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1.
Ann Biomed Eng ; 48(11): 2613-2625, 2020 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-33051745

RESUMO

Measuring head impacts in sports can further our understanding of brain injury biomechanics and, hopefully, advance concussion diagnostics and prevention. Although there are many head impact sensors available, skepticism on their utility exists over concerns related to measurement error. Previous studies report mixed reliability in head impact sensor measurements, but there is no uniform approach to assessing accuracy, making comparisons between sensors and studies difficult. The objective of this paper is to introduce a two-phased approach to evaluating head impact sensor accuracy. The first phase consists of in-lab impact testing on a dummy headform at varying impact severities under loading conditions representative of each sensor's intended use. We quantify in-lab accuracy by calculating the concordance correlation coefficient (CCC) between a sensor's kinematic measurements and headform reference measurements. For sensors that performed reasonably well in the lab (CCC ≥ 0.80), we completed a second phase of evaluation on-field. Through video validation of impacts measured by sensors on athletes, we classified each sensor measurement as either true-positive and false-positive impact events and computed positive predictive value (PPV) to summarize real-world accuracy. Eight sensors were tested in phase one, but only four sensors were assessed in phase two. Sensor accuracy varied greatly. CCC from phase one ranged from 0.13 to 0.97, with an average value of 0.72. Overall, the four devices that were implemented on-field had PPV that ranged from 16.3 to 91.2%, with an average value of 60.8%. Performance in-lab was not always indicative of the device's performance on-field. The methods proposed in this paper aim to establish a comprehensive approach to the evaluation of sensors so that users can better interpret data collected from athletes.


Assuntos
Concussão Encefálica , Futebol Americano/lesões , Dispositivos de Proteção da Cabeça , Dispositivos Eletrônicos Vestíveis , Aceleração , Adolescente , Adulto , Fenômenos Biomecânicos , Concussão Encefálica/patologia , Concussão Encefálica/fisiopatologia , Concussão Encefálica/prevenção & controle , Cabeça/patologia , Cabeça/fisiopatologia , Humanos , Masculino
2.
J Appl Biomech ; 34(4): 320-326, 2018 Aug 01.
Artigo em Inglês | MEDLINE | ID: mdl-29613824

RESUMO

Advances in low-cost wearable head impact sensor technology provide potential benefits regarding sports safety for both consumers and researchers. However, previous laboratory evaluations are not directly comparable and do not incorporate test conditions representative of unhelmeted impacts. This study addresses those limitations. The xPatch by X2 Biosystems and the SIM-G by Triax Technologies were placed on a National Operating Committee on Standards for Athletic Equipment (NOCSAE) headform with a Hybrid III neck which underwent impact tests using a pendulum. Impact conditions included helmeted, padded impactor to bare head, and rigid impactor to bare head to represent long- and short-duration impacts seen in helmeted and unhelmeted sports. The wearable sensors were evaluated on their kinematic accuracy by comparing results to reference sensors located at the headform center of gravity. Statistical tests for equivalence were performed on the slope of the linear regression between wearable sensors and reference. The xPatch gave equivalent measurements to the reference in select longer-duration impacts, whereas the SIM-G had large variance leading to no equivalence. For the short-duration impacts, both wearable sensors underpredicted the reference. This error can be improved with increases in sampling rate from 1 to 1.5 kHz. Follow-up evaluations should be performed on the field to identify error in vivo.


Assuntos
Técnicas Biossensoriais/instrumentação , Dispositivos de Proteção da Cabeça , Equipamentos Esportivos , Fenômenos Biomecânicos , Desenho de Equipamento , Cabeça/fisiologia , Movimentos da Cabeça , Humanos , Pescoço/fisiologia
3.
Ann Biomed Eng ; 45(12): 2733-2741, 2017 12.
Artigo em Inglês | MEDLINE | ID: mdl-28913606

RESUMO

Regulations have allowed for increased unmanned aircraft systems (UAS) operations over the last decade, yet operations over people are still not permitted. The objective of this study was to estimate the range of injury risks to humans due to UAS impact. Three commercially-available UAS models that varied in mass (1.2-11 kg) were evaluated to estimate the range of risk associated with UAS-human interaction. Live flight and falling impact tests were conducted using an instrumented Hybrid III test dummy. On average, live flight tests were observed to be less severe than falling impact tests. The maximum risk of AIS 3+ injury associated with live flight tests was 11.6%, while several falling impact tests estimated risks exceeding 50%. Risk of injury was observed to increase with increasing UAS mass, and the larger models tested are not safe for operations over people in their current form. However, there is likely a subset of smaller UAS models that are safe to operate over people. Further, designs which redirect the UAS away from the head or deform upon impact transfer less energy and generate lower risk. These data represent a necessary impact testing foundation for future UAS regulations on operations over people.


Assuntos
Acidentes de Trânsito , Aeronaves , Vértebras Cervicais/lesões , Traumatismos Cranianos Fechados/etiologia , Traumatismos Cranianos Fechados/fisiopatologia , Lesões do Pescoço/etiologia , Lesões do Pescoço/fisiopatologia , Aceleração , Adulto , Vértebras Cervicais/fisiopatologia , Simulação por Computador , Humanos , Masculino , Modelos Biológicos , Medição de Risco/métodos
4.
Sports Med Arthrosc Rev ; 24(3): 100-7, 2016 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-27482775

RESUMO

Concussions can occur in any sport. Often, clinical and biomechanical research efforts are disconnected. This review paper analyzes current concussion issues in sports from a biomechanical perspective and is geared toward Sports Med professionals. Overarching themes of this review include the biomechanics of the brain during head impact, role of protective equipment, potential population-based differences in concussion tolerance, potential intervention strategies to reduce the incidence of injury, and common biomechanical misconceptions.


Assuntos
Traumatismos em Atletas/etiologia , Traumatismos em Atletas/prevenção & controle , Concussão Encefálica/etiologia , Concussão Encefálica/prevenção & controle , Dispositivos de Proteção da Cabeça , Aceleração , Fatores Etários , Fenômenos Biomecânicos , Humanos , Protetores Bucais , Fatores Sexuais
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