共查询到16条相似文献,搜索用时 62 毫秒
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在温跃层强度较低的弱温差层中,水下热滑翔机的相变材料的相变过程会受到阻碍,从而影响滑翔机性能。为了保证水下热滑翔机能够正常工作,通过对滑翔机的相变材料的相变过程和临界航程进行数值求解,分析不同的水平管半径和纵向速度对滑翔机的性能的影响,得出较小的水平管半径和较低的纵向速度可以有效地克服弱温差层下水下热滑翔机性能的恶化。 相似文献
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相变材料作为温差能热机的工作流体,其热力学状态对周围海水温度非常敏感,且其融点对水下热滑翔机的运行范围影响很大.基于焓法模型,在不同大洋温度剖面下,对以3种相变材料为工作流体的温差能热机进行性能分析;并考虑到不同大洋温度剖面的特点,为温差能热机选择合适的相变材料,以拓宽水下热滑翔机的应用范围.结果表明:在给定的大洋温度剖面下,3种工作流体的相变过程时间不同;以正十五烷为温差能热机工作流体的水下热滑翔机具有更广的运行范围. 相似文献
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为使试验水池能为研究温差能水下运载器提供稳定可靠的实验环境,根据滑翔机相变材料相过程变模型的数值求解,得出实验水池温度梯度控制目标,并以此为目标设计出一套基于西门子S7-200PLC的温度梯度控制的实验台架,实验表明,水池在长度方向上有1/3区域可获得理想的温度梯度。 相似文献
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水下滑翔机动力系统工作性能的研究 总被引:2,自引:1,他引:1
从温差能驱动水下滑翔机的运动轨迹和航行环境出发,对感温工质获取温差能的相变过程进行动态分析,以确定滑翔机工作特性.研究表明,液相感温工质与海水的对流换热效应,导致暖水层航程中的固液相变效率远高于冷水层航程;根据相变的过程特征,动力系统在一个锯齿形航行轨迹中,可分为6个工作过程加以研究;分析感温工质液态和固态的保持时间,可确定滑翔机的航行深度范围,也为动力系统的控制和单向阀的动作时序控制提供了依据,保证了滑翔机动力系统循环工作的特性. 相似文献
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海洋温跃层的温差小,可利用的温差能的能量品质低,水下热滑翔机的热机效率较低,因此需要寻找最低阻力特性的热滑翔机壳体外形。利用水动力数值计算方法,分析了水下热滑翔机4种壳体外形的阻力成因和各自的优缺点,并采用2种不同的求解器对4种壳体外形阻力进行数值计算,不同求解器的计算结果最大偏差小于5%。提出了一个"容积阻力比"的无量纲系数,以此作为评判水下热滑翔机壳体外形综合性能的指标;将纺锤体外形与椭球体首尾外形的优点相结合,提出了水下热滑翔机的新型壳体外形。相比先前讨论的4种壳体外形,该外形具有最大的容积阻力比系数,表明该外形设计在水下热滑翔机的低阻特性与装载能力2种性能之间取得了较好的平衡和兼容。 相似文献
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针对具有非最小相不稳定内部动态的水下滑翔机运动控制问题,采用基于稳定逆技术的设计方法设计了前馈控制器。水下滑翔机在有限时间内的稳态间转换过程,被视作两点边值问题。将一种新型前馈控制器设计方法拓展,应用于非线性多输入多输出水下滑翔机系统;利用两点边值条件,为前馈控制器设计了期望输出轨迹。仿真结果表明,在设计的前馈控制器作用下,滑翔机内部动态的解,不仅是有界的,而且是因果的;通过选定合适的转换时间,可以满足滑翔机系统的输入输出限制,降低对控制输入激励的需求。 相似文献
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水下滑翔机是一种新型的无推进装置的水下运载器,它是由净浮力来驱动的,同时通过内部的直线驱动器来改变重心的位置以实现姿态的调节。对于大多数水下滑翔机,浮力机构是通过改变自身排水体积来实现的,文中介绍了一种变重量的水下滑翔机的设计、动力学分析以及实验过程,该浮力调节机构主要由单向水泵和三位五通电磁阀组成,最大下潜深度为30米。文中介绍了水下滑翔机的运动方程和动力学特性,并且给出了在稳定时刻的解,并且通过计算流体力学的方法对水下滑翔机的水动力特性进行了分析。仿真和实验结果证明了该水下滑翔机的可靠性及实用性。 相似文献
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KONG Qiao-ling MA Jie State Key Laboratory of Ocean Engineering Shanghai Jiaotong University Shanghai China 《船舶与海洋工程学报》2007,6(4)
The phase change characteristic of the power source of an underwater glider propelled by the ocean's thermal energy is the key factor in glider attitude control. A numerical model has been established based on the enthalpy method to analyze the phase change heat transfer process under convective boundary conditions. Phase change is not an isothermal process,but one that occurs at a range of temperature. The total melting time of the material is very sensitive to the surrounding temperature. When the temperature of the surroundings decreases 8 degrees,the total melting time increases 1.8 times. But variations in surrounding temperature have little effect on the initial temperature of phase change,and the slope of the temperature time history curve remains the same. However,the temperature at which phase change is completed decreases significantly. Our research shows that the phase change process is also affected by container size,boundary conditions,and the power source's cross sectional area. Materials stored in 3 cylindrical containers with a diameter of 38mm needed the shortest phase change time. Our conclusions should be helpful in effective design of underwater glider power systems. 相似文献
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Phase change analysis of an underwater glider propelled by the ocean's thermal energy 总被引:1,自引:0,他引:1
KONG Qiao-ling MA Jie 《船舶与海洋工程学报》2007,6(4):37-43
The phase change characteristic of the power source of an underwater glider propelled by the ocean's thermal energy is the key factor in glider attitude control. A numerical model has been established based on the enthalpy method to analyze the phase change heat transfer process under convective boundary conditions. Phase change is not an isothermal process, but one that occurs at a range of temperature. The total melting time of the material is very sensitive to the surrounding temperature. When the temperature of the surroundings decreases 8 degrees, the total melting time increases 1.8 times. But variations in surrounding temperature have little effect on the initial temperature of phase change, and the slope of the temperature time history curve remains the same. However, the temperature at which phase change is completed decreases significantly. Our research shows that the phase change process is also affected by container size, boundary conditions, and the power source's cross sectional area. Materials stored in 3 cylindrical containers with a diameter of 38ram needed the shortest phase change time. Our conclusions should be helpful in effective design of underwater glider power systems. 相似文献
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