蜜桃视频在线观看免费视频网站www-极品少妇hdxx麻豆hdxx-久久久久久成人毛片免费看-色欲国产麻豆一精品一av一免费-99精品电影一区二区免费看

Skip to content Skip to navigation

As miniaturization trends drive the need for more complex compact linear motion systems, the need for customization continues to grow. However, machine designers may not have to build an entirely new system from the ground up. Working closely with motion technology vendors, they can get an optimal solution from standard configurations with targeted customization. This avoids the higher cost and drawn-out development times of fully customized solutions without sacrificing performance.

Starting with standards

Generally, it is best to start with a standard compact linear system assembly. These systems typically incorporate the following motion control modules:

  • A stepper motor with an integrated lead screw
  • A load-bearing nut that rides across the lead screw threads
  • Carriage blocks and linear bearings that travel with the nut to support the load
  • Round or profile rails that provide additional guidance and support, anchored by end blocks and motor support blocks

Small systems like these are often available in one of three standard configurations. When the application needs a smaller footprint but has vertical space available, the designer might choose an assembly that stacks the lead screw vertically above a profile rail, as shown in Figure 1a. This slim configuration has a smaller footprint than other comparable configurations but is taller and thus requires more overhead space.

Figure 1: Standard compact linear system configurations may include the lead screw mounted vertically above profile rail (a), alongside profile rail (b) or flanked horizontally by round rails (c). Photo courtesy of Thomson Industries, Inc.

Where overhead space is limited, however, designers might arrange the screw and profile bearing horizontally, as shown in Figure 1b. This configuration flattens the configuration but demands a larger footprint.

A third standard popular configuration involves mounting round rails on each side of the lead screw, as shown in Figure 1c. This version can span across gaps without requiring full support along its length. Dual rail configurations, such as the system shown in Figure 1c, can also handle roll moment loads because two evenly spaced rails share the load.

A final example of a flexible design is one that enables its use in dirty environments while providing positioning and movement using ball screws and linear bearings. The enclosed design provides greater application opportunity while keeping the design in a standard product family, as seen in Figure 2.

Figure 2: Positioning slides utilizing screw support technology and a plastic cover strip system allows operation in dirty environments, keeping the internal system components fully protected while reducing friction to a minimum. Image courtesy of Thomson Industries, Inc.

Fine-tuning

These configuration examples represent a range of possibilities that are available using just standard components. They are typically offered in a wide set of standard sizes and have served most purposes. As modern industrial processes evolve, however, the demand for more complex configurations grows.

Despite the complexity of future manufacturing, most emerging applications will not require total customization. As manufacturers continue to broaden but standardize their product offerings, designers will be able to create a solution using off-the-shelf modules that require minor adaptations. Systems might need shorter or wider support blocks, relocated mounting holes, different bolt patterns, re-orientation of the guide rails to the lead screw, modified stroke lengths or resizing of the motor to accommodate load changes. These minor modifications fall within the existing manufacturing process limitations for the product. Manufacturers are beginning to incorporate these minor modifications into their process to expedite delivery times, while providing flexibility in their offerings.

Suppose that the designer concerned with moment load handling chose the configuration with two round rails flanking the lead screw (Figure 1c). The application requirements changed during the design process and then required a higher moment load capacity. Starting with off-the-shelf round rails, lead screws and nuts, the engineer can adapt and accommodate the change. This may be achieved by widening the mount of the existing product or upsizing the bearings to maintain a specific envelope. Because mounting blocks are machined individually, changing support block designs can be done with very little added expense and is a result of using standard product. XY assemblies are yet another type of application that often benefit from adapting standard modules. (Figure 3) Like the previous examples, these units might require redrilling mounting holes, or modifying mounting surfaces for customized gantries to accommodate cable management, limit switches or pneumatic hoses/accessories. These types of considerations are usually very specific to the application. But even then, much of the adaptation is done by using standard mounting blocks.

Figure 3: XY stages can usually be built with standard compact linear components, but gantries and other peripheral components may require customization. Image courtesy of Thomson Industries, Inc.

Critical success factors

Targeting customization to only specific components can have tremendous value in cost-optimizing your motion control system for confined space operation. The success of this approach, however, depends on three things: the breadth of the vendor’s product line, the expertise of the design team comprised of the end user, distributor and vendor, and the extent to which modern engineering collaboration tools can be leveraged. These could be as simple as drawings, sizing tools or even simulation software.

The product line breadth is important because it compresses the supply chain, eliminating the cost and time needed to locate and bring in outsourced components. It also means that the vendor will have more capability to mass produce the product efficiently.

The design team’s expertise is important because they may bring experience with similar adaptations or additional insight of a manufacturer’s abilities within a product line. The combined application knowledge of the end user, distributor and manufacturer will always offer more information and views on how to tackle a difficult application.

Lastly, the use of modern engineering collaboration tools is valuable because they enable real-time collaboration around the customer’s specific problem, which shortens the time between customization and production. (Figure 4)

Figure 4: Collaboration tools such as virtual design consultations allow customers to work side-by-side with an application engineer to optimize their solution and review CAD models during or after their session. Image courtesy of Thomson Industries, Inc.

Moving into the future

If the automation industry trend-spotters are right, we are on the verge of Industry 5.0, where humans and machines interact more effectively to leverage the unique benefits of each. As part of expanded cyber-physical interaction or the extended internet of things (EIoT), there will be more axes of motion to benefit from automation. Standard linear motion technology will continue to drive the bulk of applications in this space, and targeted customization with a foundation of standard products will make the transition smooth and cost effective.

[SIDEBAR]

Linear System Design Tips

1. Consider the environmental conditions under which the system will operate, including temperatures, dust and dirt levels, chemical exposure, washdown processes, vibration and shock load, and radiation. Fully enclosed units that use a cover strip may be required for dirty and/or wet environments, but in clean factory environments, open designs may provide cost savings and enhanced design flexibility. In extremely dusty environments, fully enclosed units can be equipped with a positive air pressure system to purge any particles that may get through the cover strip.

2. When defining the direction and magnitude of your load, the system orientation can be important. With a horizontal orientation, the drive load is equal to the payload weight times the frictional coefficient, while with a vertical orientation, the drive load is equal to the weight. For vertical applications, know that the mechanics alone may not be enough to hold the load when it is stationary, and an external brake may be needed. This could extend the overall length of a unit.

3. For applications that require accurate positioning, preloaded ball screws or high-precision lead screws can be used, and the mounting surfaces of the rails can be machined.

4. Lead screw drives, which are used in low to medium duty cycle positioning applications, operate at low noise levels and provide excellent repeatability of 0.005 mm.

5. Purchasing a configured linear motion system can typically reduce engineering time and assembly cost by 90% or more, w

back to top 主站蜘蛛池模板: 国产精品国产三级在线...| 18禁成人黄网站免费观看久久 | 成年美女看的黄网站色戒| 亚洲中文字幕无码久久2017 | 免费国产午夜视频在线| 97久久精品人妻人人搡人人玩| 免费人成小说在线观看网站| 亚洲国产成人精品久久久| 亚洲精品无码久久千人斩| 小辣椒福利视频精品导航| 亚洲人成小说网站色| 国产精品午夜无码av天美传媒 | 无码人中文字幕| 成 人影片 免费观看| 欧美一线二线三显卡| 欧美性大战xxxxx久久久| 日本少妇裸体做爰高潮片| 亚洲日韩久热中文字幕| 动漫?奶头张开腿被?男同| 日韩a片无码一区二区三区电影| 亚洲色偷偷男人的天堂| 西西4444www大胆无码| 人妻av中文字幕无码专区| 自慰无码一区二区三区| 久久国产精品久久久久久| 国产午夜片无码区在线播放| 久久久无码人妻精品无码| 国产乱人伦app精品久久| 污污内射在线观看一区二区少妇| 久久久久99人妻一区二区三区| 精品久久久久久久久久久国产字幕 | 成人免费无码大片a毛片户外| 手机无码人妻一区二区三区免费 | 18禁裸体动漫美女无遮挡网站| 真人抽搐一进一出视频| 人妻少妇被粗大爽.9797pw | 亚瑟国产精品久久| 日韩va中文字幕无码电影| 国产偷亚洲偷欧美偷精品| 国产v亚洲v天堂无码久久久| 中文字幕av无码一区二区三区|