登录
首页 » Others » 开发电子海图必需的s52显示库和说明(很全,自己开发的时候收集的)

开发电子海图必需的s52显示库和说明(很全,自己开发的时候收集的)

于 2020-12-04 发布
0 360
下载积分: 1 下载次数: 1

代码说明:

在电子海图显示软件的开发过程中使用,包括符号展示库等所有文档。自己开发的时候就是阅读这些文档的

下载说明:请别用迅雷下载,失败请重下,重下不扣分!

发表评论

0 个回复

  • 运筹与优化课设计 求解整数规划的分支定界法和割平面法
    求解整数规划的分支定界法和割平面法 求解整数规划的分支定界法和割平面法
    2020-12-02下载
    积分:1
  • dct图像压缩的matlab实现
    dct图像压缩的matlab实现 dct变换是图像压缩的重要方法
    2020-12-01下载
    积分:1
  • 先进 PID 控制及其 MATLAB 仿真 (PDF+序)
    目 录 前 言 第 1 章 数字 PID 控制………………………………………………………………(1) 1.1PID 控制原理 ……………………………………………………………………(1)1.2 连续系统的模拟 PID 仿真…………………………………………………………(2)1.3 数字 PID 控制……………………………………………………………………(3)1.3.1 位置式 PID 控制算法……………………………………………………………(3)1.3.2 连续系统的数字 PID 控制仿真…………………………………………………(4)1.3.3 离散系统的数字 PID 控制仿真……………………
    2020-12-12下载
    积分:1
  • MRMR(最小冗余最大相关)算法
    MRMR(最小冗余最大相关)算法以及可执行文件,欢迎下载!!!
    2020-12-07下载
    积分:1
  • 线性调频信号(LFM)压缩感知的稀疏与重构算法(OMP)的matlab仿真
    一个可以在matlab上运行的压缩感知实例;本例以LFM为采样信号,包括稀疏分解、测量矩阵的设计和重构算法(OMP),验证了压缩感知理论的可行性。
    2020-12-10下载
    积分:1
  • STM32F103C8T6最小系统PCB+原理图+3D库
    用Altium designer打开,里面有STM32F103C8T6最小系统的PCB,有库文件原理图也有
    2020-11-28下载
    积分:1
  • MODIS 1B数据下载、常用处理软件、ENVI处理方法介绍(图解详细)
    MODIS 1B数据的下载网址和下载方法介绍、常用的处理软件下载地址、用MRTSwath和ENVI对MODIS 1B数据进行几何校正、DN值转换反射率、镶嵌和重投影处理过程详解,每一步都附有图解,非常详细实用!
    2020-06-26下载
    积分:1
  • 平面变压器3D仿真资料
    采用COMSOL软件,对平面变压器的仿真过程进行叙述,让大家了解平面变压器的仿真流程,是个很好的指导教材Solved with COMSOL Multiphysics 5.0Results and discussionThe magnetostatic analysis yields an inductance of 0. 1l mH and a dc resistance of0. 29 mQ2. Figure 2 shows the magnetic flux density norm and the electric potentialdistributionvolume: Coil potentiaL()Volume: Magnetic flux density norm (t▲0.07▲2.88×10-42.51.50.03050.01V656×107v0igure 2: Magnetic flux density norm and electric potential distribution for themagnetostatic analysisIn the static (DC) limit, the potential drop along the winding is purely resistive andcould in principle be computed separately and before the magnetic flux density iscomputed. When increasing the frequency, inductive effects start to limit the currentand skin effect makes it increasingly difficult to resolve the current distribution in thewinding. At sufficiently high frequency, the current is mainly flowing in a thin layernear the conductor surface. When increasing the frequency further. capacitive effectscome into play and current is flowing across the winding as displacement currentdensity. When going through the resonance frequency, the device goes from behavingas an inductor to become predominantly capacitive. At the self resonance, the resistivelosses peak due to the large internal currents Figure 4 shows the surface current3 MODELING OF A 3D INDUCTORSolved with COMSOL Multiphysics 5.0distribution atl MHz. Typical for high frequency the currents are displaced towardsthe edges of the conductor.freq(1)=1.0000E6_Surfaee: Surface-current density norm (A/)▲18618Q16010¥1.02Figure 3: Surface current density at I MHz (below the resonance frequency)Figure 4 shows how the resistive part of the coil impedance peaks at the resonancefrequency near 6MHz whereas Figure 5 shows how the reactive part of the coiimpedance changes sign and goes from inductive to capacitive when passing throughthe resonance4 MODELING OFA3DINDUCTORSolved with COMSOL Multiphysics 5.0Global: Lumped port impedance(Q2)d port impedance7.5G6.583275655545352510.10.20.30.40.509igure 4: Real part of the electric potential distribution5 MODELING OF A INDUCTORSolved with COMSOL Multiphysics 5.0Global: Lumped port impedance(Q2)35000Lumped port impedance200001000050000500010000-1500020000250000.10.20.30.40.50.60.70.809Figure 5: The reactive part of the coil impedance changes sign hen passing through theresonance frequency, going from inductive to capacitiveModel library path: ACDC_Module/Inductive_ Devices_and_coils/inductor 3dFrom the file menu. choose newNEWI In the new window click model wizardMODEL WIZARDI In the model wizard window click 3D2 In the Select physics tree, select AC/DC> Magnetic Fields(mf)3 Click Add4 Click StudyMODELING OF A3D NDUCTORSolved with COMSOL Multiphysics 5.05 In the Select study tree, select Preset Studies>StationaryGEOMETRYThe main geometry is imported from file. Air domains are typically not part of a CaDgeometry so they usually have to be added later. For convenience three additionaldomains have been defined in the CAd file. These are used to define a narrow feed gapwhere an excitation can be appliedport l(impl)I On the model toolbar, click Import2 In the Settings window for Import, locate the Import section3 Click Browse4 Browse to the models model library folder and double-click the filenductor 3d. mphbinSphere /(sphl)I On the Geometry toolbar, click Sphere2 In the Settings window for Sphere, locate the Size section3 In the Radius text field, type 0.2ick to expand the Layers section. In the table, enter the following settingsLayer nameThickness(m)ayer0.055 Click the Build All Objects buttonForm Union(fin)i On the Geometry toolbar, click Build AllClick the Zoom Extents button on the Graphics toolbar7 MODELING OF A 3D INDUCTORSolved with COMSOL Multiphysics 5.03 Click the Wireframe Rendering button on the Graphics toolbarThe geometry should now look as in the figure below0.1-0.10.20.0.0.1y0.0.2Next, define selections to be used when setting up materials and physics Start bdefining the domain group for the inductor winding and continue by adding otheruseful selectionsDEFINITIONSExplicitI On the Definitions toolbar, click Explicit2 In the Settings window for Explicit, in the Label text field, type Winding3 Select Domains 7,8 and 14 onlyI On the Definitions toolbar, click Explicit2 In the Settings window for Explicit, in the Label text field, type Gap3 Select domain 9 onlI On the Definitions toolbar, click Explicit8 MODELING OF A3DINDUCTORSolved with COMSOL Multiphysics 5.02 In the Settings window for Explicit, in the Label text field, type core3 Select Domain 6 onlyExplicit 4I On the Definitions toolbar, click Explicit2 In the Settings window for Explicit, in the Label text field, type InfiniteElements3 Select Domains 1-4 and 10-13 onlyExplicit 5I On the Definitions toolbar, click Explicit2 In the Settings window for Explicit, in the Label text field, type Non-conducting3 Select Domains 1-6 and 9-13 onlyI On the Definitions toolbar, click Explicit2 In the Settings window for Explicit, in the Label text field, type Non-conductingwithout Ie3 Select Domains 5, 6, and 9 only.Infinite Element Domain /(iel)Use infinite elements to emulate an infinite open space surrounding the inductorI On the definitions toolbar click Infinite element domain2 In the Settings window for Infinite Element Domain, locate the Domain Selectionsection3 From the Selection list. choose Infinite Elements4 Locate the Geometry section From the Type list, choose SphericalNext define the material settingsADD MATERIALI On the Model toolbar, click Add Material to open the add Material window2 Go to the Add material window3 In the tree, select AC/DC>Copper.4 Click Add to Component in the window toolbar9 MODELING OF A 3D INDUCTORSolved with COMSOL Multiphysics 5.0MATERIALSCopper(mat/)I In the Model Builder window, under Component I(comp l)>Materials click Copper(matD)2 In the Settings window for Material, locate the Geometric Entity Selection section3 From the Selection list, choose windingADD MATERIALI Go to the Add Material window2 In the tree. select built-In>Air3 Click Add to Component in the window toolbarMATERIALSAir(mat2I In the Model Builder window, under Component I(comp l)>Materials click Air(mat2)2 In the Settings window for Material, locate the Geometric Entity Selection section3 From the Selection list, choose Non-conductingThe core material is not part of the material library so it is entered as a user-definedmateriaMaterial 3(mat3)I In the Model Builder window, right-click Materials and choose Blank Material2 In the Settings window for Material, in the Label text field, type Core3 Locate the geometric Entity Selection section4 From the selection list choose Core5 Locate the Material Contents section. In the table, enter the following settingsPropertName Value Unit Property groupElectrical conductivity sigma0S/IBasicRelative permittivity epsilonrBasicRelative permeability mur1e3Basic6 On the model toolbar. click Add Material to close the Add Material windowMAGNETIC FIELDS (MF)Select Domains 1-8 and 10-14 only0MODELING OF A 3D INDUCTOR
    2020-12-10下载
    积分:1
  • Ethernet/ip协议
    EtherNet/IP(ethernet/Industrial Protocol)是由洛克威尔自动化公司开发的工业以太网通讯协定,由开放DeviceNet厂商协会(ODVA)管理,可应用在程序控制及其他自动化的应用中,是通用工业协定(CIP)中的一部分.Ethernet/IP允许工业设备实时的交换应用信息. 采用生产者/消费者模型实时交换控制数据。Ethernet/IP使用标准的IEEE802.3技术.采用TCP/IP技术传输CIP报文
    2020-12-07下载
    积分:1
  • Matlab实现CORDIC算法
    用Matlab的.m文件实现CORDIC算法用于产生正弦波,代码浅显易懂,该代码对于指导CORDIC算法在FPGA等可编程器件下的实现具有参考意义。
    2020-12-05下载
    积分:1
  • 696516资源总数
  • 106562会员总数
  • 4今日下载