In recent years, there has been an increasing demand for more industrial robots to be incorporated into the production line in all walks of life, from modern car production to 3C (computer, communication and consumer electronics) product production. Compared with the automation equipment on the traditional production line, the robot is sensitive and capable of operation, so it is especially suitable for a variety of types and small batch production, so as to quickly respond to market changes and customer needs.
Industrial robots are three- or multi-axis multi-purpose robotic arms controlled by active programmable manipulators. The economic and social advantages of using industrial robots are as follows: advancing quality and yield, advancing product consistency, saving raw materials, shortening product delivery time, and reducing long-term total production costs. In addition, they free workers from highly repetitive tasks, dirty, and risky environments.
In the past few years, in response to the obvious increase in the demand for applications, the number of installed industrial robots has grown rapidly, and the full potential of skills is being unleashed. In fine motion manipulation occupations, industrial robots are increasingly being used in the manufacturing industry to maximize forward productivity and productivity. Nowadays, more and more industries and technologies are committed to planning advanced next-generation industrial robots.
Significant advances in actuator and manipulation skills have led to the development of advanced modular robotic joints. As modular joints, they must be standardized, self-contained work cells that together can be matched with a variety of other components and system interfaces to create complex robot systems. Modularity satisfies the versatility of planning and mechanical production, the ability to adapt to the needs of the user, and the ease of installation. In general, highly integrated electromechanical modular joint planning has several advantages over traditional robot systems, including high power density, lighter components, high dynamic functions and reliability. This planning advances the agility of the robot, reducing production time and overall costs.
Although the integration of robots into the enterprise will significantly increase the upfront investment cost, the use of industrial robots can significantly improve product quality and efficiency. There are several important decisive factors when considering the use of robots to replace skilled and increasingly expensive labor: (a) the payback period of the capital investment, and (b) the lifetime of the robot. Clearly, the short payback period and long service life will make the investment robots attractive.
With more than 100 years of professional experience, Kollmorgen has produced hundreds of thousands of servo motion parts for robotics careers. By utilizing one or more modular joints, the planning and installation of a light-payload robot (Cobot) can be significantly optimized; These modular robot joints utilize Kollmorgen's optimally planned frameless torque motors, LVDC drives, dedicated harmonic reducers, brakes, dual feedback systems, and thermal sensors. The modular robot joint integrates Kollmorgen frameless servo motors, which makes the development of the robot simple, fast and safe. Lean engineering planning enables Kollmorgen to provide frameless motors that are optimized for space, weight, function, reliability and service life.
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