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Dental 3D Printing Devices Market size is estimated to grow by USD 1.59 billion between 2022 and 2027, accelerating at a CAGR of 20.5% during the forecast period. The cost efficiency and enhanced productivity of dental devices with 3D printing make it an attractive option for dental laboratories and professionals. The increased demand for personalized or customized dental devices, such as crowns, bridges, and implants, is driving the adoption of 3D printing technology in the dental industry. Additionally, the growing adoption of 3D printing technology by medical professionals for dental applications is further fueling market growth. Overall, these factors are driving innovation and growth in the market.
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This market report extensively covers market segmentation by application (restorative dentistry and orthodontics), end-user (dental laboratories, dental clinics, and others), and geography (North America, Europe, Asia, and Rest of World (ROW)). It also includes an in-depth analysis of drivers, trends, and challenges.
The dental 3D printing market share growth by the restorative dentistry segment will be significant during the forecast period. Restorative dentistry refers to the concept of restoration and replacement of lost or damaged teeth and the associated soft and hard tissues and bringing them back to a functional and aesthetic state. It includes dental mono-specialties, such as endodontics, periodontics, and prosthodontics (including implantology).
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The restorative dentistry segment showed a gradual increase in market share with USD 777.35 million in 2017. One of the major advantages of these technologies in restorative dentistry is the ability to print objects using various materials, including a wide range of metals, ceramics, and resins. These materials allow the manufacturing of complicated geometrical shapes without the need for special adjustments of the CAM unit; this also allows the use of different materials in different parts of the same object after controlled conduction.
The growth of this segment is primarily attributed to the increasing adoption of Dental 3D Printing Devices, which is driven by an increase in the global demand for the Industry.
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North America is projected to contribute 39% of the dental 3D printing market growth by 2027. North America accounted for the largest revenue share of the market in 2022. The US and Canada are significant revenue contributors to the market in North America.
The growth of the market in the region can be attributed to improved healthcare infrastructure, the high adoption of these devices in healthcare facilities, and the presence of established vendors. Furthermore, several professional societies in this region advocate using these technologies for medical and dental applications. For instance, the Society for Manufacturing Engineers has a dedicated medical 3D printing workgroup.
The market is experiencing rapid growth, driven by the increasing demand for advanced dental solutions. These devices are revolutionizing the field of dentistry by enabling the production of dental implants, dental crowns, dental bridges, and orthodontic appliances with greater precision and efficiency. They are also used to create clear aligners, dental surgical guides, and dental models for improved treatment planning and patient care. Dental 3D printing devices are highly valued in dental laboratories, dental clinics, and dental schools for their ability to produce customized dental solutions using a variety of dental materials. The integration of intraoral scanners, cone beam computed tomography (CBCT), and digital impression technologies further enhances the dental workflow and improves overall dental practice outcomes. Our researchers analyzed the data with 2022 as the base year, along with the key drivers, trends, and challenges. A holistic analysis of drivers will help companies refine their marketing strategies to gain a competitive advantage.
The cost efficiency and enhanced productivity of dental devices with 3D printing is the key factor driving the market growth. The cost-effectiveness of these is particularly beneficial for small-scale production, where traditional manufacturing methods are costly. With these, the cost of custom-printing an object remains the same regardless of volume, making low production volumes or highly specialized devices financially feasible. This is especially advantageous in dental practice, where digital impressions, dental design software, and dental workflow are essential. Dental professionals can benefit from the efficiency of these in dental manufacturing, allowing for faster production of dental devices and same-day solutions for patients.
In addition to cost efficiency, these also boost productivity. By using 3D modeling in the initial design phase to assess fit, form, and function, companies can achieve faster time-to-market and lower product development costs. This is especially relevant in dentistry, where dental materials, dental scanning, intraoral scanners, and cone beam computed tomography (CBCT) play crucial roles. The integration of these technologies with 3D printing allows for more efficient workflows and the creation of high-quality dental devices with greater precision and accuracy. This makes them faster than traditional production methods, which often involve long waiting times for implants and lead times for scheduling multiple dental appointments. The potential for same-day dental solutions with 3D printing streamlines the production process, making it more efficient overall.
Emerging technological advances will fuel the market growth. Technological advances in these technologies have helped reduce costs, improve the printing process, and make dental treatments less invasive. They have also helped in improving the printer production speed significantly. As a result, the volume capabilities of 3D printing systems are also expected to increase. Technological advances in segmentation software have made it easier to extract the surface of structures of interest automatically or semi-automatically from 3D medical imaging data. Such technological advances are increasing the adoption of these devices, which, in turn, is driving market growth.
The high initial setup cost of a dental 3D printing facility is a major challenge to market growth. The high capital cost restricts the widespread adoption of these devices. The high costs are attributed to the equipment required for the outsourcing of print service contracts and the advanced software used post-processing. An entry-level desktop SLA or DLP 3D printer typically costs less than USD 5,000 and can be used to produce molds using a special casting resin.
However, industrial-grade dental 3D printing devices can cost up to tens of thousands of dollars. High-end additive manufacturing printers (SLS, material jetting, and metal printing) typically cost USD 200,000-USD 850,000 and sometimes several million dollars. Also, end-users must bear the costs of the maintenance and repair of these devices. These factors restrict the widespread adoption of dental 3D printers.
The report includes the adoption lifecycle of the market, covering from the innovator’s stage to the laggard’s stage. It focuses on adoption rates in different regions based on penetration. Furthermore, the report also includes key purchase criteria and drivers of price sensitivity to help companies evaluate and develop their growth strategies.
Global Market Customer Landscape
Companies are implementing various strategies, such as strategic alliances, partnerships, mergers and acquisitions, geographical expansion, and product/service launches, to enhance their presence in the market.
Asiga - The company offers dental 3D printing devices. such as Max UV and Pro 4K. Also, under this segment, the company offers 3D printers, materials, and software for medical devices, industrial prototypes, and fine jewelry.
The report also includes detailed analyses of the competitive landscape of the market and information about 15 market vendors, including:
Qualitative and quantitative analysis of vendors has been conducted to help clients understand the wider business environment as well as the strengths and weaknesses of key market players. Data is qualitatively analyzed to categorize vendors as pure play, category-focused, industry-focused, and diversified; it is quantitatively analyzed to categorize vendors as dominant, leading, strong, tentative, and weak.
Our market research report forecasts revenue growth at global, regional & country levels and provides an analysis of the latest trends and growth opportunities from 2017 to 2027. The market has been segmented by application, end-user, and region.
The market is experiencing rapid growth, driven by advancements in Digital dentistry and CAD/CAM technology. These technologies enable the production of high-quality Dental prosthetics, including Dental implants, Dental crowns, and Dental bridges. The use of Orthodontic appliances such as Clear aligners is also increasing. Dental surgical guides and Dental models are being manufactured with precision using Resin-based printing, Metal-based printing, and Ceramic-based printing. Biocompatible materials are essential for ensuring safety. Dental software facilitates Dental scanning with tools like Intraoral scanners and Cone beam computed tomography (CBCT). This digital workflow enhances Dental design and Dental manufacturing processes, benefiting Dental practice and Dental professionals. Ongoing Dental research and Dental education through Dental conferences and Dental exhibitions drive Dental industry analysis and foster Dental innovation and Dental advancements. Dental schools and Dental associations play key roles in advancing Dental technology, including innovations in the Market.
The market is witnessing a surge in demand driven by advancements in digitally fabricated prosthetics and dental 3D printing materials. Dentists are increasingly adopting these technologies to create dentures, implant-supported restorations, and custom splints with greater precision and efficiency. This trend is further fueled by the rising prevalence of oral diseases and a growing emphasis on cosmetic dentistry and preventive dental care. Additionally, the availability of biocompatible resins and metal powders for 3D printing is expanding the possibilities in restorative dentistry. With increasing oral health awareness and subsidies for dental treatments, the market is poised for substantial growth, especially with an aging population.
Dental 3D Printing Devices Market Scope |
|
Report Coverage |
Details |
Page number |
166 |
Base year |
2022 |
Historical year |
2017-2021 |
Forecast period |
2023-2027 |
Growth momentum & CAGR |
Accelerate at a CAGR of 20.5% |
Market growth 2023-2027 |
USD 1.59 billion |
Market structure |
Fragmented |
YoY growth (%) |
19.45 |
Regional analysis |
North America, Europe, Asia, and the Rest of the World (ROW) |
Performing market contribution |
North America at 39% |
Key countries |
US, Germany, France, Japan, and China |
Competitive landscape |
Leading companies, Competitive Strategies, Consumer engagement scope |
Key companies profiled |
3D Systems Corp, Asiga, BEGO GmbH & Co. KG, Carbon Inc., Dentsply Sirona Inc., Desktop Metal Inc., DWS Srl, EOS GmbH, Formlabs Inc, General Electric Co., Institut Straumann AG, Mitsui Chemicals Inc., Planmeca Oy, Prodways Group, and Rapid Shape GmbH |
Market dynamics |
Parent market analysis, Market Forecasting, Market growth inducers and obstacles, Fast-growing and slow-growing segment analysis, COVID-19 impact and recovery analysis and future consumer dynamics, and Market condition analysis for the forecast period. |
Customization purview |
If our report has not included the data that you are looking for, you can reach out to our analysts and get segments customized. |
We can help! Our analysts can customize this report to meet your requirements. Get in touch
1 Executive Summary
2 Market Landscape
3 Market Sizing
4 Historic Market Size
5 Five Forces Analysis
6 Market Segmentation by Application
7 Market Segmentation by End-user
8 Customer Landscape
9 Geographic Landscape
10 Drivers, Challenges, and Trends
11 Vendor Landscape
12 Vendor Analysis
13 Appendix
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