Global Robotic Welding Industry to 2027

DUBLIN, July 5, 2022 /PRNewswire/ — The report “Robotic Welding Market: Global Industry Trends, Share, Size, Growth, Opportunities and Forecast 2022-2027” has been added to from offer.

The global robotic welding market reached a value of US$6.08 billion in 2021. Looking ahead, the publisher expects the market to reach a value of US$10.1 billion by 2027, posting a CAGR of 8.83% over the period 2021-2027. Keeping in mind the uncertainties of COVID-19, we continuously monitor and assess the direct and indirect influence of the pandemic on the various end-use industries. This information is included in the report as a major market contributor.

Robotic welding, also known as automated welding, is a process of fusing two materials using mechanized programmable instruments that heat, mix and cool metallic materials. It ensures weld integrity is improved with consistent results for fast, quality welds while reducing human error, fatigue and distractions that can cause defects.

As this helps in more accurate and precise welding, there is less scrap and waste with robotic welding compared to manual welding. In addition, it performs different welding processes with less manpower and without the need to hire additional staff for production. As a result, it finds many applications in the automotive, electronics, aerospace, defense, construction and mining industries across the world.

Due to reduction in work-intensive accidents, improved speed and accuracy of order execution, and increased uptime with reduced costs, the use of robotic welding is increasing. in the world. This, along with the growing demand for robotic welding to improve efficient use of workspace and improve supply chain performance in end-user industries, represents one of the major factors driving the market. .

Moreover, major market players are investing heavily in research and development (R&D) activities to improve the functions and benefits offered by robotic welding. This, together with the increasing customization of robotic welding for several requirements, such as cloud-based operations and remote monitoring, as well as efficient physical stature for better compatibility with human workforce, positively influences the market.

Additionally, the increasing use of robotic welding in the automotive industry for resistance spot welding and arc welding in high production applications offers lucrative growth opportunities for investors in the industry. In addition to this, robotic welding requires minimum hard tooling as they are reprogrammable which is expected to drive the market growth.

Competitive Landscape:

The competitive landscape of the industry has also been reviewed along with the profiles of major players i.e. ABB Ltd., Comau (Stellantis NV), DAIHEN Corporation, FANUC Corporation, Hyundai Robotics Co. Ltd. (Hyundai Heavy Industries Group), Kawasaki Heavy Industries Ltd., KUKA S.A.Nachi-Fujikoshi Corp., Panasonic Corporation, Siasun Robot & Automation Co. Ltd. and Yaskawa Electric Corporation.

Answers to key questions in this report:

  • How has the global robotic welding market behaved so far and how will it behave in the coming years?
  • What has been the impact of COVID-19 on the Global Robotic Welding Market?
  • What are the main regional markets?
  • What is the market breakdown by type?
  • What is the market breakdown by payload?
  • What is the market breakdown by end user?
  • What are the different stages of the industry value chain?
  • What are the key drivers and challenges in the industry?
  • What is the structure of the global robotic welding market and who are the key players?
  • How competitive is the industry?

Main topics covered:

1 Preface

2 Scope and methodology

3 Executive summary

4 Presentation
4.1 Overview
4.2 Key Industry Trends

5 Global Robotic Welding Market
5.1 Market Overview
5.2 Market Performance
5.3 Impact of COVID-19
5.4 Market Forecast

6 Market Breakdown by Type
6.1 Spot welding
6.1.1 Market trends
6.1.2 Market Forecast
6.2 Arc welding
6.2.1 Market trends
6.2.2 Market Forecast
6.3 Others
6.3.1 Market trends
6.3.2 Market Forecast

7 Market Breakdown by Payload
7.1 Less than 50 kg
7.1.1 Market trends
7.1.2 Market Forecast
7.2 50-150Kg
7.2.1 Market trends
7.2.2 Market Forecast
7.3 More than 150 kg
7.3.1 Market trends
7.3.2 Market Forecast

8 Market Breakdown by End User
8.1 Automotive and transportation
8.1.1 Market trends
8.1.2 Market Forecast
8.2 Electricity and electronics
8.2.1 Market trends
8.2.2 Market Forecast
8.3 Metals and machinery
8.3.1 Market trends
8.3.2 Market Forecast
8.4 Others
8.4.1 Market trends
8.4.2 Market Forecast

9 Market Breakdown by Region

10 SWOT Analysis

11 Value chain analysis

12 Analysis of the five forces of carriers

13 Price Analysis

14 Competitive landscape
14.1 Market structure
14.2 Key Players
14.3 Profiles of Key Players
14.3.1 ABB Ltd. Company overview Product Portfolio Finance SWOT Analysis
14.3.2 Comau (Stellantis SA) Presentation of the company Product portfolio
14.3.3 DAIHEN Company Company overview Product Portfolio Finance
14.3.4 FANUC Company Company Overview Product portfolio Finance SWOT Analysis
14.3.5 Hyundai Robotics Co.Ltd. (Hyundai Heavy Industries Group) Company Overview Product portfolio
14.3.6 Kawasaki Heavy Industries Ltd. Company Overview Product portfolio Finance SWOT Analysis
14.3.7 KUKA S.A. Company Overview Product Portfolio Finance SWOT Analysis
14.3.8 Nachi-Fujikoshi Corp. Company Overview Product portfolio Finance SWOT Analysis
14.3.9 Panasonic Company Company Overview Product Portfolio Finance SWOT Analysis
14.3.10 Siasun Robot & Automation Co.Ltd. Company Overview Product Portfolio Finance
14.3.11 Yaskawa Electric Corporation Company Overview Product Portfolio Finance

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