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中文摘要
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描述(由申请人提供):本SBIR提案的预期结果是腰椎(S1 - T12)的商业化物理模型,该模型将由合成、正常或退行性椎体、椎间盘、韧带和小关节组成。 将设计解剖学和力学合格的模拟腰椎模型,以提供嵌入式工具的椎间盘压力和小关节载荷的临床相关测量值。 这项技术将创建一个标准化的实验脊柱模型,具有低样本间变异性,可用于阐明脊柱植入物和外科手术中的细微差异,否则很难通过在变化很大的尸体脊柱上进行测试来发现这些差异。 第II阶段的总体目标是商业化生产和确认带有嵌入式工具的合成机械模拟脊柱模型。 第一阶段之前的工作导致了当前研究概念的转移,以创建用于腰椎和解剖椎骨的商业化制造的机械模拟软组织。 PRL证明了控制和复制模拟组织标本的能力,但是遇到了困难,环境敏感性的影响机械性能的组织。 将在生产过程中实施质量控制措施,以确保实现可重现和可靠的机械性能。 对组装好的模型进行了弯曲和压缩力学性能评价。 结果表明,需要更多的迭代步骤来微调组合模型的一些参数。 第二阶段将继续第一阶段的工作,以:制造设计成具有与正常和退行性脊椎骨相似的机械性能的合成椎骨;评估模拟脊柱模型的疲劳性能;开发计算模型;开发简单、可靠和具有成本效益的椎间盘压力和小关节负荷测量技术,最后,通过与人体尸体样本进行比较,鉴定带有嵌入式工具的制造模型,并鉴定用于医疗器械准静态测试的工具模型。 PI和合作研究者设想这些模型可用于脊柱研究和产品开发的各种能力。 这些模型将有助于了解外科手术和植入物对潜在患者结局的影响。 模拟脊柱模型也将是进行生物力学测试和产品开发的有效方法。
英文摘要
DESCRIPTION (provided by applicant): The intended outcome of this SBIR proposal is a commercialized physical model of the lumbar spine (S1 - T12) that will consist of synthetic, normal or osteoporotic vertebrae, intervertebral discs, ligaments and facet joints. The anatomical and mechanically qualified analogue lumbar spine model will be engineered to provide clinically relevant measurements of disc pressure and facet joint loads from embedded instrumentation. This technology will create a standardized experimental spine model with low inter-specimen variability that can be used to elucidate fine differences in spinal implants and surgical procedures that would otherwise be difficult to discover through tests on largely variable cadaver spines. The overall objective of Phase II is to commercially manufacture and validate a synthetic mechanical analogue spine model with embedded instrumentation. Previous work from Phase I resulted in the transfer of current research concepts to create commercially manufactured mechanical analogue soft tissues for the lumbar spine and anatomical vertebrae. PRL demonstrated the ability to control and reproduce analogue tissue specimens, however difficulties were encountered with environmental sensitivity of the urethanes affecting the mechanical properties. Quality control measures will be implemented in manufacturing to ensure reproducible and reliable mechanical properties are achieved. Assembled models were evaluated for their mechanical performance in bending and compression. Results indicate that more iterative steps are needed to fine-tune a few parameters of the assembled model. Phase II will continue the work from phase I to; manufacture synthetic vertebrae designed to have mechanical behaviour similar to normal and osteoporotic vertebral bone; assess the fatigue performance of the analogue spine model; develop a computational model; develop simple, reliable and cost effective disc pressure and facet joint load measuring techniques and lastly, qualify the manufactured model with embedded instrumentation and qualify the instrumented model for use in medical device quasi-static testing by comparison to human cadaveric specimens. The PI and co-investigators envision that these models can be used in a variety of capacities for spine research and product development. The models will aid in understanding the effects of surgical procedures and implants on potential patient outcomes. An analogue spine model will also be an efficient way to perform biomechanical tests and product development.
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Development and Validation of Synthetic Mechanical Analogue Lumbar Spine Models
  • 批准号:
    7158135
  • 项目类别:
  • 资助金额:
    $10.13万
  • 财政年份:
    2006
  • 负责人:
    John Eric James
  • 依托单位:
Development & Validation of Instrumented Synthetic Mechanical Analog Lumbar Spine
  • 批准号:
    7620069
  • 项目类别:
  • 资助金额:
    $31.1万
  • 财政年份:
    2006
  • 负责人:
    John Eric James
  • 依托单位:
海外基金