, a second support 5, a first side panel 6, a side panel support 7, and a second side panel 8.
  • Impact spring 10 hydraulic push rod 11, drill rod sleeve 12, drill rod 13, flywheel impact block 14, flywheel shaft 15, impact rod 16, impact hammer 17, first spring support 18, second spring support 19, push rod The support 20, the drill rod block 21, the drill rod reciprocating hole 22, and the impact hammer reciprocating hole 23, wherein as shown in FIG. 5, the flywheel 1 is mounted with a flywheel impact block 14, and the hydraulic motor 2 is mounted with two hydraulic inlets and outlets 3 As shown in FIG. 1 and FIG.
  • the flywheel shaft 15 is sequentially mounted with a hydraulic motor 2, a first support 4, a flywheel 1, a second side plate 8, and the hydraulic motor 2 shaft is fixedly connected with the flywheel shaft 15, and the flywheel 1 is fixed to the flywheel.
  • the first support 4 is mounted on the inner peripheral surface of the second support 5, and the second support 5 is mounted on the first side plate 6, at the first side plate 6 and the second side plate 8.
  • the upper portion of the drill rod sleeve 12 is symmetrically opened with two impact hammer reciprocating holes 23, two
  • the first spring support 18 is symmetrically mounted outside the drill sleeve 12 and above the impact hammer reciprocation hole 23, as shown in Figure 7, two second spring supports 19 are symmetrically mounted on the impact hammer 17 and two second springs The support 19 respectively protrudes from the two impact hammer reciprocating holes 23; the lower portion of the drill rod sleeve 12 is symmetrically opened with two drill rod reciprocating holes 22, as shown in Fig.
  • the two drill rod blocks 21 are symmetrically mounted on the brazing rod
  • the rod 13 and the two drill rod blocks 21 respectively protrude from the two drill rod reciprocating holes 22, and the two push rod supports 20 are symmetrically mounted on the outer side of the drill rod sleeve 12 to strike the hammer reciprocating hole 23 and the drill rod reciprocating hole 22
  • the impact spring 10 is mounted between the first spring support 18 and the second spring support 19
  • the hydraulic push rod 11 is mounted between the second spring support 19 and the push rod support 20.
  • the hydraulic motor 2 can drive the flywheel 1 to rotate.
  • the flywheel impact block 14 rotates around the flywheel shaft 15 and reaches a certain speed, after which the hydraulic push rod 11 is extended under the action of hydraulic oil pressure.
  • the second spring support 19 mounted on the impact hammer 17 is slid upward in the impact hammer reciprocating hole 23, and the impact hammer 17 and the impact rod 16 are moved upward, so that the flywheel impact block 14 can strike the impact rod 16; the impact rod 16 is subjected to The action of the force causes the impact hammer 17 to move downward, and the second spring support 19
  • the impact hammer reciprocating hole 23 slides downward, the impact spring 10 is extended, and the hydraulic push rod 11 is compressed.
  • the hydraulic oil in the hydraulic push rod 11 does not have any pressure, and is in a free flowing state, and the hydraulic oil in the hydraulic push rod 11 It does not interfere with the compression process of the hydraulic push rod 11; when the impact hammer 17 hits the drill rod 13, the drill rod 13 moves downward to hit the object; after the drill rod 13 hits the object, it is moved upward by the reaction force of the object, and is mounted on The drill rod block 21 on the drill rod 13 slides upward in the drill rod reciprocating hole 22; the impact hammer 17 is moved upward by the reciprocating pulling force of the spring, and the rotating flywheel impact block 14 will hit the impact rod 16 again, so repeatedly, the drill rod 13 can continue to hit the object.
  • the moment of inertia of the flywheel 1 is large, and the flywheel 1 is first rotated before the breaker starts to work; the hydraulic pusher 11 only works once when the breaker starts to work, pushing the hammer 17 upward, causing the flywheel to strike the block. 14 can strike the striker 16; the power of the hydraulic motor 2 is provided by the construction machine; the mounting holes 9 in the first side panel 6 and the second side panel 8 allow the breaker to be mounted on the engineering robot arm.
  • the first side plate and the second side plate are respectively provided with two mounting holes.
  • a wear layer is installed between the drill rod and the drill rod sleeve.
  • a wear piece is mounted on the collision surface of the flywheel impact block and the impact rod.
  • the drill head of the above drill rod is pointed.
  • the flywheel is mounted on the flywheel shaft, and the flywheel impact block is mounted on the flywheel.
  • the flywheel impact block continuously hits the impact rod mounted on the impact hammer, thereby causing the impact hammer to move downward.
  • Impacting the drill rod; the invention designs the impact mechanism of the breaker, and uses the flywheel on the impact structure, can drive the larger weight flywheel with less hydraulic oil pressure, and utilizes the huge inertial force to increase the impact force. , has a strong practical effect.

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  • Engineering & Computer Science (AREA)
  • Mining & Mineral Resources (AREA)
  • Civil Engineering (AREA)
  • Structural Engineering (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Architecture (AREA)
  • Food Science & Technology (AREA)
  • Earth Drilling (AREA)
  • Percussive Tools And Related Accessories (AREA)

Abstract

一种液压驱动飞轮储能的破碎锤,其包括飞轮(1)、液压马达(2)、钎杆(13)、飞轮撞击块(14)、飞轮转轴(15)、撞击锤(17)等,其中飞轮(1)安装在飞轮转轴(15)上,飞轮(1)上安装有飞轮撞击块(14),飞轮(1)转动过程中,飞轮撞击块(14)会不断撞击安装在撞击锤(17)上的撞击杆(16),从而使撞击锤(17)向下运动撞击钎杆(13),通过对破碎锤的撞击机构进行设计,将飞轮使用在撞击结构上,利用飞轮的巨大惯性力增加撞击力度。

Description

一种液压驱动飞轮储能的破碎锤 所属技术领域
本发明属于破碎锤技术领域,尤其涉及一种液压驱动飞轮储能的破碎锤。
背景技术
目前破碎锤的钎杆使用液压驱动、氮气驱动等技术,对于要求撞击较硬的物体时,往往要求具有较高的液压油压力和压力较高的氮气,这无疑会增加破碎锤的成本和减低破碎锤的使用寿命。
本发明设计一种液压驱动飞轮储能的破碎锤解决如上问题。
发明内容
为解决现有技术中的上述缺陷,本发明公开一种液压驱动飞轮储能的破碎锤,它是采用以下技术方案来实现的。
一种液压驱动飞轮储能的破碎锤,其特征在于:它包括飞轮、液压马达、液压进出口、第一支撑、第二支撑、第一侧板、侧板支撑、第二侧板、撞击弹簧、液压推杆、钎杆套、钎杆、飞轮撞击块、飞轮转轴、撞击杆、撞击锤、第一弹簧支撑、第二弹簧支撑、推杆支撑、钎杆卡块、钎杆往复孔、撞击锤往复孔,其中飞轮上安装有飞轮撞击块,液压马达上安装有两个液压进出口,飞轮转轴上依次安装有液压马达、第一支撑、飞轮、第二侧板且液压马达转轴与飞轮转轴固定连接,飞轮固定在飞轮转轴上;第一支撑安装在第二支撑内缘面上,第二支撑安装在第一侧板上,在第一侧板和第二侧板之间安装有七个侧板支撑;钎杆套安装在第一侧板和第二侧板之间,钎杆套内部安装有撞击锤和钎杆且钎杆在撞击锤下方,撞击锤顶端安装有撞击杆;钎杆套上部对称地开有两个撞击锤往复孔,两个第一弹簧支撑对称地安装在钎杆套外侧且位于撞击锤往复孔上方,两个第二弹簧支撑对称地安装在撞击锤上且两个第二弹簧支撑分别从两个撞击锤往复孔中伸出;钎杆套下部对称地开有两个钎杆往复孔,两个钎杆卡块对称地安装在钎杆上且两个钎杆卡块分别从两个钎杆往复孔中伸出,两个推杆支撑对称地安装在钎杆套外侧撞击锤往复孔和钎杆往复孔之间;撞击弹簧安装在第一弹簧支撑和第二弹簧支撑之间,液压推杆安装在第二弹簧支撑和推杆支撑之间。
本发明中液压马达可以驱动飞轮转动,随着飞轮的转动,飞轮撞击块绕飞轮转轴转动,并达到一定的速度,之后液压推杆在液压油压力的作用下伸长,使安 装在撞击锤上的第二弹簧支撑在撞击锤往复孔中向上滑动,带动撞击锤和撞击杆向上运动,使飞轮撞击块可以撞击到撞击杆;撞击杆受到力的作用带动撞击锤向下运动,第二弹簧支撑在撞击锤往复孔中向下滑动,撞击弹簧伸长,液压推杆被压缩,此时液压推杆中的液压油没有任何压力,处于自由流动状态,液压推杆中的液压油不会干扰液压推杆的被压缩过程;当撞击锤撞击钎杆时,钎杆向下运动撞击物体;钎杆撞击到物体后,由于受到物体的反作用力向上运动,安装在钎杆上的钎杆卡块在钎杆往复孔中向上滑动;撞击锤受到弹簧的往复拉力向上运动,转动的飞轮撞击块会再一次打击撞击杆,如此反复,钎杆便可以不断打击物体。
作为本技术的进一步改进,上述第一侧板和第二侧板上分别开有两个安装孔。
作为本技术的进一步改进,上述钎杆与钎杆套之间安装有耐磨层。
作为本技术的进一步改进,上述飞轮撞击块和撞击杆碰撞面安装有耐磨片。
作为本技术的进一步改进,上述钎杆的钎杆头为尖头。
相对于传统的破碎锤技术,本发明中飞轮安装在飞轮转轴上,飞轮上安装有飞轮撞击块,飞轮转动过程中,飞轮撞击块会不断撞击安装在撞击锤上的撞击杆,从而使撞击锤向下运动撞击钎杆;本发明对破碎锤的撞击机构进行了设计,将飞轮使用在撞击结构上,能够利用较小的液压油压力将重量较大的飞轮驱动起来,利用的巨大的惯性力增加撞击力度,具有较强的实用效果。
附图说明
图1是整体部件分布示意图。
图2是破碎锤内部结构示意图。
图3是破碎锤内部结构侧视图。
图4是钎杆套透视图。
图5是飞轮、液压马达安装示意图。
图6是侧板、第一支撑、第二支撑安装示意图。
图7是撞击锤、撞击杆安装示意图。
图8是钎杆、钎杆卡块安装示意图。
图中标号名称:1、飞轮,2、液压马达,3、液压进出口,4、第一支撑,5、第二支撑,6、第一侧板,7、侧板支撑,8、第二侧板,9、安装孔,10、撞击弹 簧,11、液压推杆,12、钎杆套,13、钎杆,14、飞轮撞击块,15、飞轮转轴,16、撞击杆,17、撞击锤,18、第一弹簧支撑,19、第二弹簧支撑,20、推杆支撑,21、钎杆卡块,22、钎杆往复孔,23、撞击锤往复孔。
具体实施方式
如图1、2、3所示,它包括飞轮1、液压马达2、液压进出口3、第一支撑4、第二支撑5、第一侧板6、侧板支撑7、第二侧板8、撞击弹簧10、液压推杆11、钎杆套12、钎杆13、飞轮撞击块14、飞轮转轴15、撞击杆16、撞击锤17、第一弹簧支撑18、第二弹簧支撑19、推杆支撑20、钎杆卡块21、钎杆往复孔22、撞击锤往复孔23,其中如图5所示,飞轮1上安装有飞轮撞击块14,液压马达2上安装有两个液压进出口3,如图1、5所示,飞轮转轴15上依次安装有液压马达2、第一支撑4、飞轮1、第二侧板8且液压马达2转轴与飞轮转轴15固定连接,飞轮1固定在飞轮转轴15上;如图6所示,第一支撑4安装在第二支撑5内缘面上,第二支撑5安装在第一侧板6上,在第一侧板6和第二侧板8之间安装有七个侧板支撑7;如图2、3所示,钎杆套12安装在第一侧板6和第二侧板8之间,钎杆套12内部安装有撞击锤17和钎杆13且钎杆13在撞击锤17下方,撞击锤17顶端安装有撞击杆16;如图4所示,钎杆套12上部对称地开有两个撞击锤往复孔23,两个第一弹簧支撑18对称地安装在钎杆套12外侧且位于撞击锤往复孔23上方,如图7所示,两个第二弹簧支撑19对称地安装在撞击锤17上且两个第二弹簧支撑19分别从两个撞击锤往复孔23中伸出;钎杆套12下部对称地开有两个钎杆往复孔22,如图8所示,两个钎杆卡块21对称地安装在钎杆13上且两个钎杆卡块21分别从两个钎杆往复孔22中伸出,两个推杆支撑20对称地安装在钎杆套12外侧撞击锤往复孔23和钎杆往复孔22之间;撞击弹簧10安装在第一弹簧支撑18和第二弹簧支撑19之间,液压推杆11安装在第二弹簧支撑19和推杆支撑20之间。
本发明中液压马达2可以驱动飞轮1转动,随着飞轮1的转动,飞轮撞击块14绕飞轮转轴15转动,并达到一定的速度,之后液压推杆11在液压油压力的作用下伸长,使安装在撞击锤17上的第二弹簧支撑19在撞击锤往复孔23中向上滑动,带动撞击锤17和撞击杆16向上运动,使飞轮撞击块14可以撞击到撞击杆16;撞击杆16受到力的作用带动撞击锤17向下运动,第二弹簧支撑19在 撞击锤往复孔23中向下滑动,撞击弹簧10伸长,液压推杆11被压缩,此时液压推杆11中的液压油没有任何压力,处于自由流动状态,液压推杆11中的液压油不会干扰液压推杆11的被压缩过程;当撞击锤17撞击钎杆13时,钎杆13向下运动撞击物体;钎杆13撞击到物体后,由于受到物体的反作用力向上运动,安装在钎杆13上的钎杆卡块21在钎杆往复孔22中向上滑动;撞击锤17受到弹簧的往复拉力向上运动,转动的飞轮撞击块14会再一次打击撞击杆16,如此反复,钎杆13便可以不断打击物体。
本发明中,飞轮1的转动惯量很大,破碎锤开始作业之前,飞轮1要先转动起来;液压推杆11只在破碎锤开始作业时工作一次,将撞击锤17向上推动,使飞轮撞击块14能够打击到撞击杆16;液压马达2的动力由工程机械提供;第一侧板6和第二侧板8上的安装孔9可以使破碎锤安装在工程机械臂上。
如图1所示,上述第一侧板和第二侧板上分别开有两个安装孔。
上述钎杆与钎杆套之间安装有耐磨层。
上述飞轮撞击块和撞击杆碰撞面安装有耐磨片。
上述钎杆的钎杆头为尖头。
综上所述,本发明中飞轮安装在飞轮转轴上,飞轮上安装有飞轮撞击块,飞轮转动过程中,飞轮撞击块会不断撞击安装在撞击锤上的撞击杆,从而使撞击锤向下运动撞击钎杆;本发明对破碎锤的撞击机构进行了设计,将飞轮使用在撞击结构上,能够利用较小的液压油压力将重量较大的飞轮驱动起来,利用的巨大的惯性力增加撞击力度,具有较强的实用效果。

Claims (5)

  1. 一种液压驱动飞轮储能的破碎锤,其特征在于:它包括飞轮、液压马达、液压进出口、第一支撑、第二支撑、第一侧板、侧板支撑、第二侧板、撞击弹簧、液压推杆、钎杆套、钎杆、飞轮撞击块、飞轮转轴、撞击杆、撞击锤、第一弹簧支撑、第二弹簧支撑、推杆支撑、钎杆卡块、钎杆往复孔、撞击锤往复孔,其中飞轮上安装有飞轮撞击块,液压马达上安装有两个液压进出口,飞轮转轴上依次安装有液压马达、第一支撑、飞轮、第二侧板且液压马达转轴与飞轮转轴固定连接,飞轮固定在飞轮转轴上;第一支撑安装在第二支撑内缘面上,第二支撑安装在第一侧板上,在第一侧板和第二侧板之间安装有七个侧板支撑;钎杆套安装在第一侧板和第二侧板之间,钎杆套内部安装有撞击锤和钎杆且钎杆在撞击锤下方,撞击锤顶端安装有撞击杆;钎杆套上部对称地开有两个撞击锤往复孔,两个第一弹簧支撑对称地安装在钎杆套外侧且位于撞击锤往复孔上方,两个第二弹簧支撑对称地安装在撞击锤上且两个第二弹簧支撑分别从两个撞击锤往复孔中伸出;钎杆套下部对称地开有两个钎杆往复孔,两个钎杆卡块对称地安装在钎杆上且两个钎杆卡块分别从两个钎杆往复孔中伸出,两个推杆支撑对称地安装在钎杆套外侧撞击锤往复孔和钎杆往复孔之间;撞击弹簧安装在第一弹簧支撑和第二弹簧支撑之间,液压推杆安装在第二弹簧支撑和推杆支撑之间。
  2. 根据权利要求1所述的一种液压驱动飞轮储能的破碎锤,其特征在于:上述第一侧板和第二侧板上分别开有两个安装孔。
  3. 根据权利要求1所述的一种液压驱动飞轮储能的破碎锤,其特征在于:上述钎杆与钎杆套之间安装有耐磨层。
  4. 根据权利要求1所述的一种液压驱动飞轮储能的破碎锤,其特征在于:上述飞轮撞击块和撞击杆碰撞面安装有耐磨片。
  5. 根据权利要求1所述的一种液压驱动飞轮储能的破碎锤,其特征在于:上述钎杆的钎杆头为尖头。
PCT/CN2016/097922 2016-08-16 2016-09-02 一种液压驱动飞轮储能的破碎锤 WO2018032547A1 (zh)

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