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Global Precision Engineering Machines Market By End User, By Regional Outlook, Industry Analysis Report and Forecast, 2021-2027

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    Report

  • 172 Pages
  • January 2022
  • Region: Global
  • Marqual IT Solutions Pvt. Ltd (KBV Research)
  • ID: 5553141
The Global Precision Engineering Machines Market size is expected to reach $16.7 billion by 2027, rising at a market growth of 6.0% CAGR during the forecast period.

Precision engineering machines are the instruments that are used to offer clear and accurate production outputs to the manufacturing facility. These instruments eliminate the requirement of human power during any production process. Precision engineering machines are designed and developed with a technique that enables them to maintain, measure, and follow the procedure assigned by the operator to the machine, in order to provide the same output as demanded by the user.

Machining solutions provide computerized accuracy, which helps to eliminate the efforts on repetitive tasks and machining time, hence driving up the production process efficiency.  In addition, technological improvements have led to the creation of software that allows managers to track real-time machining activities on the shop floor and make well-informed decisions.



COVID-19 Impact Analysis


The outbreak of the COVID-19 pandemic has had a devastating impact on the global economy. All the primary, secondary, and tertiary sectors were majorly demolished. The COVID-19 pandemic also majorly affected the precision engineering machine market. Due to the diffusion of the COVID-19, the governments of all the countries over the world were forced to impose a complete lockdown which led the world to a complete industrial closure.

The precision engineering machine market faced a major downfall due to the closure of factories across the world. The closure of manufacturing facilities of the precision engineering machines has significant disrupted the supply chain of the product. 

Market Growth Factors:


Lesser risk of human errors during the production process

Various distinct and new technologies are being introduced rapidly in the era of modernization. Among this vast and advanced range of technology, programmed automation is one of the most popular and widely-used technology. Programmed automation has redefined the concept of machine automation with its function of executing a series of instructions inserted by the human in the systems. Precision engineering machines are comprised of programmable automation which facilitates the manufacturer to produce various clones of the same product without any manpower.

Reduces the downtime of the production

Conventional production methods consume a significant amount of time due to the fact that it is performed by humans and is comparatively slower than the automated production process. Precision engineering machine allows the manufacturer to increase the number of units that are being produced in a particular period of time as well as it accelerates the speed of the production of the goods. Precision engineering machines integrate automation which enables the manufacturer to leverage the instrument by manufacturing a significant number of products units in lesser turnaround time with increased and enhanced accuracy in comparison to the traditional production process.

Marketing Restraining Factor:


The expensive infrastructure of fixtures

Precision engineering machines save a huge amount during the production procedures. However, precision engineering machines come with a high installation cost which is not easily affordable by all the manufacturers. The cost that occurs during the deployment of precision engineering machines in factories or other manufacturing units is significantly higher if compared to conventional production setups. Moreover, few of the precision engineering machines comprise a significant infrastructure. Further, these huge infrastructures require a lot of space to be implanted. Due to this factor, the manufacturer has to increase the investment in buying commercial spaces which is expected to also lead to higher taxes for commercial property. Moreover, there are many mid-size manufacturers that cannot afford to purchase these high-end components.



End User Outlook


Based on End User, the market is segmented into Non-Automotive (Engineering & Capital Goods, Power & Energy, Aerospace & Defense, and Others) and Automotive. The automotive segment is anticipated to register the rapid growth rate in the precision engineering market in the forecasting years due to the continuously increasing demand for autonomous vehicles along with various factors such as advancement in robotics, and innovative mobility solutions, etc.

Regional Outlook


Based on Regions, the market is segmented into North America, Europe, Asia Pacific, and Latin America, Middle East & Africa. In 2020, APAC held the largest revenue share of the precision engineering machines market which is attributed to the increasing number of technological advancements and adoption going across the different countries of the region. APAC is a region with various developing countries which is a major reason for the rising demand for precision engineering machines intending to fulfill the demand of the customers for perfectly designed and developed products.

Cardinal Matrix - Precision Engineering Machines Market Competition Analysis




The major strategies followed by the market participants are Product Launches. Based on the Analysis presented in the Cardinal matrix; Fanuc Corporation is the major forerunner in the Precision Engineering Machines Market. Companies such as Yamazaki Mazak Corporation, Hurco Companies, Inc., and AMADA Co., Ltd. are some of the key innovators in the Market.

The market research report covers the analysis of key stake holders of the market. Key companies profiled in the report include Amera-Seiki Corporation, DATRON AG, Haas Automation, Inc., Hurco Companies, Inc., AMADA CO., LTD., Okuma Corporation, Yamazaki Mazak Corporation, Dalian Machine Tool Group (DMTG) Corporation, DMG Mori Co. Ltd., and FANUC Corporation.

Recent Strategies Deployed in Precision Engineering Machines Market


» Partnerships, Collaborations and Agreements:

  • Oct-2021: Amada launched Amada HRB-ATC, an innovative ATC technology for its mid-range lineup. Through this launch, the company aimed to fulfill the demand for a solution of this kind through original Amada tooling. The HRB-ATC comprises a full-size ATC, providing a storage capacity as same as Amada's high-end HG-ATC press brake. Moreover, HRB-ATC brings along a set of Amada tools respective to the customer's demand.
  • Jun-2021: DMG MORI launched DMP 35, a compact and high-speed machining center with moderate automation and five-axis options. Through this launch, the company aimed to offer a product that comprises an inline spindle with 15,000 rpm, direct absolute path measuring systems in all axes, and a tool magazine with 15 places for tools up to 150 mm long. Additionally, the new product is expected to eliminate vibration and offer highly accurate milling in applications with premium quality requirements with free chip fall.
  • Aug-2020: DATRON Dynamics, a subsidiary of Datron based in North America, launched the MXCube in North America. The new product is a convenient and high-speed CNC machining system. The latest product enables the manufacturers to easily and rapidly produce parts. The new MXCube is well suitable for milling precision high tolerance parts.
  • Jul-2020: Okuma America unveiled the ROID Series, a new range of robotics products to join its comprehensive offerings of CNC metal cutting machines and technologies. This launch is expected to fulfill the demand for simple and reliable robotics products to improve machining operations. In addition, the new range comprises products developed with the purpose to automate machining assessments within a manufacturing cell environment.
  • Jun-2020: Okuma America introduced MB-80V, a new bridge-style machining center. Through this launch, the company expanded its strong CNC metal cutting machines offering. . The new MB-80V aimed to offer increased machining flexibility with its uniquely-combined vertical and double-column machining potentials. Furthermore, the MB-80V is designed on the basis of Okuma’s best-in-class double-column machining center platform, complete with moving table functionality.
  • Jan-2020: FANUC America launched rolled out ROBONANO α-NTiA, an accuracy-oriented machine tool to deliver superior finish quality for optical surfaces. Through this launch, the company aimed to allow the manufacturers to enhance their productivity.

» Acquisitions and Mergers:

  • Jan-2020: AMADA took over LKI Käldman, a Finland-based manufacturer, and renamed it Amada. This acquisition is expected to allow Amada to fulfill the customer's demand by increasing the supply of machines integrated with automation equipment.

Scope of the Study


Market Segments Covered in the Report:


By End User

  • Non- Automotive
    • Engineering & Capital Goods
    • Power & Energy
    • Aerospace & Defense
    • Others

  • Automotive

By Geography


  • North America
  • US
  • Canada
  • Mexico
  • Rest of North America
  • Europe
  • Germany
  • UK
  • France
  • Russia
  • Spain
  • Italy
  • Rest of Europe
  • Asia Pacific
  • China
  • Japan
  • India
  • South Korea
  • Singapore
  • Malaysia
  • Rest of Asia Pacific
  • LAMEA
  • Brazil
  • Argentina
  • UAE
  • Saudi Arabia
  • South Africa
  • Nigeria
  • Rest of LAMEA

Key Market Players


List of Companies Profiled in the Report:

  • Amera-Seiki Corporation
  • DATRON AG
  • Haas Automation, Inc.
  • Hurco Companies, Inc.
  • AMADA CO., LTD.
  • Okuma Corporation
  • Yamazaki Mazak Corporation
  • Dalian Machine Tool Group (DMTG) Corporation
  • DMG Mori Co. Ltd.
  • FANUC Corporation

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Table of Contents

Chapter 1. Market Scope & Methodology
1.1 Market Definition
1.2 Objectives
1.3 Market Scope
1.4 Segmentation
1.4.1 Global Precision Engineering Machines Market, by End User
1.4.2 Global Precision Engineering Machines Market, by Geography
1.5 Methodology for the research
Chapter 2. Market Overview
2.1 Introduction
2.1.1 Overview
2.1.1.1 Market composition and scenario
2.2 Key Factors Impacting the Market
2.2.1 Market Drivers
2.2.2 Market Restraints
Chapter 3. Competition Analysis - Global
3.1 Cardinal Matrix
3.2 Recent Industry Wide Strategic Developments
3.2.1 Partnerships, Collaborations and Agreements
3.2.2 Product Launches and Product Expansions
3.2.3 Acquisitions and Mergers
3.2.4 Geographical Expansions
3.3 Top Winning Strategies
3.3.1 Key Leading Strategies: Percentage Distribution (2017-2021)
3.3.2 Key Strategic Move: (Product Launches and Product Expansions 2019, Aug - 2021, Oct) Leading Players
Chapter 4. Global Precision Engineering Machines Market by End Use
4.1 Global Non-Automotive Precision Engineering Machines Market by Region
4.2 Global Precision Engineering Machines Market by Non-Automotive Type
4.2.1 Global Engineering & Capital Goods Precision Engineering Machines Market by Region
4.2.2 Global Power & Energy Precision Engineering Machines Market by Region
4.2.3 Global Aerospace & Defense Precision Engineering Machines Market by Region
4.2.4 Global Others Precision Engineering Machines Market by Region
4.3 Global Automotive Precision Engineering Machines Market by Region
Chapter 5. Global Precision Engineering Machines Market by Region
5.1 North America Precision Engineering Machines Market
5.1.1 North America Precision Engineering Machines Market by End Use
5.1.1.1 North America Non-Automotive Precision Engineering Machines Market by Country
5.1.1.2 North America Precision Engineering Machines Market by Non-Automotive Type
5.1.1.2.1 North America Engineering & Capital Goods Precision Engineering Machines Market by Country
5.1.1.2.2 North America Power & Energy Precision Engineering Machines Market by Country
5.1.1.2.3 North America Aerospace & Defense Precision Engineering Machines Market by Country
5.1.1.2.4 North America Others Precision Engineering Machines Market by Country
5.1.1.3 North America Automotive Precision Engineering Machines Market by Country
5.1.2 North America Precision Engineering Machines Market by Country
5.1.2.1 US Precision Engineering Machines Market
5.1.2.1.1 US Precision Engineering Machines Market by End Use
5.1.2.1.1.1 US Precision Engineering Machines Market by Non-Automotive Type
5.1.2.2 Canada Precision Engineering Machines Market
5.1.2.2.1 Canada Precision Engineering Machines Market by End Use
5.1.2.2.1.1 Canada Precision Engineering Machines Market by Non-Automotive Type
5.1.2.3 Mexico Precision Engineering Machines Market
5.1.2.3.1 Mexico Precision Engineering Machines Market by End Use
5.1.2.3.1.1 Mexico Precision Engineering Machines Market by Non-Automotive Type
5.1.2.4 Rest of North America Precision Engineering Machines Market
5.1.2.4.1 Rest of North America Precision Engineering Machines Market by End Use
5.1.2.4.1.1 Rest of North America Precision Engineering Machines Market by Non-Automotive Type
5.2 Europe Precision Engineering Machines Market
5.2.1 Europe Precision Engineering Machines Market by End Use
5.2.1.1 Europe Non-Automotive Precision Engineering Machines Market by Country
5.2.1.2 Europe Precision Engineering Machines Market by Non-Automotive Type
5.2.1.2.1 Europe Engineering & Capital Goods Precision Engineering Machines Market by Country
5.2.1.2.2 Europe Power & Energy Precision Engineering Machines Market by Country
5.2.1.2.3 Europe Aerospace & Defense Precision Engineering Machines Market by Country
5.2.1.2.4 Europe Others Precision Engineering Machines Market by Country
5.2.1.3 Europe Automotive Precision Engineering Machines Market by Country
5.2.2 Europe Precision Engineering Machines Market by Country
5.2.2.1 Germany Precision Engineering Machines Market
5.2.2.1.1 Germany Precision Engineering Machines Market by End Use
5.2.2.1.1.1 Germany Precision Engineering Machines Market by Non-Automotive Type
5.2.2.2 UK Precision Engineering Machines Market
5.2.2.2.1 UK Precision Engineering Machines Market by End Use
5.2.2.2.1.1 UK Precision Engineering Machines Market by Non-Automotive Type
5.2.2.3 France Precision Engineering Machines Market
5.2.2.3.1 France Precision Engineering Machines Market by End Use
5.2.2.3.1.1 France Precision Engineering Machines Market by Non-Automotive Type
5.2.2.4 Russia Precision Engineering Machines Market
5.2.2.4.1 Russia Precision Engineering Machines Market by End Use
5.2.2.4.1.1 Russia Precision Engineering Machines Market by Non-Automotive Type
5.2.2.5 Spain Precision Engineering Machines Market
5.2.2.5.1 Spain Precision Engineering Machines Market by End Use
5.2.2.5.1.1 Spain Precision Engineering Machines Market by Non-Automotive Type
5.2.2.6 Italy Precision Engineering Machines Market
5.2.2.6.1 Italy Precision Engineering Machines Market by End Use
5.2.2.6.1.1 Italy Precision Engineering Machines Market by Non-Automotive Type
5.2.2.7 Rest of Europe Precision Engineering Machines Market
5.2.2.7.1 Rest of Europe Precision Engineering Machines Market by End Use
5.2.2.7.1.1 Rest of Europe Precision Engineering Machines Market by Non-Automotive Type
5.3 Asia Pacific Precision Engineering Machines Market
5.3.1 Asia Pacific Precision Engineering Machines Market by End Use
5.3.1.1 Asia Pacific Non-Automotive Precision Engineering Machines Market by Country
5.3.1.2 Asia Pacific Precision Engineering Machines Market by Non-Automotive Type
5.3.1.2.1 Asia Pacific Engineering & Capital Goods Precision Engineering Machines Market by Country
5.3.1.2.2 Asia Pacific Power & Energy Precision Engineering Machines Market by Country
5.3.1.2.3 Asia Pacific Aerospace & Defense Precision Engineering Machines Market by Country
5.3.1.2.4 Asia Pacific Others Precision Engineering Machines Market by Country
5.3.1.3 Asia Pacific Automotive Precision Engineering Machines Market by Country
5.3.2 Asia Pacific Precision Engineering Machines Market by Country
5.3.2.1 China Precision Engineering Machines Market
5.3.2.1.1 China Precision Engineering Machines Market by End Use
5.3.2.1.1.1 China Precision Engineering Machines Market by Non-Automotive Type
5.3.2.2 Japan Precision Engineering Machines Market
5.3.2.2.1 Japan Precision Engineering Machines Market by End Use
5.3.2.2.1.1 Japan Precision Engineering Machines Market by Non-Automotive Type
5.3.2.3 India Precision Engineering Machines Market
5.3.2.3.1 India Precision Engineering Machines Market by End Use
5.3.2.3.1.1 India Precision Engineering Machines Market by Non-Automotive Type
5.3.2.4 South Korea Precision Engineering Machines Market
5.3.2.4.1 South Korea Precision Engineering Machines Market by End Use
5.3.2.4.1.1 South Korea Precision Engineering Machines Market by Non-Automotive Type
5.3.2.5 Singapore Precision Engineering Machines Market
5.3.2.5.1 Singapore Precision Engineering Machines Market by End Use
5.3.2.5.1.1 Singapore Precision Engineering Machines Market by Non-Automotive Type
5.3.2.6 Malaysia Precision Engineering Machines Market
5.3.2.6.1 Malaysia Precision Engineering Machines Market by End Use
5.3.2.6.1.1 Malaysia Precision Engineering Machines Market by Non-Automotive Type
5.3.2.7 Rest of Asia Pacific Precision Engineering Machines Market
5.3.2.7.1 Rest of Asia Pacific Precision Engineering Machines Market by End Use
5.3.2.7.1.1 Rest of Asia Pacific Precision Engineering Machines Market by Non-Automotive Type
5.4 LAMEA Precision Engineering Machines Market
5.4.1 LAMEA Precision Engineering Machines Market by End Use
5.4.1.1 LAMEA Non-Automotive Precision Engineering Machines Market by Country
5.4.1.2 LAMEA Precision Engineering Machines Market by Non-Automotive Type
5.4.1.2.1 LAMEA Engineering & Capital Goods Precision Engineering Machines Market by Country
5.4.1.2.2 LAMEA Power & Energy Precision Engineering Machines Market by Country
5.4.1.2.3 LAMEA Aerospace & Defense Precision Engineering Machines Market by Country
5.4.1.2.4 LAMEA Others Precision Engineering Machines Market by Country
5.4.1.3 LAMEA Automotive Precision Engineering Machines Market by Country
5.4.2 LAMEA Precision Engineering Machines Market by Country
5.4.2.1 Brazil Precision Engineering Machines Market
5.4.2.1.1 Brazil Precision Engineering Machines Market by End Use
5.4.2.1.1.1 Brazil Precision Engineering Machines Market by Non-Automotive Type
5.4.2.2 Argentina Precision Engineering Machines Market
5.4.2.2.1 Argentina Precision Engineering Machines Market by End Use
5.4.2.2.1.1 Argentina Precision Engineering Machines Market by Non-Automotive Type
5.4.2.3 UAE Precision Engineering Machines Market
5.4.2.3.1 UAE Precision Engineering Machines Market by End Use
5.4.2.3.1.1 UAE Precision Engineering Machines Market by Non-Automotive Type
5.4.2.4 Saudi Arabia Precision Engineering Machines Market
5.4.2.4.1 Saudi Arabia Precision Engineering Machines Market by End Use
5.4.2.4.1.1 Saudi Arabia Precision Engineering Machines Market by Non-Automotive Type
5.4.2.5 South Africa Precision Engineering Machines Market
5.4.2.5.1 South Africa Precision Engineering Machines Market by End Use
5.4.2.5.1.1 South Africa Precision Engineering Machines Market by Non-Automotive Type
5.4.2.6 Nigeria Precision Engineering Machines Market
5.4.2.6.1 Nigeria Precision Engineering Machines Market by End Use
5.4.2.6.1.1 Nigeria Precision Engineering Machines Market by Non-Automotive Type
5.4.2.7 Rest of LAMEA Precision Engineering Machines Market
5.4.2.7.1 Rest of LAMEA Precision Engineering Machines Market by End Use
5.4.2.7.1.1 Rest of LAMEA Precision Engineering Machines Market by Non-Automotive Type
Chapter 6. Company Profiles
6.1 Amera-Seiki Corporation
6.1.1 Company Overview
6.2 DATRON AG
6.2.1 Company Overview
6.2.2 Financial Analysis
6.2.3 Regional Analysis
6.2.4 Research & Development Expenses
6.2.5 Recent strategies and developments
6.2.5.1 Partnerships, Collaborations, and Agreements
6.2.5.2 Product Launches and Product Expansions
6.3 Haas Automation, Inc.
6.3.1 Company Overview
6.4 Hurco Companies, Inc.
6.4.1 Company Overview
6.4.2 Financial Analysis
6.4.3 Regional Analysis
6.4.4 Research & Development Expenses
6.4.5 Recent strategies and developments
6.4.5.1 Partnerships, Collaborations, and Agreements
6.4.5.2 Product Launches and Product Expansions
6.4.6 SWOT Analysis
6.5 AMADA CO., LTD.
6.5.1 Company Overview
6.5.2 Financial Analysis
6.5.3 Segmental and Regional Analysis
6.5.4 Research & Development Expenses
6.5.5 Recent strategies and developments
6.5.5.1 Product Launches and Product Expansions
6.5.5.2 Acquisitions and Mergers:
6.5.6 SWOT Analysis
6.6 Okuma Corporation
6.6.1 Company Overview
6.6.2 Financial Analysis
6.6.3 Regional Analysis
6.6.4 Research & Development Expenses
6.6.5 Recent strategies and developments
6.6.5.1 Product Launches and Product Expansions
6.6.5.2 Geographical Expansions
6.6.6 SWOT Analysis
6.7 Yamazaki Mazak Corporation
6.7.1 Company Overview
6.7.2 Recent strategies and developments
6.7.2.1 Partnerships, Collaborations, and Agreements
6.8 Dalian Machine Tool Group (DMTG) Corporation
6.8.1 Company Overview
6.9 DMG MORI CO., LTD.
6.9.1 Company Overview
6.9.2 Financial Analysis
6.9.3 Segmental and Regional Analysis
6.9.4 Recent strategies and developments
6.9.4.1 Partnerships, Collaborations, and Agreements
6.9.4.2 Product Launches and Product Expansions
6.9.4.3 Acquisitions and Mergers:
6.10. FANUC Corporation
6.10.1 Company Overview
6.10.2 Financial Analysis
6.10.3 Regional Analysis
6.10.4 Research & Development Expense
6.10.5 Recent strategies and developments
6.10.5.1 Product Launches and Product Expansions

Companies Mentioned

  • Amera-Seiki Corporation
  • DATRON AG
  • Haas Automation, Inc.
  • Hurco Companies, Inc.
  • AMADA CO., LTD.
  • Okuma Corporation
  • Yamazaki Mazak Corporation
  • Dalian Machine Tool Group (DMTG) Corporation
  • DMG Mori Co. Ltd.
  • FANUC Corporation

Methodology

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