The emergence and mature applications of metal 3D printing technology, as well as intelligent software such as CFD and CAE, are driving and leading new changes in valve design and manufacturing.

Metal 3D Printing Promotes Revolution in Valve Design and Manufacturing

Article from | EPLUS 3D TECH CO., LTD.

Valve is a device which is used to control the direction, pressure and the flow of fluids (liquid, gas, powder). It is an important controlling component of the fluid power system, and is widely used in mechanical products in areas such as petrochemical, mining, power, health, electronics, robot industry and so on.

The emergence and mature applications of metal 3D printing technology, as well as intelligent software such as CFD and CAE, are driving and leading new changes in valve design and manufacturing.

 

New Generation of lightweight Hydraulic Manifold

The hydraulic valve manifold is a complicated integration, where the internal passages cross each other and the inlet arrangements is complicated.

For the traditional hydraulic valve manifold, in order to manufacture internal-crossed manifolds, it is necessary to drill the hole and then to block the unnecessary drilled hole with screw plugs.

But there exists undoubtedly the possibility of leakage with this kind of manufacturing method. Besides, internal pathways made by drilling are straight and have 90-degree turn. According to CFD (Computer Fluid Dynamics) analysis results, some areas will have the problem of less flow and some will have the turbulence.

IMG_256

(90-degree turn Fluid Simulation)

Dr. Zhu Yi from Zhejiang University’s Metal Additive Manufacturing Laboratory (Associate Professor, State Key Laboratory of Fluid Power and Electromechanical Systems, School of Mechanical Engineering, Zhejiang University) researches mainly how Metal 3D printing (powder bed technology) is applied on the innovative design of hydraulic components, and starts cooperation with Eplus3D in this direction. Based on the additive manufacturing process, the laboratory team he leads redesigns the runner structure and the interface layout of traditional hydraulic manifolds, and do tests, make the optimization continuously.

IMG_256

(Hydraulic Manifolds manufactured in traditional method / Hydrodynamic analysis of right-angle flow channels)

 

IMG_256

(Hydraulic Manifolds of which flow channels are optimized / Hydrodynamic analysis of curved flow channel)

1661928100827

(3D printed metal hydraulic manifolds)

 

The weight of the hydraulic manifolds is reduced from 1.5 kg to 0.98 kg, the weight loss is up to 35%. The volume is reduced from 535 cm3 to 116 cm3, the volume reduction is up to 78%.

The flow characteristics are improved by changing the right-angle intersection flow path to smooth arc transition. Therefore the local pressure loss is reduced when the oil passes through the flow path.

In the meantime, because metal additive manufacturing can form the complex integrated structure of the hydraulic manifold, no additional process drilling is needed, which reduces the risk of leakage and improves the performance and stability of the valve.

 

 

The content & opinions in this article are the author’s and do not necessarily represent the views of ManufacturingTomorrow

Featured Product

FLIR Si1-LD - Industrial Acoustic Imaging Camera for Compressed Air Leak Detection

FLIR Si1-LD - Industrial Acoustic Imaging Camera for Compressed Air Leak Detection

The FLIR Si1-LD is an easy-to-use acoustic imaging camera for locating and quantifying pressurized leaks in compressed air systems. This lightweight, one-handed camera is designed to help maintenance, manufacturing, and engineering professionals identify air leaks faster than with traditional methods. Built with a carefully constructed array of MEMS microphones for high sensitivity, the Si1-LD produces a precise acoustic image that visually displays ultrasonic information, even in loud, industrial environments. The acoustic image is overlaid in real time on a digital image, allowing you to accurately pinpoint the source of the sound, with onboard analytics which quantify the losses being incurred. The Si1-LD features a plugin that enables you to import acoustic images to FLIR Thermal Studio suite for offline editing, analysis, and advanced report creation. Field analysis and reporting can also be done using the FLIR Acoustic Camera Viewer cloud service. Transferring of images can be managed via memory stick or USB data cable. Through a regular maintenance routine, the FLIR Si1-LD can help facilities reduce their environmental impact and save money on utility bills.