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3D printing (3DP) or Additive Manufacturing (AM) is used to convert a 3D model into a three dimensional object and the material used for this purpose is called 3DP material. 3D printing has begun to flourish in various application areas in healthcare such as dental, medical, implants, drug manufacturing and so on.
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ROLE AND OPPORTUNITIES: BY TECHNOLOGY (LBM, EBM,
STEREOLITHOGRAPHY AND OTHERS); BY MATERIAL (METAL, CELLS AND
OTHERS); BY APPLICATION (IMPLANTS, TISSUE ENGINEERING AND
OTHERS) & BY GEOGRAPHY
3D PRINTING IN HEALTHCARE MARKET FORECAST (2014 - 2020)
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TABLE OF CONTENTS
1 Executive Summary
2 Global 3D Printing In Healthcare Market Overview
2.1 Introduction
2.2 Stakeholders
3 Market Landscape
3.1 Market Player Analysis
3.2 Comparative Analysis
3.2.1 Product Benchmarking
4 3D Printing in Healthcare Market Market Forces
4.1 Market Drivers
4.1.1 Increasing Demand for Implants in The Health Care Industry
4.1.2 Increased Investments In R&D From New Entrants Due to Growing
Adaption of 3D Printing Technology
4.2 Market Constraints
4.2.1 High Costs of Printers And Limited Types of Materials Are Accessible By A
Printer
4.3 Market Challenge
4.3.1 Sustainability of New Entrants
4.3.2 3D Printing of Organ Implants and Drug Synthesis
4.4 Attractiveness of The 3D Printing in Healthcare
4.4.1 Power of Suppliers
4.4.2 Power of Customers
4.4.3 Threat of New Entrants
4.4.4 Threat of Substitution
4.4.5 Degree of Competition
5 Global 3D Printing in Healthcare Market Strategic Analysis
5.1 Value Chain Analysis
5.2 Pricing Analysis
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5.2.1 3DP Materials
5.2.2 3D Printers in Healthcare
5.3 Opportunities Analysis
5.3.1 Evolution in 3D Printing (3DP) Materials Market
5.3.2 Innovations in 3D Printed Organs
5.4 Opportunities Analysis
5.4.1 Evolution in 3D Printing (3DP) Materials Market
5.4.2 Innovations In 3D Printed Organs
5.5 Market Life Cycle Analysis
5.6 Supplier And Distributor Analysis
6 Global 3D Printing in Healthcare Market by Technology
6.1 Introduction
6.2 Laser Beam Melting (LBM)
6.3 Electron Beam Melting (EBM)
6.4 Stereo Lithography
6.5 Photo Polymerization
6.6 Droplet Deposition
6.7 Laminated Object Manufacturing
6.8 Wax Deposition Modeling
6.9 Bio Printing
7 Global 3D Printing in Healthcare Market - by Material
7.1 Donor Cells
7.2 Plastics
7.3 Metals
7.4 Ceramics
7.5 Bone Cement
7.6 Others
8 Global 3D Printing in Healthcare Market by Application
8.1 Introduction
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8.1.1 Rising Implants and Surgeries Create Demand for 3D
Printing
8.2 Implants and Prosthetics
8.3 Surgical Guides
8.4 Hearing Aids
8.5 Tissue Engineering
8.6 Dental Implants:
8.7 Medical Components:
8.8 Drug Screening
9 By Geography
9.1 Introduction
9.2 Americas
9.2.1 U.S
9.2.2 Canada
9.2.3 Brazil
9.3 Europe
9.3.1 U.K
9.3.2 Germany
9.3.3 France
9.3.4 Italy
9.3.5 Spain
9.4 Asia-Pacific
9.4.1 China
9.4.2 Japan
9.4.3 India
9.4.4 Australia
9.5 Rest Of World
10 Company Profiles
10.1 Javelin Technologies Inc.
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10.1.1 Business Overview
10.1.2 Financials
10.1.3 Products
10.1.4 Developments
10.2 Medical Modeling Inc.
10.2.1 Business Overview
10.2.2 Financials
10.2.3 Products & Services
10.2.4 Developments
10.3 Nano3d Biosciences Inc.
10.3.1 Business Overview
10.3.2 Financials
10.3.3 Products & Services
10.3.4 Developments
10.4 Tissue Regeneration Systems Inc.
10.4.1 Business Overview
10.4.2 Financials
10.4.3 Products
10.4.4 Developments
10.5 XILLOC Medical
10.5.1 Business Overview
10.5.2 Products
10.5.3 Developments
10.6 3d BIOTEK Llc.
10.6.1 Overview
10.6.2 Products
10.6.3 Development
10.7 3T RPD Ltd.
10.7.1 Overview
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10.7.2 Products
10.7.3 Developments
10.8 Alphaform AG
10.8.1 Overview
10.8.2 Financials
10.8.3 Developments
10.9 Organovo Holdings Inc.
10.9.1 Overview
10.9.2 Financials
10.9.3 Developments
10.10 BELTONE A/S
10.10.1 Business Overview
10.10.2 Financials
10.10.3 Products
10.10.4 Developments
10.11 GYROBOT Limited
10.11.1 Business Overview
10.11.2 Financials
10.11.3 Products
10.11.4 Developments
10.12 Stryker Corporation
10.12.1 Business Overview
10.12.2 Financials
10.12.3 Products
10.12.4 Developments
10.13 3D Systems
10.13.1 Business Overview
10.13.2 Financials
10.13.3 Products
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10.13.4 Strategy
10.13.5 Developments
10.14 Stratasys Ltd.
10.14.1 Business Overview
10.14.2 Financials
10.14.3 Products
10.14.4 Strategy
10.14.5 Developments
10.15 ARCAM
10.15.1 Business Overview
10.15.2 Financials
10.15.3 Products
10.15.4 Strategy
10.15.5 Developments
10.16 Envisiontec GMBH
10.16.1 Business Overview
10.16.2 Financials
10.16.3 Products
10.16.4 Strategy
10.16.5 Developments
10.17 EOS GMBH Electro Optical Systems
10.17.1 Business Overview
10.17.2 Financials
10.17.3 Products
10.17.4 Strategy
10.17.5 Developments
10.18 Materialise N.V.
10.18.1 Business Overview
10.18.2 Financials
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10.18.3 Products
10.18.4 Strategy
10.18.5 Developments
10.19 Oxford Performance Materials
10.19.1 Business Overview
10.19.2 Financials
10.19.3 Products
10.19.4 Strategy
10.19.5 Developments
10.20 Tethon 3D
10.20.1 Business Overview
10.20.2 Products
10.20.3 Strategy
10.20.4 Developments
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LIST OF TABLES
Table 1 Product Benchmarking for Global 3D Printing in Healthcare Market By Application
($)
Table 2 Global 3D Printing in Healthcare Market Pricing Analysis ($)
Table 3 Global 3D Printing in Healthcare Market Revenue, By Technology, 2014-2020 ($M)
Table 4 Global 3D Printing in Healthcare Market Revenue, By Laser Beam Melting, By
Application, 2014-2020 ($M)
Table 5 Global 3D Printing in Healthcare Market Revenue, By Laser Beam Melting, By
Material, 2014-2020 ($M)
Table 6 Global 3D Printing in Healthcare Market Revenue, By Laser Beam Melting, By
Geography, 2014-2020 ($M)
Table 7 Global 3D Printing in Healthcare Market Revenue, By Electron Beam Melting, By
Application, 2014-2020 ($M)
Table 8 Global 3D Printing in Healthcare Market Revenue, By Electron Beam Melting, By
Material, 2014-2020 ($M)
Table 9 Global 3D Printing in Healthcare Market Revenue, By Electron Beam Melting, By
Geography, 2014-2020 ($M)
Table 10 Global 3D Printing in Healthcare Market Revenue, By Stereolithography, By
Application, 2014-2020 ($M)
Table 11 Global 3D Printing in Healthcare Market Revenue, By Stereolithography, By Material,
2014-2020 ($M)
Table 12 Global 3D Printing in Healthcare Market Revenue, By Stereolithography, By
Geography, 2014-2020 ($M)
Table 13 Global 3D Printing in Healthcare Market Revenue, By Other Technologies, By
Application, 2014-2020 ($M)
Table 14 Global 3D Printing in Healthcare Market Revenue, By Other Technologies, By
Material, 2014-2020 ($M)
Table 15 Global 3D Printing in Healthcare Market Revenue, By Other Technologies, By
Geography, 2014-2020 ($M)
Table 16 Global 3D Printing in Healthcare Market Revenue, By Material, 2014-2020 ($M)
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Table 17 Global 3D Printing in Healthcare Market Revenue, By Cells, By
Technology, 2014-2020 ($M)
Table 18 Global 3D Printing in Healthcare Market Revenue, By Cells, By Application, 2014-2020
($M)
Table 19 Global 3D Printing in Healthcare Market Revenue, By Cells, By Geography, 2014-2020
($M)
Table 20 Global 3D Printing in Healthcare Market Revenue, By Plastics/Polymers, By
Technology, 2014-2020 ($M)
Table 21 Global 3D Printing in Healthcare Market Revenue, By Plastics/Polymers, By
Application, 2014-2020 ($M)
Table 22 Global 3D Printing in Healthcare Market Revenue, By Plastics/Polymers, By
Geography, 2014-2020 ($M)
Table 23 Global 3D Printing in Healthcare Market Revenue, By Metals, By Technology, 2014-
2020 ($M)
Table 24 Global 3D Printing in Healthcare Market Revenue, By Metals, By Application, 2014-
2020 ($M)
Table 25 Global 3D Printing in Healthcare Market Revenue, By Metals, By Geography, 2014-
2020 ($M)
Table 26 Global 3D Printing in Healthcare Market Revenue, By Other Materials, By Technology,
2014-2020 ($M)
Table 27 Global 3D Printing in Healthcare Market Revenue, By Other Materials, By Application,
2014-2020 ($M)
Table 28 Global 3D Printing in Healthcare Market Revenue, By Other Materials, By Geography,
2014-2020 ($M)
Table 29 Global 3D Printing in Healthcare Market Revenue, By Application, 2014-2020 ($M)
Table 30 Global 3D Printing in Healthcare Market Revenue in Implants and Prosthetics, By
Technology, 2014-2020 ($M)
Table 31 Global 3D Printing in Healthcare Market Revenue in Implants and Prosthetics, By
Material, 2014-2020 ($M)
Table 32 Global 3D Printing in Healthcare Market Revenue in Implants and Prosthetics, By
Geography, 2014-2020 ($M)
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Table 33 Global 3D Printing in Healthcare Market Revenue in Surgical Guides,
By Technology, 2014-2020 ($M)
Table 34 Global 3D Printing in Healthcare Market Revenue in Surgical Guides, By Material,
2014-2020 ($M)
Table 35 Global 3D Printing in Healthcare Market Revenue in Surgical Guides, By Geography,
2014-2020 ($M)
Table 36 Global 3D Printing in Healthcare Market Revenue in Hearing Aids, By Technology,
2014-2020 ($M)
Table 37 Global 3D Printing in Healthcare Market Revenue in Hearing Aids, By Material, 2014-
2020 ($M)
Table 38 Global 3D Printing in Healthcare Market Revenue in Hearing Aids, By Geography,
2014-2020 ($M)
Table 39 Global 3D Printing in Healthcare Market Revenue in Tissue Engineering, By
Technology, 2014-2020 ($M)
Table 40 Global 3D Printing in Healthcare Market Revenue in Tissue Engineering, By Material,
2014-2020 ($M)
Table 41 Global 3D Printing in Healthcare Market Revenue in Tissue Engineering, By
Geography, 2014-2020 ($M)
Table 42 Global 3D Printing in Healthcare Market Revenue, By Geography, 2014-2020 ($M)
Table 43 Americas: 3D Printing in Healthcare Market Revenue, By Country, 2014-2020 ($M)
Table 44 Americas: 3D Printing in Healthcare Market Revenue, By Technology, 2014-2020 ($M)
Table 45 Americas: 3D Printing in Healthcare Market Revenue, By Material, 2014-2020 ($M)
Table 46 Americas: 3D Printing in Healthcare Market Revenue, By Application, 2014-2020 ($M)
Table 47 Europe: 3D Printing in Healthcare Market Revenue, By Country, 2014-2020 ($M)
Table 48 Europe: 3D Printing in Healthcare Market Revenue, By Technology, 2014-2020 ($M)
Table 49 Europe: 3D Printing in Healthcare Market Revenue, By Material, 2014-2020 ($M)
Table 50 Europe: 3D Printing in Healthcare Market Revenue, By Application, 2014-2020 ($M)
Table 51 APAC: 3D Printing in Healthcare Market Revenue, By Country, 2014-2020 ($M)
Table 52 APAC: 3D Printing in Healthcare Market Revenue, By Technology, 2014-2020 ($M)
Table 53 APAC: 3D Printing in Healthcare Market Revenue, By Material, 2014-2020 ($M)
Table 54 APAC: 3D Printing in Healthcare Market Revenue, By Application, 2014-2020 ($M)
Table 55 RoW: 3D Printing in Healthcare Market Revenue, By Country, 2014-2020 ($M)
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Table 56 RoW: 3D Printing in Healthcare Market Revenue, By Technology,
2014-2020 ($M)
Table 57 RoW: 3D Printing in Healthcare Market Revenue, By Material, 2014-2020 ($M)
Table 58 RoW: 3D Printing in Healthcare Market Revenue, By Application, 2014-2020 ($M)
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LIST OF FIGURES
Figure1 Global 3D Printing in Healthcare Market, By Geography, 2014 - 2020 ($M)
Figure2 Segmentation of Global 3D Printing in Healthcare Market
Figure3 Global 3D Printing in Healthcare Market Competitive Share Analysis, 2014(%)
Figure4 Global 3D Printing in Healthcare Market Share, By Technology, 2014 (%)
Figure5 Global 3D Printing in Healthcare Market Share, By Material, 2014 (%)
Figure6 Global 3D Printing in Healthcare Market Share, By Application, 2014 (%)
Figure7 Global 3D Printing in Healthcare Market Share, By Geography, 2014 (%)
Figure8 Americas 3D Printing in Healthcare Market Share, By Country, 2014 (%)
Figure9 Europe 3D Printing in Healthcare Market Share, By Country, 2014 (%)
Figure10 APAC 3D Printing in Healthcare Market Share, By Country, 2014 (%)
Figure11 RoW 3D Printing in Healthcare Market Share, By Country, 2014 (%)
Figure12 Global 3D Printing in Healthcare Market Recent Developments, By Year, 2012-2015
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KEY INSIGHTS
A research team from Japan has advanced in the direction of using a 3D printer to construct
custom-made skin and bones in January, 2015. The work combines proteins, stem cells and a
synthetic material comparable to collagen in order to elicit growth of the tissue.
Gyrobot Limited of U.K. in January, 2015 has created an economically viable flexible Flexy
hand 3D-printed prosthetic hand, which features Skin I Filaflex elastic filament supplied by
Recreus.
Organovo Holdings, Inc. has partnered with Johnson & Johnson in July, 2014 in order to
evaluate the safety and effectiveness of 3D-printed living tissue used for drug discovery.
A couple of cancer patients from South Africa were provided with 3D printed titanium jaw
implants that feature fusion of titanium powder and laser beams. The procedure is the first of
its kind in South Africa and third in the world.
A team of medical researchers from the Feinstein Institute for Medical Research in February,
2015 have utilised a 3D printer to make tracheal cartilage made up of collagen and
chondrocytes to create prototypes and improve the bio-prosthesis.
Plastics or polymers occupy the dominant type of materials used in 3D printing for medical
applications, occupying over 35% market share.
Laser beam melting or laser sintering is the rapidly growing technology to be used in 3D
printing in healthcare, owing to the increasing usage in making orthopaedic implants and
prosthesis.
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RESEARCH METHODOLOGY
The quantitative and qualitative data collected for the global 3D printing in Healthcare report is from a
combination of secondary and primary sources. Research interviews were conducted with executives
and/or mangers in the key product manufacturers and related organizations. These Key Opinion
Leaders (KOLs) were then provided a questionnaire to gather quantitative and qualitative inputs on
their operations, performance, strategies and views on the overall market, including key developments
and trends. Data from interviews is consolidated, checked for consistency and accuracy, and the final
market numbers are again validated by experts. The global 3D printing in Healthcare was split by grades
of polycarbonate resins, applications and geography based on different factors like primary and
secondary sources, understanding of the number of companies operating in each segment and also
KOL insights.
We have used various secondary sources such as directories, articles, white papers, newsletters, annual
reports and paid databases such as OneSource, Hoovers and Factiva to identify and collect information
for extensive commercial study of the global 3D printing in Healthcare.
The approach towards finding information regarding the market and forecasting has been quite
extensive. The key players in the market and its value chain were identified through secondary research
and their market opinions were also gathered in a similar way through telephonic interviews and
questionnaires. Interviews with key opinion leaders such as managers and marketing personnel were
used extensively in understanding the need and emergence of polycarbonate resin market.
We also have extensive database of contacts which were used to conduct primary interviews and also to
get their inputs using questionnaires.
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THE ARC ADVANTAGE
An analytical model lies at the core of our process, ensuring logical consistency throughout
our research. We complement the model with secondary data and interviews with industry
experts to reflect the latest trends. With our final expert validation, we provide you with
only the most accurate and actionable intelligence.
THE ARC PROCESS
ANALYTICAL MODEL BASE MODEL CONSOLIDATED MODEL ARC MODEL
Analytical Method
Base Method Consolidation Method
Delphi Verification
1. Granular breakdown of drivers into factors 2. Validate all factors in terms of their present impact on the market 3. Assign weights to these factors in terms of their relevance and impact on the market 4. Build the Analytical Model
1. Get a top-down estimate of the market 2. Follow it up with a bottom-up estimate of the market 3. Check forconsistency and new growth factors that are relevant over the next 10 Years 4. Build the Base model
1. Granular breakdown of drivers into factors 2. Validate all factors in terms of their present impact on the market. 3. Assign weights to these factors in terms of their relevance and impact on the market. 4. Build the Consolidated Model
1. Verify the findings of the model with experts from across the value chain 2. Verify the findings with players across small and large enterprises 3. Tweak the model and add new factors 4. Finalize the ARC Model
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