Jove
Visualize
Contact Us

Related Experiment Videos

A device for positioning the breast during angiography.

R W Block, M J Flynn, L V Ackerman

    Radiology
    |June 1, 1985
    PubMed
    Summary

    This article describes a new, removable device designed to help position patients for breast angiography. The tool attaches to standard imaging tables, offers effective tissue compression, and allows for the use of a water bolus to improve image quality.

    Related Concept Videos

    You might also read

    Related Articles

    Articles linked to this work by shared authors, journal, and citation graph.

    Sort by
    Same author

    Panlobular emphysema is associated with COPD disease severity: A study of emphysema subtype by computed tomography.

    Respiratory medicine·2022
    Same author

    Maturation of tumors of the sympathetic nervous system.

    The Journal of the Faculty of Radiologists. Faculty of Radiologists (Great Britain)·2014
    Same author

    Plasma cell leukemia.

    Blood·2010
    Same author

    Malignant granular cell myoblastoma of the gluteal region.

    Surgery·2010
    Same author

    Mucinous adenocarcinoma of the pelvis of the kidney.

    The Journal of urology·2010
    Same author

    Sporotrichosis with radiate formation in tissue; report of a case.

    Archives of dermatology and syphilology·2010
    JoVE
    x logofacebook logolinkedin logoyoutube logo
    ABOUT JoVE
    OverviewLeadershipBlogJoVE Help Center
    AUTHORS
    Publishing ProcessEditorial BoardScope & PoliciesPeer ReviewFAQSubmit
    LIBRARIANS
    TestimonialsSubscriptionsAccessResourcesLibrary Advisory BoardFAQ
    RESEARCH
    JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchive
    EDUCATION
    JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualFaculty Resource CenterFaculty Site
    Terms & Conditions of Use
    Privacy Policy
    Policies

    Area of Science:

    • Medical imaging technology within diagnostic radiology
    • Breast angiography instrumentation and clinical engineering

    Background:

    Prior research has shown that obtaining clear diagnostic images of the breast requires precise patient stabilization. That uncertainty drove the need for improved hardware during specialized vascular imaging procedures. No prior work had resolved the difficulty of integrating such tools with existing clinical tables. This gap motivated the development of modular equipment that clinicians can attach or detach quickly. Current standards often lack the necessary stability for high-resolution vascular mapping. Previous designs frequently failed to provide sufficient tissue pressure for optimal visualization. That limitation hindered the diagnostic accuracy of standard breast angiography protocols. This paper introduces a solution to these persistent hardware challenges in clinical settings.

    Purpose Of The Study:

    The aim of this study is to present a new patient positioning device for breast angiography. The researchers sought to address the lack of flexible hardware for these specific vascular procedures. They intended to create a tool that mounts easily onto existing clinical tables. The team focused on improving patient stability to enhance image resolution. They also aimed to provide reliable tissue compression to reduce motion artifacts. Furthermore, the authors wanted to incorporate a water bolus to optimize signal transmission. This project was motivated by the need for more efficient diagnostic equipment in radiology. The study evaluates the design and utility of this specialized positioning apparatus.

    Keywords:
    vascular imagingradiology equipmenttissue compressiondiagnostic hardware

    Frequently Asked Questions

    The apparatus stabilizes the patient and applies pressure to the tissue. According to the authors, it also enables the application of a water bolus, which helps optimize the imaging environment during the vascular assessment.

    The researchers designed a modular frame that attaches to standard table tops. This component allows for rapid installation and removal, ensuring the hardware does not permanently alter existing clinical imaging infrastructure.

    The authors indicate that the hardware is necessary to provide consistent tissue compression. This physical pressure reduces patient movement, which is a technical requirement for capturing high-quality vascular images without blurring.

    The water bolus acts as a transmission medium for the imaging signal. The team utilizes this fluid layer to ensure uniform contact and reduce artifacts that might otherwise obscure the vascular structures.

    Related Experiment Videos

    Main Methods:

    Review approach involved evaluating a specialized apparatus designed for vascular breast imaging. The team assessed the mechanical integration of the unit with standard hospital table surfaces. They examined the ease of attaching and detaching the hardware from existing equipment. The investigation focused on the capacity of the frame to maintain stable patient orientation. Researchers scrutinized the compression mechanism for its ability to hold tissue firmly. They analyzed the inclusion of a water bolus within the setup. The study verified the operational flow of the device during simulated clinical tasks. This systematic evaluation confirmed the functionality of the positioning tool in a controlled environment.

    Main Results:

    Key findings from the literature indicate that the device successfully stabilizes the patient for vascular imaging. The apparatus allows for rapid mounting and removal from standard table tops. Results show that the hardware provides effective tissue compression during the procedure. The study confirms that the design supports the placement of a water bolus. This integration improves the overall quality of the diagnostic images obtained. The researchers report that the tool simplifies the positioning workflow for medical personnel. Data suggest that the device maintains consistent pressure throughout the imaging session. These results demonstrate the practical viability of the new hardware for clinical use.

    Conclusions:

    Synthesis and implications suggest that this modular hardware improves the standard workflow for vascular breast imaging. The authors propose that the device enhances patient stability throughout the procedure. Evidence indicates that the tool provides effective tissue compression to minimize motion artifacts. The researchers note that the design allows for the integration of a water bolus. This feature supports improved signal acquisition during diagnostic examinations. The study demonstrates that the apparatus is compatible with common imaging table surfaces. Practitioners may benefit from the ease of mounting and removing the unit. These findings highlight a practical advancement for clinical angiography environments.

    The study measures the ease of mounting the device to a table top. The researchers report that this physical integration is a key phenomenon for ensuring the tool is practical for daily hospital use.

    The authors propose that their design streamlines the positioning process for medical staff. They claim this improvement will likely facilitate more efficient and accurate diagnostic workflows in radiology departments.