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Results of Buoyancy-gravity Effects in ITER Cable-in- Conduit Conductor with Dual Channel

机译:具有双通道的射电缆线导线浮力 - 重力效应的结果

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The coolant in the ITER cable-in-conduit conductors (CICC) flows at significant higher speed in the central channel than in the strand bundle region due to the large difference of hydraulic impedance. When energy is deposited in the bundle region, e.g. by ac loss or radiation, the heat removal in vertically oriented dual channel CICC with the coolant flowing downward is affected by the reduced density of helium (buoyancy) in the bundle region, which is arising from the temperature gradient due to poor heat exchange between the two channels. At large deposited power, flow stagnation and back-flow can cause in the strand bundle area a slow temperature runaway eventually leading to quench.A new test campaign of the thermal-hydraulic behavior was carried out in the SULTAN facility on an instrumented section of the ITER Poloidal Field Conductor Insert (PFIS). The buoyancy-gravity effect was investigated using ac loss heating, with ac loss in the cable calibrated in separate runs. The extent of upstream temperature increase was explored over a broad range of mass flow rate and deposited power. The experimental behavior is partly reproduced by numerical simulations. The results from the tests are extrapolated to the likely operating conditions of the ITER Toroidal Field conductor with the inboard leg cooled from top to bottom and heat deposited by nuclear radiation from the burning plasma.
机译:由于液压阻抗的较大差异,迭代电缆导管导体(CICC)中的冷却剂在中央通道中以显着更高的速度流动在中央通道中流动。当能量沉积在束区域中时,例如通过AC损耗或辐射,具有向下流动的冷却剂的垂直定向双通道CICC的热除去受束区域中的氦气(浮力)的密度降低的影响,这是由于较差的热交换所引起的温度梯度两个频道。在大沉积的电力下,流动停滞和回流可能导致股线束区域最终导致淬火的慢速温度失控。在苏丹工厂的仪表部分上进行了热液压行为的新测试运动。 ITER POIDAL FIEND导线插入(PFI)。使用AC损耗加热研究了浮力 - 重力效应,电缆中的交流损耗在单独的运行中校准。在广泛的质量流量和沉积的电力范围内探讨了上游温度增加的程度。实验行为由数值模拟部分再现。测试的结果用从顶部到底部冷却的内侧腿和从燃烧等离子体的核辐射沉积的内侧腿部外推到迭代环形磁场导体的可能操作条件。

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