What is the present valuation and projected CAGR of the 3d printed jewelry market?
The 3D printed jewelry market size has grown rapidly in recent years. It will grow from $3.57 billion in 2024 to $4.21 billion in 2025 at a compound annual growth rate (CAGR) of 17.8%. The growth in the historic period can be attributed to the use of eco-friendly materials and reduced waste, reduced production costs compared to traditional methods, the integration of 3D printing in design and jewelry-making education, empowering designers to explore innovative forms and faster turnaround times for design iterations.
The 3D printed jewelry market size is expected to see rapid growth in the next few years. It will grow to $8.05 billion in 2029 at a compound annual growth rate (CAGR) of 17.6%. The growth in the forecast period can be attributed to the growing preference for sustainable manufacturing processes, increasing demand for personalized and bespoke jewelry, alignment with consumer preferences for unique and trendy jewelry designs, the ability to quickly iterate and produce prototypes for new designs, and the expansion of online platforms and e-commerce for selling custom jewelry. Major trends in the forecast period include the integration of AI and machine learning, technologies that enable faster printing processes and higher production rates, advancements in material innovation, utilization of the Internet of Things (IoT) for smart jewelry applications, and the introduction of materials suitable for medical and wearable tech applications.
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What key drivers have fueled the 3d printed jewelry market’s development over the years?
Rising demand for fashion-forward accessories is expected to propel the growth of the 3D printed jewelry market going forward. Fashion-forward accessories are stylish and trend-setting items that reflect the latest fashion trends and innovative designs. The demand for fashion-forward accessories is growing due to increasing consumer interest in personal expression and trend-driven styles. 3D-printed jewelry enables rapid and cost-effective production of unique, customizable designs, driving innovation and accessibility in fast fashion accessories. For instance, in March 2023, according to the Silver Jewelry Sales Results 2022 report published by The Silver Institute, a US-based nonprofit association, 52% of retailers reported an 11-25% increase in silver jewelry sales in 2022 compared to 2021, with an average increase of 14%, and noted higher sales during the 2022 holiday season compared to the 2021 holiday season. Therefore, rising demand for fashion-forward accessories is driving the growth of the 3D printed jewelry market.
What is the segmentation for the 3d printed jewelry market?
The 3D printed jewelry market covered in this report is segmented –
1) By Product: Necklace, Ring, Earring, Bracelet
2) By Material: Gold, Silver, Brass, Bronze, Polyamide, Wax, Alumide, Other Materials
3) By Technology: Stereolithography (SLA), Selective Laser Sintering (SLS), Digital Light Processing (DLP), Fused Depositing Modelling (FDM), Other Technologies
4) By Application: Prototyping, Functional Part Manufacturing, Tooling
5) By End User: Jewelry Store, Mall, Other End Users
Subsegments:
1) By Necklace: Pendant Necklaces, Choker Necklaces, Statement Necklaces
2) By Ring: Engagement Rings, Wedding Bands, Fashion Rings
3) By Earring: Stud Earrings, Hoop Earrings, Drop Earrings
4) By Bracelet: Bangle Bracelets, Cuff Bracelets, Link Bracelets
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Who are the most influential companies in the 3d printed jewelry market?
Major companies operating in the 3D printed jewelry market are Stratasys Ltd., 3D Systems Inc., Proto Labs Inc., Materialise NV, Formlabs Inc., EnvisionTEC, The ExOne Company, Concept Laser GmbH, Shapeways Inc., Imaginarium, B9Creations LLC, Solidscape Inc., Asiga, Matsuura Machinery Corporation, Cookson Precious Metals Ltd., Progold S.p.A., MIRAKIN, Nervous System Inc., RADIAN Jewelry, GUY & MAX, Vowsmith
What are the top industry trends projected to impact the 3d printed jewelry market?
Major companies operating in the 3D printed jewelry market are developing technologically advanced solutions, such as the MJP 300W 3D printer, to enhance production efficiency, improve design capabilities, and ensure high-quality finishes in their jewelry manufacturing processes. The MJP 300W 3D printer refers to a high-performance additive manufacturing system developed by 3D Systems that utilizes MultiJet Printing (MJP) technology. For instance, in October 2023, 3D Systems, a US-based engineering company, launched the MJP 300W 3D printer and VisiJet Wax Jewel Ruby material to enhance the jewelry manufacturing sector. Featuring two new print modes—QHD and UHD—that significantly improve resolution and surface quality while reducing post-processing needs. Complementing this, the VisiJet Wax Jewel Ruby material offers a robust, temperature-stable wax that maintains intricate design details during molding, reduces breakage risks, and allows for efficient stone pre-setting in the production process.
What are the major regional insights for the 3d printed jewelry market, and which region holds the top position?
North America was the largest region in the 3D printed jewelry market in 2024. Asia-Pacific is expected to be the fastest-growing region in the forecast period. The regions covered in the 3D printed jewelry market report are Asia-Pacific, Western Europe, Eastern Europe, North America, South America, Middle East, Africa.
What Does The 3D Printed Jewelry Market Report 2025 Offer?
The 3d printed jewelry market research report from The Business Research Company offers global market size, growth rate, regional shares, competitor analysis, detailed segments, trends, and opportunities.
Three-dimensional (3D) printed jewelry refers to accessories created using additive manufacturing technology, where designs are digitally crafted and then produced layer by layer with materials such as metal, resin, or plastic. This technique allows for intricate, custom designs that are often difficult or impossible to achieve with traditional methods. It offers significant advantages in terms of design flexibility, speed, and cost efficiency.
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