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3d rapid prototyping printer makerbot replicator z18  (MakerBot Industries)

 
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    Structured Review

    MakerBot Industries 3d rapid prototyping printer makerbot replicator z18
    3d Rapid Prototyping Printer Makerbot Replicator Z18, supplied by MakerBot Industries, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/replicator+z18/3d+printer+makerbot+replicator+z18/pm39698645-67-1-5
    Average 90 stars, based on 1 article reviews
    3d rapid prototyping printer makerbot replicator z18 - by Bioz Stars, 2026-09
    90/100 stars

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    Related Articles

    Proximity Ligation Assay:

    Article Title: A Review of Natural Fiber-Based Filaments for 3D Printing: Filament Fabrication and Characterization
    Article Snippet: PLA , Wood , 0–5 , Wellzoom LLC/Single screw , 1.75 , - , Yes , Shenzhen 603S , [ ] . .. PLA , Soybean hulls , 0–10 , Leistritz/Twin crew , 1.75 , 1.74–1.76 , Yes , MakerBot Replicator Z18 , [ ] . .. ABS , Oil palm fiber , Shimadzu Autograph (AGSX), ASTM638 , Archimedes principle (ASTM D3800) , Tensile strength was increased by 60% by going from 0.15 to 0.4 MPa of fibre loading. After that, the Young’s modulus increased by 22.8%, from 16.1 to 18.3 MPa. As the fiber loading was increased from 3 to 7 wt%, the density of extruded filament decreased and the percentage of porosity rose. , [ ] .

    other:

    Article Title: Design of a special rigid wheel for traversing loose soil.
    Article Snippet: The cost of rapid prototyping of the plastic wheel is low and does not exceed 10$ by using a 3D printer, MakerBot Replicator Z18.

    Article Title: Comparison of ranking models to evaluate desktop 3D printers in a growing market
    Article Snippet: Although it has a high cost, the MakerBot - Replicator Z18 ranked in the top 50 % for its large build volume.

    Article Title: Feasibility study of low-dose computed tomography (CT) technology for maxillofacial bone three-dimensional (3D) printing in skeletal class III malocclusion
    Article Snippet: A 3D rapid prototyping printer (MakerBot Replicator Z18, USA) was used to print the 3D model using acrylonitrile butadiene styrene copolymer material.

    Positron Emission Tomography:

    Article Title: A review on extrusion-based 3D-printed nanogenerators for energy harvesting
    Article Snippet: Energy harvesting technologies now play a significant role in the successful deployment of self-powered electronic devices.. Researchers are working on small-scale energy generators fabricated with nanomaterials to harvest ambient energy.. Triboelectric nanogenerator (TENG) is an efficient method for harvesting mechanical energy and powering battery-less tiny devices for wearable, implantable medical sensing and internet of things (IoT) sensing applications.

    Stripping Membranes:

    Article Title: A review on extrusion-based 3D-printed nanogenerators for energy harvesting
    Article Snippet: Energy harvesting technologies now play a significant role in the successful deployment of self-powered electronic devices.. Researchers are working on small-scale energy generators fabricated with nanomaterials to harvest ambient energy.. Triboelectric nanogenerator (TENG) is an efficient method for harvesting mechanical energy and powering battery-less tiny devices for wearable, implantable medical sensing and internet of things (IoT) sensing applications.

    Software:

    Article Title: Method, Material, and Machine: A Review for the Surgeon Using Three-Dimensional Printing for Accelerated Device Production.
    Article Snippet: BACKGROUND: Physicians are at the forefront of identifying innovative targets to address current medical needs.. 3D printing technology has emerged as a state-of-the-art method of prototyping medical devices or producing patient-specific models that is more cost-efficient, with faster turnaround time, in comparison to traditional prototype manufacturing.. However, initiating 3D printing projects can be daunting due to the engineering learning curve, including the number of methodologies, variables, and techniques for printing from which to choose.



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    ROIs selected from the CT DICOM data between the Group A and Group B protocols. ROI 1, jawbone; ROI 2, masseter muscle; Group A, conventional CT dose <t>3D</t> printing group; Group B, low CT dose 3D printing group. ROIs, regions of interest; CT, computed tomography; DICOM, digital imaging and communications in medicine; 3D, three-dimensional.
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    Image Search Results


    ROIs selected from the CT DICOM data between the Group A and Group B protocols. ROI 1, jawbone; ROI 2, masseter muscle; Group A, conventional CT dose 3D printing group; Group B, low CT dose 3D printing group. ROIs, regions of interest; CT, computed tomography; DICOM, digital imaging and communications in medicine; 3D, three-dimensional.

    Journal: Quantitative Imaging in Medicine and Surgery

    Article Title: Feasibility study of low-dose computed tomography (CT) technology for maxillofacial bone three-dimensional (3D) printing in skeletal class III malocclusion

    doi: 10.21037/qims-22-1266

    Figure Lengend Snippet: ROIs selected from the CT DICOM data between the Group A and Group B protocols. ROI 1, jawbone; ROI 2, masseter muscle; Group A, conventional CT dose 3D printing group; Group B, low CT dose 3D printing group. ROIs, regions of interest; CT, computed tomography; DICOM, digital imaging and communications in medicine; 3D, three-dimensional.

    Article Snippet: A 3D rapid prototyping printer (MakerBot Replicator Z18, USA) was used to print the 3D model using acrylonitrile butadiene styrene copolymer material.

    Techniques: Computed Tomography, Imaging

    Maxillofacial bone 3D modelling quality evaluation on a four-point scale. (A) 1 point: the clarity is poor, a large portion of the anatomy is absent, the accuracy is unacceptable, and the artefacts are serious; the model is considered nondiagnostic. (B) 2 points: the clarity is suboptimal, a small portion of the anatomy is absent, the accuracy is fair, and many artefacts are present; the model is considered nondiagnostic. (C) 3 points: the clarity, integrity, and accuracy are good, and few artefacts are present; the model is acceptably diagnostic. (D) 4 points: the clarity and accuracy are excellent, the integrity is perfect, and almost no artefacts are present; the model is suitably diagnostic. 3D, three-dimensional.

    Journal: Quantitative Imaging in Medicine and Surgery

    Article Title: Feasibility study of low-dose computed tomography (CT) technology for maxillofacial bone three-dimensional (3D) printing in skeletal class III malocclusion

    doi: 10.21037/qims-22-1266

    Figure Lengend Snippet: Maxillofacial bone 3D modelling quality evaluation on a four-point scale. (A) 1 point: the clarity is poor, a large portion of the anatomy is absent, the accuracy is unacceptable, and the artefacts are serious; the model is considered nondiagnostic. (B) 2 points: the clarity is suboptimal, a small portion of the anatomy is absent, the accuracy is fair, and many artefacts are present; the model is considered nondiagnostic. (C) 3 points: the clarity, integrity, and accuracy are good, and few artefacts are present; the model is acceptably diagnostic. (D) 4 points: the clarity and accuracy are excellent, the integrity is perfect, and almost no artefacts are present; the model is suitably diagnostic. 3D, three-dimensional.

    Article Snippet: A 3D rapid prototyping printer (MakerBot Replicator Z18, USA) was used to print the 3D model using acrylonitrile butadiene styrene copolymer material.

    Techniques: Diagnostic Assay

    Subjective scores of maxillofacial bone  3D  printing quality

    Journal: Quantitative Imaging in Medicine and Surgery

    Article Title: Feasibility study of low-dose computed tomography (CT) technology for maxillofacial bone three-dimensional (3D) printing in skeletal class III malocclusion

    doi: 10.21037/qims-22-1266

    Figure Lengend Snippet: Subjective scores of maxillofacial bone 3D printing quality

    Article Snippet: A 3D rapid prototyping printer (MakerBot Replicator Z18, USA) was used to print the 3D model using acrylonitrile butadiene styrene copolymer material.

    Techniques:

    Comparison of subjectively evaluated maxillofacial bone 3D printing quality between Group A and Group B. Group A, conventional CT dose 3D printing group; Group B, low-CT dose 3D printing group. There were no significant differences between Groups A and B in terms of clarity, integrity, accuracy, or artefacts. CT, computed tomography; 3D, three-dimensional.

    Journal: Quantitative Imaging in Medicine and Surgery

    Article Title: Feasibility study of low-dose computed tomography (CT) technology for maxillofacial bone three-dimensional (3D) printing in skeletal class III malocclusion

    doi: 10.21037/qims-22-1266

    Figure Lengend Snippet: Comparison of subjectively evaluated maxillofacial bone 3D printing quality between Group A and Group B. Group A, conventional CT dose 3D printing group; Group B, low-CT dose 3D printing group. There were no significant differences between Groups A and B in terms of clarity, integrity, accuracy, or artefacts. CT, computed tomography; 3D, three-dimensional.

    Article Snippet: A 3D rapid prototyping printer (MakerBot Replicator Z18, USA) was used to print the 3D model using acrylonitrile butadiene styrene copolymer material.

    Techniques: Comparison, Computed Tomography

    Comparison of the maxillofacial bone 3D modelling quality between Group A and Group B. (A1-A3) Group A scheme with 3D modelling. (B1-B3) Group B scheme finished 3D modelling. The results show that the 3D modelling qualities of Group A and Group B are not obviously different. Group A, conventional CT dose 3D printing group; Group B, low-CT dose 3D printing group. CT, computed tomography; 3D, three-dimensional.

    Journal: Quantitative Imaging in Medicine and Surgery

    Article Title: Feasibility study of low-dose computed tomography (CT) technology for maxillofacial bone three-dimensional (3D) printing in skeletal class III malocclusion

    doi: 10.21037/qims-22-1266

    Figure Lengend Snippet: Comparison of the maxillofacial bone 3D modelling quality between Group A and Group B. (A1-A3) Group A scheme with 3D modelling. (B1-B3) Group B scheme finished 3D modelling. The results show that the 3D modelling qualities of Group A and Group B are not obviously different. Group A, conventional CT dose 3D printing group; Group B, low-CT dose 3D printing group. CT, computed tomography; 3D, three-dimensional.

    Article Snippet: A 3D rapid prototyping printer (MakerBot Replicator Z18, USA) was used to print the 3D model using acrylonitrile butadiene styrene copolymer material.

    Techniques: Comparison, Computed Tomography

    The application of low-dose maxillofacial bone 3D printing technology in class III malocclusion correction. (A1) Preoperative low-dose maxillofacial bone 3D printing; (A2) preoperative image of the patient; (A3) preoperative dental image. (B1) Postoperative low-dose maxillofacial bone 3D printing; (B2) postoperative image of the patient; (B3) postoperative dental image. Images (A2) and (B2) were published with the patient’s consent. 3D, three-dimensional.

    Journal: Quantitative Imaging in Medicine and Surgery

    Article Title: Feasibility study of low-dose computed tomography (CT) technology for maxillofacial bone three-dimensional (3D) printing in skeletal class III malocclusion

    doi: 10.21037/qims-22-1266

    Figure Lengend Snippet: The application of low-dose maxillofacial bone 3D printing technology in class III malocclusion correction. (A1) Preoperative low-dose maxillofacial bone 3D printing; (A2) preoperative image of the patient; (A3) preoperative dental image. (B1) Postoperative low-dose maxillofacial bone 3D printing; (B2) postoperative image of the patient; (B3) postoperative dental image. Images (A2) and (B2) were published with the patient’s consent. 3D, three-dimensional.

    Article Snippet: A 3D rapid prototyping printer (MakerBot Replicator Z18, USA) was used to print the 3D model using acrylonitrile butadiene styrene copolymer material.

    Techniques: