A turbomolecular pump is a type of vacuum pump, superficially similar to a turbopump, also called turbomolecular vacuum pump, used to obtain and maintain high vacuum. These pumps work on the principle that gas molecules can be given momentum in a desired direction by repeated collision with a moving solid surface. In a turbomolecular pump, a rapidly spinning fan rotor 'hits' gas molecules from the inlet of the pump towards the exhaust in order to create or maintain a vacuum.
The global Turbomolecular Vacuum Pumps market was valued at xx million US$ in 2018 and will reach xx million US$ by the end of 2025, growing at a CAGR of xx% during 2019-2025.
This report focuses on Turbomolecular Vacuum Pumps volume and value at global level, regional level and company level. From a global perspective, this report represents overall Turbomolecular Vacuum Pumps market size by analyzing historical data and future prospect.
Regionally, this report categorizes the production, apparent consumption, export and import of Turbomolecular Vacuum Pumps in North America, Europe, China, Japan, Southeast Asia and India.
For each manufacturer covered, this report analyzes their Turbomolecular Vacuum Pumps manufacturing sites, capacity, production, ex-factory price, revenue and market share in global market.
The following manufacturers are covered:
Edwards
Pfeiffer
Osaka Vacuum, Ltd.
ULVAC
Shimadzu Corporation
EBARA Technologies, Inc.
Leybold
Busch
Agilent
KYKY Vacuum
Segment by Regions
North America
Europe
China
Japan
Southeast Asia
India
Segment by Type
Magnetically Suspended Type
Oil Lubricated Type
Others
Segment by Application
Industrial Vacuum Processing
Nanotechnology Instruments
Analytical Instrumentation
Other
Table of Contents
Executive Summary
1 Industry Overview of Turbomolecular Vacuum Pumps
1.1 Definition of Turbomolecular Vacuum Pumps
1.2 Turbomolecular Vacuum Pumps Segment by Type
1.2.1 Global Turbomolecular Vacuum Pumps Production Growth Rate Comparison by Types (2014-2025)
1.2.2 Magnetically Suspended Type
1.2.3 Oil Lubricated Type
1.2.4 Others
1.3 Turbomolecular Vacuum Pumps Segment by Applications
1.3.1 Global Turbomolecular Vacuum Pumps Consumption Comparison by Applications (2014-2025)
1.3.2 Industrial Vacuum Processing
1.3.3 Nanotechnology Instruments
1.3.4 Analytical Instrumentation
1.3.5 Other
1.4 Global Turbomolecular Vacuum Pumps Overall Market
1.4.1 Global Turbomolecular Vacuum Pumps Revenue (2014-2025)
1.4.2 Global Turbomolecular Vacuum Pumps Production (2014-2025)
1.4.3 North America Turbomolecular Vacuum Pumps Status and Prospect (2014-2025)
1.4.4 Europe Turbomolecular Vacuum Pumps Status and Prospect (2014-2025)
1.4.5 China Turbomolecular Vacuum Pumps Status and Prospect (2014-2025)
1.4.6 Japan Turbomolecular Vacuum Pumps Status and Prospect (2014-2025)
1.4.7 Southeast Asia Turbomolecular Vacuum Pumps Status and Prospect (2014-2025)
1.4.8 India Turbomolecular Vacuum Pumps Status and Prospect (2014-2025)
2 Manufacturing Cost Structure Analysis
2.1 Raw Material and Suppliers
2.2 Manufacturing Cost Structure Analysis of Turbomolecular Vacuum Pumps
2.3 Manufacturing Process Analysis of Turbomolecular Vacuum Pumps
2.4 Industry Chain Structure of Turbomolecular Vacuum Pumps
3 Development and Manufacturing Plants Analysis of Turbomolecular Vacuum Pumps
3.1 Capacity and Commercial Production Date
3.2 Global Turbomolecular Vacuum Pumps Manufacturing Plants Distribution
3.3 Major Manufacturers Technology Source and Market Position of Turbomolecular Vacuum Pumps
3.4 Recent Development and Expansion Plans
4 Key Figures of Major Manufacturers
4.1 Turbomolecular Vacuum Pumps Production and Capacity Analysis
Summary: Get latest Market Research Reports on Turbomolecular Vacuum Pumps. Industry analysis & Market Report on Turbomolecular Vacuum Pumps is a syndicated market report, published as Global Turbomolecular Vacuum Pumps Market Professional Survey Report 2019. It is complete Research Study and Industry Analysis of Turbomolecular Vacuum Pumps market, to understand, Market Demand, Growth, trends analysis and Factor Influencing market.