• 제목/요약/키워드: Medical 3D printing

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두경부 환자의 3D Printing을 이용한 Silicon Bolus의 유용성 (Usefulness of Silicon Bolus Using 3D Printing of Head and Neck Patients)

  • 권경태;이용기;원영진
    • 한국방사선학회논문지
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    • 제13권7호
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    • pp.909-916
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    • 2019
  • 구강 및 두경부 암의 방사선치료 시 치료 범위에 피부를 포함하는 경우가 많으며 이때 볼루스의 사용이 빈번해진다. 특히 턱 부분의 요철로 인하여 환자의 적용 시 선량 불확실성을 제공한다. 본 연구에서는 3D Printing을 이용하여 Gel 볼루스와 Poly lactic acid(PLA), Silicon을 적용한 환자 맞춤형 볼루스를 제작하여 물성 특성을 확인하고, 제작된 볼루스와 치료계획의 불일치성을 확인하며, 실제 방사선 선량 전달시 발생하는 선량불확실성을 측정하였다. 그 결과 일반적인 요철 부위에는 PLA 재질의 볼루스가 안정적이며, 요철이 심하거나 환자의 체형이 자주 바뀔 수 있는 환자의 경우 Silicon 재질의 볼루스가 유용할 것으로 사료된다.

일반영상 검사 시 몬테칼로 시뮬레이션을 이용한 3D 프린팅 차폐기구의 효용성 평가 (Evaluation of the Effectiveness of 3D Printing Shielding Devices using Monte Carlo Simulation in Plain Radiography)

  • 조용인;김정훈
    • 한국방사선학회논문지
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    • 제14권3호
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    • pp.303-311
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    • 2020
  • 일반영상 검사 시 발생되는 산란선은 검사목적 부위 외 다른 장기 및 조직에 대해 2차적인 피폭을 유발할 수 있다. 현재 방사선 피폭을 저감하기 위해 사용되는 차폐기구는 종사자들의 방사선 방호 목적으로 대부분 사용되며, 환자의 방사선 방호는 거의 이뤄지지 않고 있다. 이에 본 연구에서는 모의실험을 통해 일반 영상 검사 시 산란선에 의한 장기 선량과 3D 프린팅 재료를 통한 방사선 차폐기구로의 효용성을 평가하고자 한다. 그 결과, 검사 시 장기별 흡수선량은 선원과의 거리가 인접하고, 피부표면에 근접한 장기일수록 2차 산란선에 의해 높은 영향을 나타내었다. 이를 방호하기 위한 3D 프린팅 차폐기구 사용에 따른 선량감소효과는 플라스틱 계열에 비해 혼합 프린팅 재료의 경우 더 높은 차폐효과를 나타내었다.

CT절편두께와 RP방식이 3차원 의학모델 정확도에 미치는 영향에 대한 연구 (Influence of slice thickness of computed tomography and type of rapid protyping on the accuracy of 3-dimensional medical model)

  • 엄기두;이병도
    • Imaging Science in Dentistry
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    • 제34권1호
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    • pp.13-18
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    • 2004
  • Purpose : This study was to evaluate the influence of slice thickness of computed tomography (CT) and rapid protyping (RP) type on the accuracy of 3-dimensional medical model. Materials and Methods: Transaxial CT data of human dry skull were taken from multi-detector spiral CT. Slice thickness were 1, 2, 3 and 4 mm respectively. Three-dimensional image model reconstruction using 3-D visualization medical software (V-works /sup TM/ 3.0) and RP model fabrications were followed. 2-RP models were 3D printing (Z402, Z Corp., Burlington, USA) and Stereolithographic Apparatus model. Linear measurements of anatomical landmarks on dry skull, 3-D image model, and 2-RP models were done and compared according to slice thickness and RP model type. Results: There were relative error percentage in absolute value of 0.97, 1.98,3.83 between linear measurements of dry skull and image models of 1, 2, 3 mm slice thickness respectively. There was relative error percentage in absolute value of 0.79 between linear measurements of dry skull and SLA model. There was relative error difference in absolute value of 2.52 between linear measurements of dry skull and 3D printing model. Conclusion: These results indicated that 3-dimensional image model of thin slice thickness and stereolithographic RP model showed relative high accuracy.

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3D 프린팅 응용을 위한 환원그래핀/폴리피롤 복합체 기반의 전도성 폴리카프로락톤 레진의 개발 (Development of Conductive Polycaprolactone (PCL)-resin based on Reduced Graphene Oxide(rGO)/Polypyrrole (Ppy) composite for 3D-printing application)

  • 정현택;정화용;조영광;김창현;김용렬
    • 한국응용과학기술학회지
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    • 제35권3호
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    • pp.935-939
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    • 2018
  • 3D프린팅 기술은 산업적 응용을 넘어서 기계 설비 및 각종 장비의 부품생산뿐만 아니라 의료, 식품, 패션에 이르기까지 많은 시제품들의 개발 및 연구가 진행되고 있다. 3D 프린팅 기반 기술의 적용사례를 볼 때 정밀도와 제작 속도 측면에서도 다른 산업에 충분이 활용될 수 있는 기술의 개발이 보고되고 있으나, 아직까지는 시제품 위주로 이용되고 있으며, 향후 3D 프린팅 기술은 4차산업혁명과 관련하여 광범위한 분야에서 응용될 수 있는 완성품이나 부품제작에 이용될 것으로 예상된다. 본 연구에서는 탄소나노 재료중 대표적으로 많이 이용되는 환원그래핀 [rGO(reduced graphene oxide)]과 전도성 고분자중 생체 친화적인 특성을 갖는 폴리피롤[Ppy(Polypyrrole)]의 복합체를 생분해성 고분자인 폴리카프로락톤 [PCL(polycaprolactone)]과 혼합하여 3D 프린팅용 전도성 레진을 개발하고자 하였다. 결과로, 폴리피롤과 환원그래핀 각각 5 wt%, 0.75 wt% 에서 최적의 전기적 특성을 나타내었으며, 환원그래핀의 농도에 따른 표면분석에서도 이와 부합하는 결과를 확인 할 수 있었다. 본 연구를 통하여 제조된 전도성 레진은 3D 프린팅 뿐만 아니라, 다른 산업분야의 전자재료에도 적용이 가능할 것으로 사료된다.

Dose rate measurement of Leksell Gamma Knife Perfexion using a 3D printed plastic scintillation dosimeter

  • Lee, Sangmin;Kim, Tae Hoon;Jeong, Jae Young;Son, Jaebum;Kim, Dong Geon;Cho, Gyu-Seok;Choi, Sang Hyoun;Chung, Hyun-Tai;Kim, Yong Kyun
    • Nuclear Engineering and Technology
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    • 제52권10호
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    • pp.2334-2338
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    • 2020
  • In recent years, 3D printing technology has received significant research attention. Additionally, 3D printing technology is being applied to study radiation dosimeters of various materials. In this study, a plastic scintillator for 3D printing was developed in a laboratory and used to manufacture a plastic scintillation dosimeter (PSD) with a shape identical to that of the ionization chamber PTW31010. The 16-mm beam of Gamma Knife® Perfexion™ was irradiated to derive the absorbed dose rates of the PSD and PTW31010; they were subsequently compared with the dose rates of the treatment plan. The differences in the dose rates of the Gamma Knife treatment plan and the absorbed dose rates of PTW31010 were within 0.87%. The difference between the dose rates of the Gamma Knife treatment plan and the absorbed dose rates of the PSD were within 4.1%. A linear fit of the absorbed dose rates of four shots involving different dose rates and irradiation angles yielded an adjusted R-square value exceeding 0.9999. A total of 10 repeated measurements were conducted for the same shot to confirm its reproducibility, with a relative error of 0.56%.

Accuracy of maxillofacial prototypes fabricated by different 3-dimensional printing technologies using multi-slice and cone-beam computed tomography

  • Yousefi, Faezeh;Shokri, Abbas;Farhadian, Maryam;Vafaei, Fariborz;Forutan, Fereshte
    • Imaging Science in Dentistry
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    • 제51권1호
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    • pp.41-47
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    • 2021
  • Purpose: This study aimed to compare the accuracy of 3-dimensional(3D) printed models derived from multidetector computed tomography (MDCT) and cone-beam computed tomography (CBCT) systems with different fields of view (FOVs). Materials and Methods: Five human dry mandibles were used to assess the accuracy of reconstructions of anatomical landmarks, bone defects, and intra-socket dimensions by 3D printers. The measurements were made on dry mandibles using a digital caliper (gold standard). The mandibles then underwent MDCT imaging. In addition, CBCT images were obtained using Cranex 3D and NewTom 3G scanners with 2 different FOVs. The images were transferred to two 3D printers, and the digital light processing (DLP) and fused deposition modeling (FDM) techniques were used to fabricate the 3D models, respectively. The same measurements were also made on the fabricated prototypes. The values measured on the 3D models were compared with the actual values, and the differences were analyzed using the paired t-test. Results: The landmarks measured on prototypes fabricated using the FDM and DLP techniques based on all 4 imaging systems showed differences from the gold standard. No significant differences were noted between the FDM and DLP techniques. Conclusion: The 3D printers were reliable systems for maxillofacial reconstruction. In this study, scanners with smaller voxels had the highest precision, and the DLP printer showed higher accuracy in reconstructing the maxillofacial landmarks. It seemed that 3D reconstructions of the anterior region were overestimated, while the reconstructions of intra-socket dimensions and implant holes were slightly underestimated.

3D Printed Titanium Implant for the Skull Reconstruction: A Preliminary Case Study

  • Choi, Jong-Woo;Ahn, Jae-Sung
    • Journal of International Society for Simulation Surgery
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    • 제1권2호
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    • pp.99-102
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    • 2014
  • The skull defect can be made after the trauma, oncologic problems or neurosurgery. The skull reconstruction has been the challenging issue in craniofacial fields for a long time. So far the skull reconstruction with autogenous bone would be the standard. Although the autogenous bone would be the ideal one for skull reconstruction, donor site morbidity would be the inevitable problem in many cases. Meanwhile various types of allogenic and alloplastic materials have been also used. However, skull reconstruction with many alloplastic material have produced no less complications including infection, exposure, and delayed wound healing. Because the 3D printing technique evolved so fast that 3D printed titanium implant were possible recently. The aim of this trial is to try to restore the original skull anatomy as possible using the 3D printed titanium implant, based on the mirrored three dimensional CT images based on the computer simulation. Preoperative computed tomography (CT) data were processed for the patient and a rapid prototyping (RP) model was produced. At the same time, the uninjured side was mirrored and superimposed onto the traumatized side, to create a mirror-image of the RP model. And we fabricated Titanium implant to reconstruct three-dimensional orbital structure in advance, using the 3D printer. This prefabricated Titanium-implant was then inserted onto the defected skull and fixed. Three dimensional printing technique of titanium material based on the computer simulation turned out to be very successful in this patient. Individualized approach for each patient could be an ideal way to manage the traumatic patients in near future.

Virtual Reality and 3D Printing for Craniopagus Surgery

  • Kim, Gayoung;Shim, Eungjune;Mohammed, Hussein;Kim, Youngjun;Kim, Yong Oock
    • Journal of International Society for Simulation Surgery
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    • 제4권1호
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    • pp.9-12
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    • 2017
  • Purpose Surgery for separating craniopagus twins involves many critical issues owing to complex anatomical features. We demonstrate a 3D printed model and virtual reality (VR) technologies that could provide valuable benefits for surgical planning and simulation, which would improve the visualization and perception during craniopagus surgery. Material & Methods We printed a 3D model extracted from CT images of craniopagus patients using segmentation software developed in-house. Then, we imported the 3D model to create the VR environment using 3D simulation software (Unity, Unity Technologies, CA). We utilized the HTC Vive (HTC & Valve Corp) head-mount-display for the VR simulation. Results We obtained the 3D printed model of craniopagus patients and imported the model to a VR environment. Manipulating the model in VR was possible, and the 3D model in the VR environment enhanced the application of user-friendly 3D modeling in surgery for craniopagus twins. Conclusion The use of the 3D printed model and VR has helped understand complicated anatomical structures of craniopagus patients and has made communicating with other medical surgeons in the field much easier. Further, interacting with the 3D model is possible in VR, which enhances the understanding of the craniopagus surgery as well as the success rate of separation surgery while providing useful information on diagnosing and surgery planning.

영상해부학 교육을 위한 3차원 인체 모사 조형물 제작 사례 연구 (A Case Study of Three Dimensional Human Mimic Phantom Production for Imaging Anatomy Education)

  • 성열훈
    • 한국방사선학회논문지
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    • 제12권1호
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    • pp.71-78
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    • 2018
  • 본 연구에서는 인체 모사 조형물을 3차원 프린팅으로 출력한 사례를 보고하고자 하였다. 재료는 용융적층방식의 개인용 3차원 프린터 장비와 폴리락트산을 소재로 사용하였다. 3차원 인체 모사 조형물 출력은 모델링하는 단계, 평면화 작업과 G-code 변환 단계,출력변수 설정 단계, 3D 출력단계, 마지막으로 후처리 단계 순으로 진행하였으며, 학생들의 학습만족도(해부학인지도, 수업흥미도)를 리커트 5 점 척도로 조사하였다. 그 결과, 총 20가지의 3차원 인체 모사 조형물을 성공적으로 출력하였다. 총 출력소요시간은 11,691분(194시간 85분)이었으며 평균 출력소요시간은 584.55분(9시간 7분)이었다. 이에 소요된 필라멘트량은 총 2,390.2 g 이었으며 평균 119.51 g 이 소요되었다. 학습만족도의 해부학인지도는 평균 4.6 점, 수업흥미도는 평균 4.5 점으로 높은 것으로 나타났다. 앞으로 3차원 프린팅 기술은 영상해부학 교육의 학습효과를 높여줄 수 있으리라 기대한다.

SiPM PET/CT에서 3D 프린팅 기반 자체제작한 팬텀을 이용한 iMAR 알고리즘 유용성 평가에 관한 연구 (The feasibility of algorithm for iterative metal artifact reduction (iMAR) using customized 3D printing phantom based on the SiPM PET/CT scanner)

  • 이민규;박찬록
    • 핵의학기술
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    • 제28권1호
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    • pp.35-40
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    • 2024
  • Purpose: To improve the image quality in positron emission tomography (PET), the attenuation correction technique based on the computed tomography (CT) data is important process. However, the artifact is caused by metal material during PET/CT scan, and the image quality is degraded. Therefore, the purpose of this study was to evaluate image quality according to with and without iterative metal artifact reduction (iMAR) algorithm using customized 3D printing phantom. Materials and Methods: The Hoffman and Derenzo phantoms were designed. To protect the gamma ray transmission and express the metal portion, lead substance was located to the surface. The SiPM based PET/CT was used for acquisition of PET images according to application with and without iMAR algorithm. The quantitative methods were used by signal to noise ratio (SNR), coefficient of variation (COV), and contrast to noise ratio (CNR). Results and Discussion: The results shows that the image quality applying iMAR algorithm was higher 1.15, 1.19, and 1.11 times than image quality without iMAR algorithm for SNR, COV, and CNR. Conclusion: In conclusion, the iMAR algorithm was useful for improvement of image quality by reducing the metal artifact lesion.