耗散函數 的英文怎麼說

中文拼音 [hàosǎnhánshǔ]
耗散函數 英文
di ipative function
  • : Ⅰ動1 (減損; 消耗) consume; cost 2 [方言] (拖延) waste time; dawdle Ⅱ名詞1 (壞的音信或消息) ...
  • : 散動詞1. (由聚集而分離) break up; disperse 2. (散布) distribute; disseminate; give out 3. (排除) dispel; let out
  • : 名詞1. [書面語] (匣; 封套) case; envelope 2. (信件) letter 3. (姓氏) a surname
  • : 數副詞(屢次) frequently; repeatedly
  • 函數 : [數學] function函數計算機 function computer; 函數計算器 function calculator; 函數運算 functional operation
  1. Under these circumstances, f is called a dissipation function for the set c.

    這時,稱F為系統C的耗散函數
  2. The calculations axe based on the equation of current motion with temperature and field - dependent critical current density, and the heat dissipation produced by flux motion in the normal state region and the superconducting state region

    此計算基於電流運動方程,考慮到電流密度是溫度和磁場的,考慮到在正常區和超導區由磁通運動產生的熱
  3. A new kind of generalized energy is proposed as the lyapunov function, and thereby resulting in a new criterion of generalized nonlinear symmetric stability. it shows that not only must the dissipative coefficient be greater than a certain critical value but the initial disturbance amplitude must be synchronously smaller than another marginal value as well

    從含摩擦的f平面上boussinesq近似下的非線性方程組出發,提出了一種新的廣義能量作為lyapunov,導得了一種新的非線性對稱穩定性判據:即不僅大於某一臨界值而且同時初始擾動振幅小於另一臨界值。
  4. The 2 - point self - energy and 3 - point vertex correction in < j ) 3 theory are calculated in this rule, and the fluctuation - dissipation theorem for 3 - point nonlinear response function is verified

    運用這套新法則,我們分別計算了兩點自能和三點頂角修正,並驗證了三點非線性響應的漲落-定理。
  5. Dissipative function of activated complexation and reaction rate

    活化絡合耗散函數與反應速度
  6. Under these circumstances, f is called a dissipation function for the set c

    這時,稱f為系統c的耗散函數
  7. The lagrange ' s equation containing dissipation function and the physical meaning of such functions

    耗散函數的拉格朗日方程及耗散函數的物理意義
  8. Life time of mn2 + in nano - zns was measured and was found to be close to that of the bulk materials. therefore the quenching centers quench the exciton but not the mn2 + ion self. 2. the increasing curves are different in film and ethanol colloids because there is diffusion process of quenching centers in colloids

    對薄膜樣品的熒光增強曲線的擬合表明,顆粒表面猝滅中心目隨輻照時間的衰減是非e指形式;同時考慮溶液中猝滅中心通過向顆粒表面的擴而逐漸盡,很好地解釋了溶膠的增強曲線與固體薄膜的增強曲線的不同。
  9. A sufficient condition for the existence of a solution to robust decentralized dissipative control via state feedback and via output feedback is derived in term of a set of hamilton - jacobi - issacs ( hji ) inequalities. the sufficient condition is that the robust decentralized dissipative control problem can be resovled for all admissible uncertainties, if there exists a scaling c1 storage function such that hji inequalities have nonnegative solution. the controllers constructed make the nonlinear system robust dissipative with respect to the quadratic supply rate

    基於hji不等式給出了含有不確定和干擾非線性互聯系統魯棒分控制存在的充分條件,即對于所有允許的不確定如果存在標量c ~ 1類存儲使得hji不等式有非負定解,那麼非線性互聯系統魯棒分控制就可獲得,並且構造的控制器使得非線性互聯系統在給定二次型供給率下具有魯棒性。
  10. The material ways are to model the honeycomb wall as an impredence surface, to express the infinite honeycomb by using periodic green ' s function, and using method of moment to establish the mathematic model, in applying the methods of moments, we choose the roof function as basic function and choose the razor function as test function ; by equating the incident field to sum of the scattering field and impledance field ; we will set up the integral equation for the surface current, solving it by mom equation. then gain it ' s reflected coefficient ' s numerical result. and we propose first the definition of the equivalent electromagnetic parameters and present a method to calculate them from the gained reflection coefficient

    具體方法就是將浸漬吸收劑的蜂窩壁用表面阻抗表示,將無限大的周期結構的電場用周期格林來表示,選取有蜂窩結構中具有代表性的基本計算單元應用矩量法建立學模型,在運用矩量法時用屋頂作為基,刀片作為檢驗,根據蜂窩壁表面電場必須滿足入射電場等於射電場和阻抗電場之和的規律,推導表面電場積分方程,求解蜂窩結構的表面電流,利用蜂窩的周期規律得到無限大均勻周期陣列的射電場。
  11. From a nonlinear equation with boussinesq similarity on the f plane including friction dissociation and using a new kind of general energy as lyapunov function, we got the nonlinear subcritical symmetric instability criterion which a new kind of symmetric stability criterions. the nonlinear subcritical symmetric instability indicates that the larger amplitude disturb may cause the its instability to increase and then excite the mesoscale rainstorm

    非線性亞臨界對稱不穩定判據是從含摩擦的f平面上boussinesq近似下的非線性方程出發,以一種新的廣義能量作為lyapunov,導得的一種新的對稱穩定性判據,理論指出較大振幅的擾動可能出現非線性亞臨界對稱不穩定增長,從而激發中尺度暴雨擾動的生成。
  12. Since sontag - type control based on control lyapunov function is an important control law in robust stabilization of affine systems, we point out that is a kind of variable structural control in essence. due to this recognition and the fact that control lyapunov functions are difficult to be constructed, we propose the concept of weak control lyapunov function and then prove the stabilizing property and the robustness of sontag - type control. using the way of proposing the control lyapunov function and the special structure of sontag - type control, we investigate the dissipassivation control of a kind of perturbed nonlinear systems

    基於控制李雅普諾夫的sontag - type控制,是仿射系統魯棒鎮定研究中一種非常重要的控制律,通過研究我們發現,該控制律實質上是一種變結構控制;基於這一認識,也考慮到控制李雅普諾夫難于構造,我們抽象出弱控制李雅普諾夫概念,並證明了基於弱控制李雅普諾夫的sontag - type控制的鎮定作用和優化特性;借鑒控制李雅普諾夫的抽象方式以及sontag - type控制的特殊結構,探討了一類受擾系統的化控制;探討了齊性度理論與控制李雅普諾夫相結合的鎮定設計問題。
  13. For scalar equation and system of equations, we build different ghost fields, translate one equation ( system ) into two equations ( system ). we still use high resolution shock capturing method to compute the two equations ( system ) ; level set equation is used to track the interface, and the result of original equation ( system ) is determined by the level set function. thus, we eliminate the numerical dissipation which high resolution shock capturing method cannot avoid near the interface, and the resolution is enhanced

    對標量守恆律方程、守恆律方程組分別構造了一種虛擬區域,將一個方程(組)轉化成兩個方程(組) ,對這兩個方程(組) ,我們仍然使用高解析度激波捕捉格式,而levelset方程用來追蹤間斷的位置,原方程(組)的解最後由levelset決定:這樣做彌補了高解析度激波捕捉方法在間斷附近發生的缺陷,提高間斷處的解析度。
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