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Orthopedic Software Market: Global Industry Analysis, Trends, Market Size, and Forecasts up to 2030

  • Report

  • 255 Pages
  • October 2023
  • Region: Global
  • Infinium Global Research
  • ID: 4663010
The report on the global orthopedic software market provides qualitative and quantitative analysis for the period from 2021-2030. The global orthopedic software market was valued at USD 336.018 million in 2022 and is expected to reach USD 549.58 million in 2030, with a CAGR of 5.42% during the forecast period 2023-2030. The study on orthopedic software market covers the analysis of the leading geographies such as North America, Europe, Asia Pacific, and RoW for the period of 2021-2030.

A supercapacitor is sometimes known as an Ultracapacitor (UC) (SC). It is a high-capacity capacitor with less stringent voltage requirements and a substantially greater capacitance value than typical capacitors. It bridges the gap between electrolytic capacitors and rechargeable batteries. This capacitor can store 10 to 100 times more energy per unit of volume or mass than an electrolytic capacitor. They also absorb and transfer energy more quickly than batteries and can withstand more charge and discharge cycles than rechargeable batteries. In automobiles, buses, trains, cranes, and elevators, supercapacitors are used for regenerative braking, short-term energy storage, or burst-mode power delivery. Smaller devices are also used to power Static Random-access Memory (SRAM). Supercapacitors are seen as an alternative to Li-ion batteries since they are superior energy storage technologies. Supercapacitors are appealing to a wide range of industries, including aviation, automobiles, and telecommunications, due to their high-power density and rapid charging and discharging characteristics.

As the demand for renewable energy sources rises, the market is expected to grow. Supercapacitors provide better energy and power densities than traditional capacitors and batteries, respectively. In wind and solar power plants, supercapacitors are mostly employed. Supercapacitors are utilized in numerous different applications, including the generation of renewable energy power, power systems, transportation, and many others. It has a broad temperature range, a high charge and discharges current capability, and very high efficiency. However, supercapacitors are not employed as long-term energy storage devices since they drain faster than lithium-ion batteries. Self-discharge causes the supercapacitor to lose charge. A battery's voltage output is more or less constant until it runs out, unlike a supercapacitor, whose voltage output drops linearly with charge. As a result, the supercapacitor is unreliable for uses that necessitate a constant energy source for a protracted period of time. The key restraining factor is the need for long-term storage, which is essential for energy applications. Although, the increasing awareness and adoption of renewable energy sources are creating opportunity for the supercapacitor market. These energy storage devices play a crucial role in enhancing the efficiency and reliability of renewable energy systems, presenting significant opportunities for market expansion.

Asia Pacific holds the largest market share in the supercapacitor industry; countries such as China, Japan, and South Korea were prominent players in this region. The rapid industrialization, adoption of Electric Vehicles (EVs), and the integration of renewable energy sources contributed significantly to the growth. Additionally, the presence of major manufacturers and the increasing demand for consumer electronics further boosted the market's prominence in APAC. Moreover, North America is fastest growing region in the supercapacitor market. The region's focus on electric transportation, renewable energy, and grid infrastructure projects contributed to this growth. The United States, in particular, saw an uptick in supercapacitor adoption, driven by advancements in EV technology and energy storage solutions. Initiatives promoting sustainable energy and government incentives also played a pivotal role in accelerating market growth.

Report Findings

1) Drivers

  • The rising aging population coupled with increasing orthopedic problems and injuries drives the orthopedic software market.
  • Increasing adoption of minimal invasive surgeries drives the orthopedic software market.

2) Restraints

  • Lack of skilled and trained resources hampers the orthopedic software market.

3) Opportunities

  • Advancements in technologies such as 3D printing and AI offers significant opportunities for innovation and expansion in the orthopedic software market.

Research Methodology

A) Primary Research

The primary research involves extensive interviews and analysis of the opinions provided by the primary respondents. The primary research starts with identifying and approaching the primary respondents.

The primary respondents approached include:

1. Key Opinion Leaders
2. Internal and External subject matter experts
3. Professionals and participants from the industry

The primary research respondents typically include:

1. Executives working with leading companies in the market under review
2. Product/brand/marketing managers
3. CXO level executives
4. Regional/zonal/country managers
5. Vice President level executives.

B) Secondary Research

Secondary research involves extensive exploring through the secondary sources of information available in both the public domain and paid sources. Each research study is based on over 500 hours of secondary research accompanied by primary research. The information obtained through the secondary sources is validated through the crosscheck on various data sources.

The secondary sources of the data typically include:

1. Company reports and publications
2. Government/institutional publications
3. Trade and associations journals
4. Databases such as WTO, OECD, World Bank, and among others.
5. Websites and publications by research agencies

Segments Covered

The global orthopedic software market is segmented on the basis of product, mode of delivery, and application.

The Global Orthopedic Software Market by Product

  • Preoperative Planning
  • Orthopedic PACS
  • Orthopedic EHR
  • Orthopedic Practice Management
  • Orthopedic Revenue Cycle Management

The Global Orthopedic Software Market by Mode of Delivery

  • On-premises
  • Web-based and Cloud-based

The Global Orthopedic Software Market by Application

  • Orthopedic Surgery
  • Joint Replacement
  • Pediatric Assessment
  • Fracture Management

Company Profiles

The companies covered in the report include:

  • Materialise
  • Merge Healthcare Inc.
  • Greenway Health, LLC
  • GE HealthCare
  • NXGN Management, LLC.
  • CureMD Healthcare
  • Medstrat
  • Brainlab AG
  • Koninklijke Philips N.V.
  • Vorum Research Corp.

What does this Report Deliver?

1. Comprehensive analysis of the global as well as regional markets of the orthopedic software market.

2. Complete coverage of all the segments in the orthopedic software market to analyze the trends, developments in the global market and forecast of market size up to 2030.

3. Comprehensive analysis of the companies operating in the global orthopedic software market. The company profile includes analysis of product portfolio, revenue, SWOT analysis and latest developments of the company.

4. The Growth Matrix presents an analysis of the product segments and geographies that market players should focus to invest, consolidate, expand and/or diversify.


This product will be delivered within 1-3 business days.

Table of Contents

Chapter 1. Preface
1.1. Report Description
1.2. Research Methods
1.3. Research Approaches
Chapter 2. Executive Summary
2.1. Orthopedic Software Market Highlights
2.2. Orthopedic Software Market Projection
2.3. Orthopedic Software Market Regional Highlights
Chapter 3. Global Orthopedic Software Market Overview
3.1. Introduction
3.2. Market Dynamics
3.2.1. Drivers
3.2.2. Restraints
3.2.3. Opportunities
3.3. Porter's Five Forces Analysis
3.4. Growth Matrix Analysis
3.4.1. Growth Matrix Analysis by Product
3.4.2. Growth Matrix Analysis by Mode Of Delivery
3.4.3. Growth Matrix Analysis by Application
3.4.4. Growth Matrix Analysis by Region
3.5. Value Chain Analysis of Orthopedic Software Market
Chapter 4. Orthopedic Software Market Macro Indicator Analysis
Chapter 5. Company Profiles and Competitive Landscape
5.1. Competitive Landscape in the Global Orthopedic Software Market
5.2. Companies Profiles
5.2.1. Materialise
5.2.2. Merge Healthcare Inc.
5.2.3. Greenway Health, LLC
5.2.4. GE HealthCare
5.2.5. NXGN Management, LLC.
5.2.6. CureMD Healthcare
5.2.7. Medstrat
5.2.8. Brainlab AG
5.2.9. Koninklijke Philips N.V.
5.2.10. Vorum Research Corp.
Chapter 6. Global Orthopedic Software Market by Product
6.1. Preoperative Planning
6.2. Orthopedic PACS
6.3. Orthopedic EHR
6.4. Orthopedic Practice Management
6.5. Orthopedic Revenue Cycle Management
Chapter 7. Global Orthopedic Software Market by Mode of Delivery
7.1. On-premises
7.2. Web-based and Cloud-based
Chapter 8. Global Orthopedic Software Market by Application
8.1. Orthopedic Surgery
8.2. Joint Replacement
8.3. Pediatric Assessment
8.4. Fracture Management
Chapter 9. Global Orthopedic Software Market by Region 2023-2030
9.1. North America
9.1.1. North America Orthopedic Software Market by Product
9.1.2. North America Orthopedic Software Market by Mode of Delivery
9.1.3. North America Orthopedic Software Market by Application
9.1.4. North America Orthopedic Software Market by Country
9.1.4.1. The U.S. Orthopedic Software Market
9.1.4.1.1. The U.S. Orthopedic Software Market by Product
9.1.4.1.2. The U.S. Orthopedic Software Market by Mode of Delivery
9.1.4.1.3. The U.S. Orthopedic Software Market by Application
9.1.4.2. Canada Orthopedic Software Market
9.1.4.2.1. Canada Orthopedic Software Market by Product
9.1.4.2.2. Canada Orthopedic Software Market by Mode of Delivery
9.1.4.2.3. Canada Orthopedic Software Market by Application
9.1.4.3. Mexico Orthopedic Software Market
9.1.4.3.1. Mexico Orthopedic Software Market by Product
9.1.4.3.2. Mexico Orthopedic Software Market by Mode of Delivery
9.1.4.3.3. Mexico Orthopedic Software Market by Application
9.2. Europe
9.2.1. Europe Orthopedic Software Market by Product
9.2.2. Europe Orthopedic Software Market by Mode of Delivery
9.2.3. Europe Orthopedic Software Market by Application
9.2.4. Europe Orthopedic Software Market by Country
9.2.4.1. Germany Orthopedic Software Market
9.2.4.1.1. Germany Orthopedic Software Market by Product
9.2.4.1.2. Germany Orthopedic Software Market by Mode of Delivery
9.2.4.1.3. Germany Orthopedic Software Market by Application
9.2.4.2. United Kingdom Orthopedic Software Market
9.2.4.2.1. United Kingdom Orthopedic Software Market by Product
9.2.4.2.2. United Kingdom Orthopedic Software Market by Mode of Delivery
9.2.4.2.3. United Kingdom Orthopedic Software Market by Application
9.2.4.3. France Orthopedic Software Market
9.2.4.3.1. France Orthopedic Software Market by Product
9.2.4.3.2. France Orthopedic Software Market by Mode of Delivery
9.2.4.3.3. France Orthopedic Software Market by Application
9.2.4.4. Italy Orthopedic Software Market
9.2.4.4.1. Italy Orthopedic Software Market by Product
9.2.4.4.2. Italy Orthopedic Software Market by Mode of Delivery
9.2.4.4.3. Italy Orthopedic Software Market by Application
9.2.4.5. Rest of Europe Orthopedic Software Market
9.2.4.5.1. Rest of Europe Orthopedic Software Market by Product
9.2.4.5.2. Rest of Europe Orthopedic Software Market by Mode of Delivery
9.2.4.5.3. Rest of Europe Orthopedic Software Market by Application
9.3. Asia Pacific
9.3.1. Asia Pacific Orthopedic Software Market by Product
9.3.2. Asia Pacific Orthopedic Software Market by Mode of Delivery
9.3.3. Asia Pacific Orthopedic Software Market by Application
9.3.4. Asia Pacific Orthopedic Software Market by Country
9.3.4.1. China Orthopedic Software Market
9.3.4.1.1. China Orthopedic Software Market by Product
9.3.4.1.2. China Orthopedic Software Market by Mode of Delivery
9.3.4.1.3. China Orthopedic Software Market by Application
9.3.4.2. Japan Orthopedic Software Market
9.3.4.2.1. Japan Orthopedic Software Market by Product
9.3.4.2.2. Japan Orthopedic Software Market by Mode of Delivery
9.3.4.2.3. Japan Orthopedic Software Market by Application
9.3.4.3. India Orthopedic Software Market
9.3.4.3.1. India Orthopedic Software Market by Product
9.3.4.3.2. India Orthopedic Software Market by Mode of Delivery
9.3.4.3.3. India Orthopedic Software Market by Application
9.3.4.4. South Korea Orthopedic Software Market
9.3.4.4.1. South Korea Orthopedic Software Market by Product
9.3.4.4.2. South Korea Orthopedic Software Market by Mode of Delivery
9.3.4.4.3. South Korea Orthopedic Software Market by Application
9.3.4.5. Australia Orthopedic Software Market
9.3.4.5.1. Australia Orthopedic Software Market by Product
9.3.4.5.2. Australia Orthopedic Software Market by Mode of Delivery
9.3.4.5.3. Australia Orthopedic Software Market by Application
9.3.4.6. Rest of Asia-Pacific Orthopedic Software Market
9.3.4.6.1. Rest of Asia-Pacific Orthopedic Software Market by Product
9.3.4.6.2. Rest of Asia-Pacific Orthopedic Software Market by Mode of Delivery
9.3.4.6.3. Rest of Asia-Pacific Orthopedic Software Market by Application
9.4. RoW
9.4.1. RoW Orthopedic Software Market by Product
9.4.2. RoW Orthopedic Software Market by Mode of Delivery
9.4.3. RoW Orthopedic Software Market by Application
9.4.4. RoW Orthopedic Software Market by Sub-region
9.4.4.1. Latin America Orthopedic Software Market
9.4.4.1.1. Latin America Orthopedic Software Market by Product
9.4.4.1.2. Latin America Orthopedic Software Market by Mode of Delivery
9.4.4.1.3. Latin America Orthopedic Software Market by Application
9.4.4.2. Middle East Orthopedic Software Market
9.4.4.2.1. Middle East Orthopedic Software Market by Product
9.4.4.2.2. Middle East Orthopedic Software Market by Mode of Delivery
9.4.4.2.3. Middle East Orthopedic Software Market by Application
9.4.4.3. Africa Orthopedic Software Market
9.4.4.3.1. Africa Orthopedic Software Market by Product
9.4.4.3.2. Africa Orthopedic Software Market by Mode of Delivery
9.4.4.3.3. Africa Orthopedic Software Market by Application

Companies Mentioned

  • Materialise
  • Merge Healthcare Inc.
  • Greenway Health, LLC
  • GE HealthCare
  • NXGN Management, LLC.
  • CureMD Healthcare
  • Medstrat
  • Brainlab AG
  • Koninklijke Philips N.V.
  • Vorum Research Corp.

Table Information