
【国外标准】 Standard Test Method for Evaluating Response Robot Mobility Using Variable Hurdle Obstacles
本网站 发布时间:
2024-02-28
开通会员免费在线看70000余条国内标准,赠送文本下载次数,单本最低仅合13.3元!还可享标准出版进度查询、定制跟踪推送、标准查新等超多特权!  
查看详情>>

适用范围:
5.1 This test method is part of an overall suite of related test methods that provide repeatable measures of robotic system mobility and remote operator proficiency. The variable hurdle obstacle as described challenges robotic system locomotion, suspension systems to maintain traction, rollover tendencies, self-righting (if necessary), chassis shape variability (if available), and remote situational awareness by the operator. As such, the variable hurdle obstacle can be used to represent obstacles in the environment, such as railroad tracks, curbs, and debris.5.2 The scale of the apparatus can vary to provide different constraints representative of typical obstacle spacing in the intended deployment environment. For example, the three configurations can be representative of repeatable complexity for unobstructed obstacles (open configuration), relatively open parking lots with spaces between cars (rectangular confinement configuration), or within bus, train, or plane aisles, or dwellings with hallways and doorways (square confinement configuration).5.3 The test apparatuses are low cost and easy to fabricate so they can be widely replicated. The procedure is also simple to conduct. This eases comparisons across various testing locations and dates to determine best-in-class systems and operators.5.4 Evaluation—This test method can be used in a controlled environment to measure baseline capabilities. The variable hurdle obstacle can also be embedded into operational training scenarios to measure degradation due to uncontrolled variables in lighting, weather, radio communications, GPS accuracy, etc.5.5 Procurement—This test method can be used to identify inherent capability trade-offs in systems, make informed purchasing decisions, and verify performance during acceptance testing. This aligns requirement specifications and user expectations with existing capability limits.5.6 Training—This test method can be used to focus operator training as a repeatable practice task or as an embedded task within training scenarios. The resulting measures of remote operator proficiency enable tracking of perishable skills over time, along with comparisons of performance across squads, regions, or national averages.5.7 Innovation—This test method can be used to inspire technical innovation, demonstrate break-through capabilities, and measure the reliability of systems performing specific tasks within an overall mission sequence. Combining or sequencing multiple test methods can guide manufacturers toward implementing the combinations of capabilities necessary to perform essential mission tasks.1.1 This test method is intended for remotely operated ground robots operating in complex, unstructured, and often hazardous environments. It specifies the apparatuses, procedures, and performance metrics necessary to measure the capability of a robot to negotiate an obstacle in the form of hurdles. This test method is one of several related mobility tests that can be used to evaluate overall system capabilities.1.2 The robotic system includes a remote operator in control of most functionality, so an onboard camera and remote operator display are typically required. This test method can be used to evaluate assistive or autonomous behaviors intended to improve the effectiveness or efficiency of remotely operated systems.1.3 Different user communities can set their own thresholds of acceptable performance within this test method for various mission requirements.1.4 Performing Location—This test method may be performed anywhere the specified apparatuses and environmental conditions can be implemented.1.5 Units—The International System of Units (a.k.a. SI Units) and U.S. Customary Units (a.k.a. Imperial Units) are used throughout this document. They are not mathematical conversions. Rather, they are approximate equivalents in each system of units to enable use of readily available materials in different countries. The differences between the stated dimensions in each system of units are insignificant for the purposes of comparing test method results, so each system of units is separately considered standard within this test method.1.6 This standard does not purport to address all of the safety concerns, if any, associated with its use. It is the responsibility of the user of this standard to establish appropriate safety, health, and environmental practices and determine the applicability of regulatory limitations prior to use.1.7 This international standard was developed in accordance with internationally recognized principles on standardization established in the Decision on Principles for the Development of International Standards, Guides and Recommendations issued by the World Trade Organization Technical Barriers to Trade (TBT) Committee.
标准号:
ASTM E2802/E2802M-21e1
标准名称:
Standard Test Method for Evaluating Response Robot Mobility Using Variable Hurdle Obstacles
英文名称:
Standard Test Method for Evaluating Response Robot Mobility Using Variable Hurdle Obstacles标准状态:
Active-
发布日期:
-
实施日期:
出版语种:
- 推荐标准
- ASTM E2356-18 Standard Practice for Comprehensive Building Asbestos Surveys
- ASTM E2358-17 Standard Specification for Performance of Glazing in Permanent Railing Systems, Guards, and Balustrades
- ASTM E236-66(2022) Standard Specification for Apparatus for Microdetermination of Alkoxyl Groups
- ASTM E2361-13(2021) Standard Guide for Testing Leave-On Products Using In-Situ Methods
- ASTM E2362-22 Standard Practice for Evaluation of Pre-saturated or Impregnated Towelettes for Hard Surface Disinfection
- ASTM E2363-23 Standard Terminology Relating to Manufacturing of Pharmaceutical and Biopharmaceutical Products in the Pharmaceutical and Biopharmaceutical Industry
- ASTM E2365-21 Standard Guide for Environmental Compliance Performance Assessment
- ASTM E237-02(2024) Standard Specification for Laboratory Glass Microvolumetric Vessels (Volumetric Flasks and Centrifuge Tubes)
- ASTM E2373/E2373M-19 Standard Practice for Use of the Ultrasonic Time of Flight Diffraction (TOFD) Technique
- ASTM E2374-16(2021) Standard Guide for Acoustic Emission System Performance Verification
- ASTM E2375-22 Standard Practice for Ultrasonic Testing of Wrought Products
- ASTM E2380/E2380M-15(2019) Standard Test Method for Measuring Pavement Texture Drainage Using an Outflow Meter
- ASTM E2385-11(2016) Standard Guide for Estimating Wildlife Exposure Using Measures of Habitat Quality
- ASTM E2386-04(2017) Standard Guide for Conduct of PDD Screening Examinations
- ASTM E2387-19 Standard Practice for Goniometric Optical Scatter Measurements