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Alphabet(GOOG.O)首席執行官:第二季度開始確認TPU銷售收入。
2026-07-23
Alphabet(GOOG.O)首席執行官:第二季度開始確認TPU銷售收入。
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2026-07-23
Shanghai municipal authorities, led by the Development and Reform Commission, issued measures to boost direct financing for technology firms. The package directs use of refinancing support policies to streamline approval processes and shorten review intervals; it explicitly permits refinancing for companies that listed under 'not-yet-profitable' standards and remain unprofitable, and for issuers whose shares have fallen below IPO price. Authorities will simplify application materials, support fl
Shanghai municipal authorities, led by the Development and Reform Commission, issued measures to boost direct financing for technology firms. The package directs use of refinancing support policies to streamline approval processes and shorten review intervals; it explicitly permits refinancing for companies that listed under 'not-yet-profitable' standards and remain unprofitable, and for issuers whose shares have fallen below IPO price. Authorities will simplify application materials, support flexible use of follow-on share issuance, rights offerings and convertible bonds, and promote implementation of a refinancing shelf issuance regime.
2026-07-23
Researchers at the Institute of Metal Research, Chinese Academy of Sciences, together with the Belarusian National Academy of Sciences’ Science‑Practice Materials Research Center and Jiangxi Naile Copper Co., have developed an electrochemical deposition additive‑manufacturing process to in‑situ grow porous copper wicks on Omega‑channel surfaces. Atomic‑scale stacking control produces tunable pore‑size gradients from nanometre to micrometre scales; the resulting gradient electrochemical wick deli
Researchers at the Institute of Metal Research, Chinese Academy of Sciences, together with the Belarusian National Academy of Sciences’ Science‑Practice Materials Research Center and Jiangxi Naile Copper Co., have developed an electrochemical deposition additive‑manufacturing process to in‑situ grow porous copper wicks on Omega‑channel surfaces. Atomic‑scale stacking control produces tunable pore‑size gradients from nanometre to micrometre scales; the resulting gradient electrochemical wick delivers roughly 2x the capillary force of conventional copper‑powder sintered wicks and doubles single‑pipe heat‑dissipation power versus standard grooved tubes. The method addresses integrated manufacturing of Omega channels with graded wicks and is presented as enabling next‑generation high‑thermal‑conductivity copper heat pipes for AI compute‑center cooling.
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