WO2019051883A1 - 测量装置 - Google Patents

测量装置 Download PDF

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Publication number
WO2019051883A1
WO2019051883A1 PCT/CN2017/103883 CN2017103883W WO2019051883A1 WO 2019051883 A1 WO2019051883 A1 WO 2019051883A1 CN 2017103883 W CN2017103883 W CN 2017103883W WO 2019051883 A1 WO2019051883 A1 WO 2019051883A1
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WO
WIPO (PCT)
Prior art keywords
bracket
slider
measuring device
sliding rail
measuring instrument
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PCT/CN2017/103883
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English (en)
French (fr)
Inventor
文庭祥
Original Assignee
意力(广州)电子科技有限公司
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Publication of WO2019051883A1 publication Critical patent/WO2019051883A1/zh

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    • GPHYSICS
    • G01MEASURING; TESTING
    • G01BMEASURING LENGTH, THICKNESS OR SIMILAR LINEAR DIMENSIONS; MEASURING ANGLES; MEASURING AREAS; MEASURING IRREGULARITIES OF SURFACES OR CONTOURS
    • G01B21/00Measuring arrangements or details thereof, where the measuring technique is not covered by the other groups of this subclass, unspecified or not relevant
    • G01B21/22Measuring arrangements or details thereof, where the measuring technique is not covered by the other groups of this subclass, unspecified or not relevant for measuring angles or tapers; for testing the alignment of axes
    • G01B21/24Measuring arrangements or details thereof, where the measuring technique is not covered by the other groups of this subclass, unspecified or not relevant for measuring angles or tapers; for testing the alignment of axes for testing alignment of axes

Definitions

  • the present invention relates to the field of measurement technology, and more particularly to a measurement device.
  • Vacuum laminating machines are designed for products with displays or touch screens, and are one of the necessary equipment for the production of intelligent display products.
  • the laminating machine comprises opposite upper and lower cavities, and the product to be attached is placed on the plane of the cavity of the upper cavity and the lower cavity, and then the product is completed by the pressing of the upper cavity and the lower cavity. fit. Therefore, the parallelism of the cavity planes of the upper and lower cavities affects the quality of the product fit.
  • the conventional measuring device measures the parallelism of the cavity plane, the smoothness of the measuring device cannot be ensured, and the measurement result is inaccurate.
  • the present invention overcomes the defects of the prior art when the parallelism of the cavity plane is measured, the stability of the measuring device cannot be ensured, and the measurement result is inaccurate, and a measuring device is provided.
  • a measuring device for measuring parallelism of a plane comprising: a sliding rail, a bracket supporting the sliding rail, and a measuring instrument mounted on the sliding rail, wherein the measuring instrument and the bracket are slidably connected with the sliding rail;
  • the bracket includes a bottom plate that is in contact with the plane to be measured, and the bottom plate is provided with at least one groove.
  • the measuring device can be applied to the parallelism measurement of a plurality of different gauge laminators by moving the position of the bracket or the measuring instrument.
  • the bracket of the measuring device When measuring the parallelism of the flat surface of the bonding device in the upper cavity and the lower cavity of the bonding machine, the bracket of the measuring device is often placed on the upper cavity plane or the lower cavity plane of the periphery of the bonding fixture.
  • the fitting fixture of the lower cavity of the bonding machine is better fit to the upper cavity fitting fixture, often along the plane of the lower cavity
  • the contour has a ring of seals, if The bottom plate of the bracket is placed at the plane of the lower cavity.
  • the measuring device of the technical solution is provided with at least one groove on the contact surface of the bottom plate and the plane of the lower cavity, and the groove can accommodate the convex sealing ring on the plane of the lower cavity to ensure the plane of the bottom plate and the lower cavity are tight. The fit ensures the smoothness of the measuring device and improves the accuracy of the measurement results.
  • the bracket is provided with a first slider, the bracket is slidably engaged with the slide rail by a first slider; and/or the second slider is disposed on the measuring instrument.
  • the measuring instrument is slidably engaged with the sliding rail by a second slider.
  • the slide rail is provided with a sliding groove along a length thereof, and the slider is provided with a concave portion that cooperates with the sliding rail, and the concave portion further includes a protrusion that cooperates with the sliding groove.
  • the wall surface of the recess is matched with the slide rail, and the protrusion is engaged with the sliding slot.
  • the first slider is fixedly connected to the bracket by screws; and/or the second slider is fixedly connected to the measuring instrument by screws.
  • both ends of the slide rail are provided with a limiting portion for preventing the first slider and/or the second slider from falling off the slide rail.
  • an adhesive layer is disposed on the connecting surface of the first slider and the bracket; and/or a layer of adhesive is disposed on the connecting surface of the second slider and the measuring instrument. Attachment.
  • the number of the brackets is two, two of the brackets are slidably disposed on the slide rail, and the measuring instrument is slidably disposed between the two brackets.
  • the bracket further includes a connecting bracket disposed perpendicular to the bottom plate, the connecting bracket being slidably coupled to the sliding rail.
  • the stent is a T-bracket or an I-shaped stent.
  • the end ends of the slide rail are respectively provided with a limiting portion for preventing the bracket or the measuring instrument from slipping.
  • the measuring device of the technical solution is provided with at least one groove on the contact surface of the bottom plate with the plane of the cavity, and the groove can accommodate the convex sealing ring on the plane of the lower cavity to ensure that the bottom plate and the lower cavity plane are closely attached. Hehe, Thereby ensuring the stability of the measuring device and improving the accuracy of the measurement results.
  • a limiting portion is disposed at both ends of the slide rail.
  • the first slider is tightly connected with the bracket and the second slider and the measuring instrument through the screw and the adhesive layer, so that an infinite resistance is generated between the connecting faces to ensure the connection effect.
  • Figure 1 is a front elevational view of the measuring device of the present invention
  • Figure 2 is a plan view of the measuring device of the present invention.
  • FIG 3 is a schematic view showing the cooperation of the slide rail of the present invention with the first slider or the second slider.
  • a measuring device as shown in FIGS. 1 to 2 for measuring the parallelism of a plane includes: a slide rail 10, a bracket 20 supporting the slide rail 10, and a measuring instrument 30 mounted on the slide rail 10, the measurement Both the meter 30 and the bracket 10 are slidably coupled to the slide rail 10; the bracket 20 includes a bottom plate 21 that is in contact with a plane to be measured, and the bottom plate 21 is provided with at least one recess 211.
  • the measuring device can be applied to parallel of a plurality of different specifications of the laminating machine by moving the position of the bracket 20 or the measuring instrument 30. Degree measurement.
  • the bracket 20 of the measuring device is often placed on the upper cavity of the periphery of the bonding fixture 40.
  • the body plane or the lower cavity plane 50 is used to better measure the parallelism of the flat surface of the bonding fixture 40; and the bonding fixture of the lower cavity of the bonding machine is better for bonding the upper fixture to the upper cavity 40 Fitted, a loop of sealing ring 51 is often provided along the contour of the lower cavity plane 50. If the bottom plate 21 of the bracket 20 is placed at the lower cavity plane 50, the sealing ring 51 protrudes from the lower cavity plane 50. The bottom plate 21 of the bracket 20 cannot be closely adhered to the lower cavity plane 50, which affects the stability of the bracket 20, and the measurement result is inaccurate.
  • the measuring device of the present embodiment is provided with at least one groove 211 on the contact surface of the bottom plate 21 and the lower cavity plane 50.
  • the groove 211 is sized to match the sealing ring 51 and can accommodate the lower cavity plane 50.
  • the sealing ring 51 ensures that the bottom plate 21 and the lower cavity plane 50 are closely attached, thereby ensuring the stability of the measuring device, improving the accuracy of the measurement result, convenient and simple operation, improving the efficiency of the adjustment and the combined power, and reducing the material. Consumption.
  • the measuring instrument is a micrometer, and the measurement data is intuitive and can be accurate to the percentile.
  • the bracket 20 is provided with a first slider 22 , and the first slider 22 is fixedly connected to the bracket 20 , and the bracket 20 passes through the first slider 22 .
  • the slide rail 10 is slidably engaged.
  • the measuring instrument 30 is provided with a second slider 31.
  • the second slider 31 is fixedly connected to the measuring instrument 30, and the measuring instrument 30 passes through the second slider 31. Sliding engagement with the slide rail 10.
  • a sliding slot 12 is disposed on the sliding rail 10 along the longitudinal direction thereof.
  • the sliding slot 12 is disposed on opposite sides of the sliding rail 10, and the first slider 22 and the second sliding block 31 are disposed.
  • the recess 80 that cooperates with the slide rail 10, and the recess 80 further includes a protrusion 81 that cooperates with the sliding slot 12, and a wall surface of the recess 80 matches the slide rail 10, the protrusion 81 and The sliding groove 12 is engaged, so that the first sliding block 22 and the second sliding block 31 and the sliding rail 10 are tightly engaged, without swaying, and the sliding is smooth, and the stability of the plane parallelism measurement value can be ensured.
  • the first slider 22 or the second slider 31 slides off from both ends of the slide rail 10 due to the matching structure of the slider slide rail, so that the first slide ends of the slide rail 10 are provided with the first slip prevention.
  • the block 22 and/or the second slider 31 drop the limit portion 11 of the slide rail.
  • the limiting portion 11 is a limiting bolt, and the limiting bolt is inserted into the end of the sliding rail 10 to serve as a limiting function.
  • the first slider 22 and the bracket 20 are fixedly connected by a screw 60.
  • the second slider 31 is fixedly connected to the measuring instrument 30 by a screw 60.
  • a layer of the adhesive layer 70 is disposed on the connecting surface of the first slider 22 and the bracket 20; similarly, the connecting surface of the second slider 31 and the measuring instrument 30 is provided.
  • the adhesive layer 70 is a double-sided adhesive. After the double-sided adhesive is added between the two contact faces, the friction coefficient increases by a multiple of tens of thousands. When the screw 60 is locked, the adhesive can be generated.
  • Infinite frictional resistance ensures that the measuring device will not be misaligned, shock-proof and shock-resistant between the bracket 20 and the first slider 22, and between the measuring instrument 30 and the second slider 31 after an accidental collision. This ensures the durability of the measuring device and the stability of the measured values.
  • the number of the brackets 20 is two, and the two brackets 20 are slidably disposed on the sliding rail 10, and the measuring instrument 30 is slidably disposed between the two brackets 10.
  • the two brackets 20 are respectively located on both sides of the fitting jig 40, which ensures the stability of the measuring device.
  • the length of the slide rail 10 is not less than 500 mm, and the two brackets 20 can freely slide on the slide rail 10, and can meet the real-time measurement of different cavity sizes at any time.
  • the bracket 20 further includes a connecting bracket 23 disposed perpendicularly to the bottom plate 21, and the connecting bracket 23 is slidably coupled to the sliding rail 10. Since the bottom plate 21 is disposed perpendicular to the connecting frame 23, the bracket 20 is a T-shaped bracket or an I-shaped bracket.
  • the T-shaped bracket includes a bottom plate 21 and a connecting frame 23, and the I-shaped bracket includes two bottom plates 21, and two bottom plates 21 are respectively disposed at two ends of the connecting frame 23, and the upper and lower bottom plates 21 of the I-shaped bracket It can be used as a plane in contact with the plane to be tested.
  • the embodiment adopts an I-shaped bracket, and the bottom plate 21 of the bracket 20 and the connecting frame 23 are detachably connected, and are detachably connected by bolts, and a gasket is arranged on the connecting surface.
  • the bracket 20 can be removed, and the bottom plate 21 and the connecting frame 23 can be disassembled into a single plate, which saves space and is convenient for transportation and storage.
  • the bracket 20 is processed by a 12 mm thick transparent acrylic plate, and all the corners are edge-treated to prevent the operator from being cut during operation.
  • the slide Both ends of the rail 10 are respectively provided with a stopper portion 11 for preventing the bracket 20 or the measuring instrument from slipping off.
  • the limiting portion 11 is a limiting bolt, and the limiting bolt is disposed at two ends of the sliding rail 10 to prevent the first sliding block 22 or the second sliding block 31 from coming off the sliding rail when sliding. 10.
  • the measuring instrument 30 of the measuring device is first used to return to zero on the standard platform, and then the angles of the flat surface of the upper cavity are measured to the upper cavity plane.
  • the relative height D1 of the upper cavity is calculated to be mirrored to the theoretical height D2 of each corner of the lower cavity fitting fixture 40; the respective corners of the bonding fixture 40 for measuring the lower cavity are respectively

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  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • A Measuring Device Byusing Mechanical Method (AREA)

Abstract

一种测量装置,用于测量平面的平行度,包括:滑轨(10)、支撑滑轨(10)的支架(20)以及安装于滑轨(10)上的测量仪表(30),测量仪表(30)与支架(20)均与滑轨(10)滑动连接;支架(20)包括与待测量平面接触的底板(21),底板(21)上设有至少一条凹槽(211)。该测量装置在底板(21)上与下腔体平面(50)的接触面上设有至少一条凹槽(211),凹槽(211)可容纳下腔体平面(50)上凸起的密封圈(51),保证底板(21)与下腔体平面(50)紧密贴合,从而保证了测量装置的平稳性,提高测量结果的准确性。

Description

测量装置 技术领域
本发明涉及测量技术领域,更具体地,涉及一种测量装置。
背景技术
随着电子产业的迅速发展,带有触摸屏和显示屏的产品覆盖面越来越广,真空贴合机则是针对带显示器或触摸屏的产品而设计,是智能显示产品生产的必要设备之一。贴合机包括相对的上腔体和下腔体,通过在上腔体和下腔体的腔体平面上放置待贴合的产品,而后通过上腔体和下腔体的压合完成产品的贴合。因此,上腔体和下腔体的腔体平面的平行度影响了产品贴合的质量。传统的测量装置在对腔体平面的平行度进行测量时,无法保证测量装置的平稳性,造成测量结果不准确。
发明内容
基于此,本发明在于克服现有技术在对腔体平面的平行度进行测量时,无法保证测量装置的平稳性,造成测量结果不准确的缺陷,提供一种测量装置。
其技术方案如下:
一种测量装置,用于测量平面的平行度,包括:滑轨、支撑滑轨的支架以及安装于滑轨上的测量仪表,所述测量仪表与支架均与所述滑轨滑动连接;所述支架包括与待测量平面接触的底板,所述底板上设有至少一条凹槽。
由于所述支架和测量仪表都与所述滑轨滑动连接,因此可以通过移动所述支架或测量仪表的位置,使测量装置能够应用于多种不同规格的贴合机的平行度测量中。在对贴合机的上腔体以及下腔体中贴合治具平面的平行度进行测量时,往往将测量装置的支架立于贴合治具外围的上腔体平面或下腔体平面处,以更好地测量贴合治具平面的平行度;而贴合机的下腔体的贴合治具为了与上腔体贴合治具更好地贴合,往往沿着下腔体平面的轮廓设有一圈密封圈,如若 将支架的底板放置于下腔体平面处,由于密封圈凸起,则支架底板无法与下腔体平面紧密贴合,对支架的平稳性造成影响,造成测量结果不准确。本技术方案的测量装置在底板上与下腔体平面的接触面上设有至少一条凹槽,所述凹槽可容纳下腔体平面上凸起的密封圈,保证底板与下腔体平面紧密贴合,从而保证了测量装置的平稳性,提高测量结果的准确性。
在其中一个实施例中,所述支架上设有第一滑块,所述支架通过第一滑块与所述滑轨滑动配合;和/或所述测量仪表上设有第二滑块,所述测量仪表通过第二滑块与所述滑轨滑动配合。
在其中一个实施例中,所述滑轨上沿其长度方向设有滑槽,所述滑块设有与所述滑轨配合的凹部,所述凹部还包括与所述滑槽配合的凸起,所述凹部的壁面与所述滑轨匹配,所述凸起与滑槽卡合。
在其中一个实施例中,所述第一滑块与所述支架通过螺丝固定连接;和/或所述第二滑块与所述测量仪表通过螺丝固定连接。
在其中一个实施例中,所述滑轨两端端部均设有防止第一滑块和/或第二滑块掉落滑轨的限位部。
在其中一个实施例中,所述第一滑块与所述支架的连接面上设有一层粘附层;和/或所述第二滑块与所述测量仪表的连接面上设有一层粘附层。
在其中一个实施例中,所述支架的数量为两个,两个所述支架滑动设于所述滑轨上,且所述测量仪表滑动设于两个支架之间。
在其中一个实施例中,所述支架还包括与所述底板垂直设置的连接架,所述连接架与所述滑轨滑动连接。
在其中一个实施例中,所述支架为T型支架或工字型支架。
在其中一个实施例中,所述滑轨的两端端部分别设有防止支架或测量仪表滑脱的限位部。
本发明的有益效果在于:
本技术方案的测量装置在底板上与腔体平面的接触面上设有至少一条凹槽,所述凹槽可容纳下腔体平面上凸起的密封圈,保证底板与下腔体平面紧密贴合, 从而保证了测量装置的平稳性,提高测量结果的准确性。
由于第一滑块与第二滑块在滑轨上滑动连接,因此为了防止第一滑块与第二滑块从滑轨两端脱落,在滑轨两端设置限位部。
通过螺丝和粘附层将第一滑块与支架、第二滑块与测量仪表紧密连接,使连接面之间产生无穷大的阻力,保证连接效果。
附图说明
图1为本发明的测量装置的主视图;
图2为本发明的测量装置的俯视图;
图3为本发明的滑轨与第一滑块或第二滑块的配合示意图。
附图标记说明:
10、滑轨;11、限位部;12、滑槽;20、支架;21、底板;211、凹槽;22、第一滑块;23、连接架;30、测量仪表;31、第二滑块;40、贴合治具;50、下腔体平面;51、密封圈;60、螺丝;70、粘附层;80、凹部;81、凸起。
具体实施方式
为使本发明的目的、技术方案及优点更加清楚明白,以下结合附图及具体实施方式,对本发明进行进一步的详细说明。应当理解的是,此处所描述的具体实施方式仅用以解释本发明,并不限定本发明的保护范围。
如图1至图2所示的一种测量装置,用于测量平面的平行度,包括:滑轨10、支撑滑轨10的支架20以及安装于滑轨10上的测量仪表30,所述测量仪表30和支架10均与所述滑轨10滑动连接;所述支架20包括与待测量平面接触的底板21,所述底板21上设有至少一条凹槽211。
由于所述支架20和测量仪表30都与所述滑轨10滑动连接,因此可以通过移动所述支架20或测量仪表30的位置,使测量装置能够应用于多种不同规格的贴合机的平行度测量中。在对贴合机的上腔体以及下腔体中贴合治具40平面的平行度进行测量时,往往将测量装置的支架20立于贴合治具40外围的上腔 体平面或下腔体平面50处,以更好地测量贴合治具40平面的平行度;而贴合机的下腔体的贴合治具为了与上腔体贴合治具40更好地贴合,往往沿着下腔体平面50的轮廓设有一圈密封圈51,如若将支架20的底板21放置于下腔体平面50处,由于密封圈51凸起于所述下腔体平面50,则支架20的底板21无法与下腔体平面50紧密贴合,对支架20的平稳性造成影响,造成测量结果不准确。本实施方式的测量装置在底板21上与下腔体平面50的接触面上设有至少一条凹槽211,所述凹槽211的尺寸与密封圈51匹配,可容纳下腔体平面50上凸起的密封圈51,保证底板21与下腔体平面50紧密贴合,从而保证了测量装置的平稳性,提高测量结果的准确性,操作方便简单,提高调机效率和贴合成功率,减少物料消耗。本实施方式中,所述测量仪表为千分尺,测量数据直观,可精确到百分位。
图1结合图3所示,本实施方式中,所述支架20上设有第一滑块22,所述第一滑块22与支架20固定连接,所述支架20通过第一滑块22与所述滑轨10滑动配合;同理,所述测量仪表30上设有第二滑块31,所述第二滑块31与测量仪表30固定连接,所述测量仪表30通过第二滑块31与所述滑轨10滑动配合。所述滑轨10上沿其长度方向设有滑槽12,所述滑槽12设于所述滑轨10的相对的两个面上,所述第一滑块22与第二滑块31设有与所述滑轨10配合的凹部80,所述凹部80还包括与所述滑槽12配合的凸起81,所述凹部80的壁面与所述滑轨10匹配,所述凸起81与滑槽12卡合,使得所述第一滑块22与第二滑块31与滑轨10咬合紧密,无晃动,滑行平顺,可确保平面平行度测量值的稳定性。
由于滑块滑轨的配合结构容易使得第一滑块22或者第二滑块31从滑轨10两端滑离掉落,从而在所述滑轨10两端端部均设有防止第一滑块22和/或第二滑块31掉落滑轨的限位部11。在本实施方式中,所述限位部11为限位螺栓,通过将限位螺栓穿插于所述滑轨10的端部,起到限位作用。
所述第一滑块22与所述支架20通过螺丝60固定连接;同理,所述第二滑块31与所述测量仪表30通过螺丝60固定连接。本实施方式中,为了保证连接 的稳定性,在所述第一滑块22与所述支架20的连接面上设有一层粘附层70;同理,所述第二滑块31与所述测量仪表30的连接面上设有一层粘附层70。本实施方式中所述粘附层70为双面胶,两个相接触的连接面之间增加双面胶之后,摩擦系数以数以万计的倍数增长,当锁紧螺丝60后,可产生无穷大的摩擦阻力,可确保测量装置在意外受到碰撞后,支架20与第一滑块22之间,以及测量仪表30与第二滑块31之间均不会发生错位,抗震动,抗撞击,从而保证测量装置的耐用性和测量值的稳定性。
本实施方式中所述支架20的数量为两个,两个所述支架20滑动设于所述滑轨10上,且所述测量仪表30滑动设于两个支架10之间。测量时,两个支架20分别位于贴合治具40两侧,保证了测量装置的稳定性。并且,所述滑轨10的长度不小于500mm,两个支架20可在滑轨10上任意自由滑动,可随时满足不同腔体大小的实时测量。
所述支架20还包括与所述底板21垂直设置的连接架23,所述连接架23与所述滑轨10滑动连接。由于所述底板21与所述连接架23垂直设置,因此,所述支架20为T型支架或工字型支架。所述T型支架包括一个底板21与一个连接架23,所述工字型支架包括两个底板21,两个底板21分别设置于连接架23的两端,工字型支架上下两个底板21均可作为与待测平面接触的平面。本实施方式采用工字型支架,且支架20的底板21与所述连接架23为可拆卸连接,通过螺栓进行可拆卸连接,并在连接面上设有垫圈。当不使用本实施方式的测量装置时,可将支架20拆下,并将底板21与连接架23拆开为单块板,节省空间,便于运输和存放。另外,所述支架20采用12mm厚的透明亚克力板加工,所有棱角均做倒边处理,防止操作过程中割伤操作人员。
如图2所示,由于第一滑块22与第二滑块31在滑轨10上滑动,因此为了防止第一滑块22与第二滑块31从滑轨10两端脱落,所述滑轨10的两端端部分别设有防止支架20或测量仪表滑脱的限位部11。本实施方式中,所述限位部11为限位螺栓,所述限位螺栓穿设于所述滑轨10的两端,防止第一滑块22或第二滑块31滑行时脱离滑轨10。
在使用本实施方式的测量装置进行平面平行度测量时,先使用本测量装置的测量仪表30在标准平台上归零,然后测量上腔体中贴合治具平面的各个角到上腔体平面的相对高度D1;计算上腔体中贴合治具平面各个角分别镜像到下腔体贴合治具40的各个角的理论高度D2;测量下腔体的贴合治具40的各个角分别到下腔体平面50的相对高度D3,调整贴合治具的固定螺丝,使之满足D2=D3,则调机结束。
以上所述实施例的各技术特征可以进行任意的组合,为使描述简洁,未对上述实施例中的各个技术特征所有可能的组合都进行描述,然而,只要这些技术特征的组合不存在矛盾,都应当认为是本说明书记载的范围。
以上所述实施例仅表达了本发明的几种实施方式,其描述较为具体和详细,但并不能因此而理解为对发明专利范围的限制。应当指出的是,对于本领域的普通技术人员来说,在不脱离本发明构思的前提下,还可以做出若干变形和改进,这些都属于本发明的保护范围。因此,本发明专利的保护范围应以所附权利要求为准。

Claims (10)

  1. 一种测量装置,用于测量平面的平行度,其特征在于,包括:滑轨、支撑滑轨的支架以及安装于滑轨上的测量仪表,所述测量仪表和支架均与所述滑轨滑动连接;所述支架包括与待测量平面接触的底板,所述底板上设有至少一条凹槽。
  2. 根据权利要求1所述的测量装置,其特征在于,所述支架上设有第一滑块,所述支架通过第一滑块与所述滑轨滑动配合;和/或所述测量仪表上设有第二滑块,所述测量仪表通过第二滑块与所述滑轨滑动配合。
  3. 根据权利要求2所述的测量装置,其特征在于,所述滑轨上沿其长度方向设有滑槽,所述滑块设有与所述滑轨配合的凹部,所述凹部还包括与所述滑槽配合的凸起,所述凹部的壁面与所述滑轨匹配,所述凸起与滑槽卡合。
  4. 根据权利要求2所述的测量装置,其特征在于,所述第一滑块与所述支架通过螺丝固定连接;和/或所述第二滑块与所述测量仪表通过螺丝固定连接。
  5. 根据权利要求2所述的测量装置,其特征在于,所述滑轨两端端部均设有防止第一滑块和/或第二滑块掉落滑轨的限位部。
  6. 根据权利要求2所述的测量装置,其特征在于,所述第一滑块与所述支架的连接面上设有一层粘附层;和/或所述第二滑块与所述测量仪表的连接面上设有一层粘附层。
  7. 根据权利要求1所述的测量装置,其特征在于,所述支架的数量为两个,两个所述支架滑动设于所述滑轨上,且所述测量仪表滑动设于两个支架之间。
  8. 根据权利要求1所述的测量装置,其特征在于,所述支架还包括与所述底板垂直设置的连接架,所述连接架与所述滑轨滑动连接。
  9. 根据权利要求1所述的测量装置,其特征在于,所述支架为T型支架或工字型支架。
  10. 根据权利要求1-9任一项所述的测量装置,其特征在于,所述滑轨的两端端部分别设有防止支架或测量仪表滑脱的限位部。
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JPH0618829A (ja) * 1992-06-30 1994-01-28 Shinetsu Eng Kk 液晶表示板用ガラス基板の貼り合せ装置
CN102788548A (zh) * 2012-08-01 2012-11-21 浙江佰耐钢带有限公司 钢带平整度测试装置
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