99re6热在线精品视频观看-精品无人区卡一卡二卡三乱码-99精品视频69v精品视频-久久精品99国产精品日本-人人澡人人妻人人爽人人蜜桃

Skip to content Skip to navigation

Håkan Persson
Product Line Manager Industrial Linear Actuators
Thomson Industries, Inc.
www.thomsonlinear.com
thomson@thomsonlinear.com

The latest electric throttle actuators provide a cost effective way to control engine speed on mechanical diesel engines. Compact and easily installed, they enable greater freedom of machine design and the use of more ergonomically optimised controls. They can automatically control engine speeds based on demand, optimising machine operation efficiency, reducing noise and increasing fuel economy. Electrak® throttle actuators are excellent options for engine sizes of less than 19 kw, which are typically mechanical engines and achieve the equivalent of Tier 4F (Stage 4) level emissions.

Electronic and mechanical engines

Modern electronic diesel engines use ultra-low sulphur fuel and have sophisticated fuel management systems that include integrated throttle control. Use of these engines results in machines which offer greater efficiency, enhanced functionality, increased operator safety and much reduced carbon emissions. In regions where emissions are highly regulated, they offer a solution to meet the equivalent of Tier 4F (Stage 4) emissions level. However, these benefits come at a cost and electronic engines may not be competitively viable in certain applications or geographical regions.

Traditional mechanical diesel engines cost much less than their modern electronic counterparts and it is expected they will continue to be used in a large range of kilowatt ranges in many areas of the world for some time to come; in particular where emissions regulations are not as stringent or ultra-low sulphur fuel is not readily available. The use of electric throttle actuators on these engines provides an easily added, cost effective solution that increases efficiency, functionality, emissions rating and safety. Such actuators can control a mechanical engine smaller than 19 kw which achieves the equivalent of Tier 4F (Stage 4) emissions level as well as larger engines in regions that allow Tier 3 emissions level.

The benefits of moving from mechanical to electric throttle control

In mobile off-highway applications, a mechanical throttle cable connected to the driver’s cab has traditionally controlled the throttle on a drive or auxiliary engine. These cables have a large bend radius which presents design challenges in running cables, particularly to auxiliary engines because they are frequently located far from the cab. These size and space restrictions can lead to compromises in ergonomic design and result in non-ideal placement of controls for the user, making equipment more difficult to operate. Mechanical engines also require periodic lubrication that is difficult to complete and often overlooked, which may lead to issues with performance.

Off-highway vehicles use diesel or gasoline engines to drive the vehicle and to provide a power take-off to operate equipment. The drive engine is often used to power a hydraulic pump that drives a cylinder to perform work such as moving a boom and bucket on an excavator. Other examples of direct engine control can be found on skid steers, compact utility tractors, asphalt pavers, man lifts, and trenchers. Auxiliary engines, used on machines such as, street sweepers, generators, welders and sewage or concrete pumps, can be difficult to control. Equipment functions can require that the engine is operated at different speeds for different tasks. When manually controlled, the risk of operator error can impact efficiency and increase the potential of damage to machinery. Engines can often be left running at operating speeds even when equipment is not being used, increasing fuel consumption, noise and emissions.

Installed in close proximity, or directly to the throttle linkage and requiring just an electrical cable or communications bus to the cab, electric throttle actuators offer significant benefit to the overall machine performance and efficiency compared with the use of mechanical cables. These throttle actuators can be controlled by a simple potentiometer, with or without limit switches, and can be positioned for optimal machine design as no direct access is required for operator interface. Potentiometer solutions are straightforward to incorporate into equipment; offer robust and reliable performance, and address many of the issues relating to machine design and operation using mechanical cables.

Automating processes and improving equipment efficiency

Electric throttle actuators can also be interfaced with a control system that can automatically optimise the speed of the motor to a pre-determined set point based on the work that is being performed. Multiple pre- set RPM levels can be configured to correspond to specific functions, such as an idle speed for start-up, high speed for traction or movement of equipment and mid-range speed for running of hydraulic pumps controlling the working function of the equipment. Pre-setting RPM levels can improve the performance and fuel economy of a machine while reducing noise and emissions. For example, if a crane operator is manually controlling the throttle, the operator is likely to keep the engine at the speed required to operate the crane even when the crane is not being operated for a short period of time. The control system can drop the engine speed to idle when the joystick is not moved for a defined time interval and, when the operator touches the joystick, automatically increase the throttle to the pre-defined operating engine RPM to ensure work can continue efficiently.

With a traditional approach an electronic control unit (ECU) is required for each actuator. By using smart actuators that use a communications bus (e.g. J1939), only a single cable needs to run from the controller to all actuators. Each actuator has a unique address, listens to every signal from the vehicle control system and responds only to signals regarding the engine throttle system. These smart actuators also provide status information, alerting the control unit of its speed and position and enabling a greater level of automation. The implementation of a bus system in a vehicle makes it simple to add additional sensors that can include other measurements such as temperature or load.

Electric throttle actuators also provide the opportunity to integrate throttle control with other vehicle functions. Take the example of an engine that must be operated at a speed of 2000 RPM to power a hydraulic pump for a specific vehicle function. The control system simply sends out a command to the actuator to increase the speed of the engine. The system then watches the response from the tachometer and turns off the actuator when the engine has reached 2000 RPM. It can then automatically turn on the equipment required to perform the specific function.

Designed for off-highway environments

Modern throttle actuators are robust units designed to withstand under hood temperatures (with operating range from -40°C to 125°C), vibration and moisture and provide the high cycle life required for demanding off-highway applications. New models can withstand water, dust and dirt and usually meet IP67 or IP69K standards - making them suitable for high pressure, high temperature wash down. A typical model is designed for 500,000 cycles and can operate on a 50% duty cycle at maximum dynamic load. The actuators are also designed and tested to withstand the shock and vibration levels typically seen in the off highway environment

An OEM for skid steer loaders maintains more efficient production and competitive edge by using electric throttle actuators on mechanical engines to meet market demands in developing countries where electronic engines are simply too costly, and ultra low sulphur fuel is not available. This manufacturer uses Tier 4F electronic diesel engines to meet emission standards in areas such as North America, Western Europe and Japan. For less developed regions, the OEM offers lower cost models with a mechanical engine and adds electric throttle actuators when customers want functionality such as auto-idle or pre-configured RPM set points.

The use of electric throttle actuators and sensors that measure demand has been shown to reduce fuel consumption, noise levels and engine wear and tear by optimising engine RPM on portable jobsite equipment such as generators and air compressors. An engine driven generator for charging batteries on a mobile communication or lighting system, for example, uses a sensor to control engine RPM in line with the charging requirement of the batteries. In applications such as man lifts, where generators are used to provide working voltage to portable power tools such as welders, grinders, drills, etc., controlling the speed of the engine is critical to providing appropriate voltage levels.

In applications such as irrigation and firefighting, the ease of remote operation of electronic throttle controls enables the operator to adjust flow from a remote position, which is particularly useful because pumps provide output directly proportional to the RPM of the engine.

Overall, the use of electric linear actuators makes machine design easier. Electric throttle actuators enable more efficient operation of mechanical diesel engines and, by providing a greater range of control, facilitate the automation of processes to increase productivity, reduce noise, improve safety and provide greater fuel economy with more environmentally friendly solutions. These robust actuators are virtually maintenance-free and, in many applications, offer an economic alternative to electronic engines with full fuel management systems. For engines less than 19 kw, throttle actuators interface well with commonly available mechanical engines that meet Tier 4F emissions levels. Where emissions standards are less stringent, electric throttles are used with mechanical engines of various sizes and give the opportunity to add functionality that can give an OEM competitive edge as well as improving environmental performance of machinery.

back to top 主站蜘蛛池模板: 东京热无码国产精品| 撩起胸让我的?蹭来蹭去| 亚洲xxxx做受欧美| 在线看片国产日韩欧美亚洲| 亚洲国产成人久久综合人| 久久免费精品国产72精品九九| 波多野结av在线无码中文免费| 亚洲夜夜欢a∨一区二区三区| 国产精品久久久久成人| 国内精品久久久久久久999| 人妻在卧室被老板疯狂进入| 国产精品久久自在自线不卡| 成人免费无码不卡毛片| 国产成人精品a∨一区二区| 精品福利一区二区三区免费视频| 无码aⅴ精品一区二区三区浪潮| 亚洲色拍拍噜噜噜最新网站| 无码熟妇人妻av在线影片免费| 欧美亚洲成人一区二区三区| 国产粉嫩高中无套进入| 2021最新在线精品国自产拍视频| 成人性生交大片免费看96| 国产女人乱子对白av片| 国内精品伊人久久久久网站| 日韩成人大屁股内射喷水| 19禁无遮挡啪啪无码网站| 日日噜噜大屁股熟妇| 亚洲国产成人无码精品| 欧美人妻在线视频一区二区| 在线精品视频一区二区三四| 无码av无码一区二区桃花岛| 97性无码区免费| 欧美黑人巨大videos精品男男| 无码中文人妻视频2019| 久久久国产一区二区三区| 亚洲一区国产二区| 国产精品女人呻吟在线观看| 欧美高清性色生活片| 大地资源中文第二页日本| 日产精品一区二区| 人妻内射一区二区在线视频|