产品型号:VK1621B 产品品牌:VINTEK/元泰 封装形式:LQFP48 LQFP44 SSOP48 DIP28 DICE/裸片 COB邦定片 定制COG 产品年份:新年份 联 系 人:许先生 联系手机:18898582398 工程服务,技术支持,价格具有优势! VK1621B 是128模式(32x4),内存映射和多功能液晶驱动程序。S / W的VK1621配置特性使得它适合于多种LCD应用包括液晶显示模块和显示子系统。只用三或四线的主机控制器连接VK1621之间的接口要求。VK1621包含一个电源关闭命令来降低功耗。 VK1621产品特征: ★ 工作电压:2.4V ~ 5.2V ★ 内置RC振荡器 ★ 外部的32.768kHz晶体或唤频率源的输入 ★ 1 / 2或1 / 3 偏压选择,和1 / 2或1 / 3或1 / 4液晶显示应用程序的选择 ★内部时间基准频率源 ★两个可选蜂鸣器的频率(2/3) ★关机命令降低功耗 ★内置的时基发生器和看门狗 ★ 时基或WDT溢出输出 ★ 8种时基/定时器的时钟源 ★ 32x4 LCD驱动器 ★内置32x4位显示RAM ★ 三线串行接口 ★ 内部LCD驱动频率源 ★软件配置特征 ★ 数据模式和命令模式指令的R / W地址自动递增 ★三种数据访问模式 ★提供 VLCD引脚来调整 LCD 工作电压 ★ 此篇产品叙述为功能简介,如需要完整产品PDF资料可以联系许先生索取联系电话:18898582398 LCD/LED液晶控制器及驱动器系列 芯片简介如下: RAM映射LCD控制器和驱动器系列 VK1024B 2.4V~5.2V 6seg*4com 6*3 6*2 偏置电压1/2 1/3 S0P-16 VK1056B 2.4V~5.2V 14seg*4com 14*3 14*2 偏置电压1/2 1/3 SOP-24/SSOP-24 VK1072B 2.4V~5.2V 18seg*4com 18*3 18*2 偏置电压1/2 1/3 SOP-28 VK1072C 2.4V~5.2V 18seg*4com 18*3 18*2 偏置电压1/2 1/3 SOP-28 VK1088B 2.4V~5.2V 22seg*4com 22*3 偏置电压1/2 1/3 QFN-32L(4MM*4MM) VK0192 2.4V~5.2V 24seg*8com 偏置电压1/4 LQFP-44 VK0256 2.4V~5.2V 32seg*8com 偏置电压1/4 QFP-64 VK0256B 2.4V~5.2V 32seg*8com 偏置电压1/4 LQFP-64 VK0256C 2.4V~5.2V 32seg*8com 偏置电压1/4 LQFP-52 VK1621S-1 2.4V~5.2V 32*4 32*3 32*2 偏置电压1/2 1/3 LQFP44/48/SSOP48/SKY28/DICE裸片 VK1622B 2.7V~5.5V 32seg*8com 偏置电压1/4 LQFP-48 VK1622S 2.7V~5.5V 32seg*8com 偏置电压1/4 LQFP44/48/52/64/QFP64/DICE裸片 VK1623S 2.4V~5.2V 48seg*8com 偏置电压1/4 LQFP-100/QFP-100/DICE裸片 VK1625 2.4V~5.2V 64seg*8com 偏置电压1/4 LQFP-100/QFP-100/DICE VK1626 2.4V~5.2V 48seg*16com 偏置电压1/5 LQFP-100/QFP-100/DICE (高品质 高性价比:液晶显示驱动IC 原厂直销 工程技术支持!) (所有型号全部封装均有现货,欢迎加Q查询 191 888 5898 许生) 高抗干扰LCD液晶控制器及驱动系列 VK2C21A 2.4~5.5V 20seg*4com 16*8 偏置电压1/3 1/4 I2C通讯接口 SOP-28 VK2C21B 2.4~5.5V 16seg*4com 12*8 偏置电压1/3 1/4 I2C通讯接口 SOP-24 VK2C21C 2.4~5.5V 12seg*4com 8*8 偏置电压1/3 1/4 I2C通讯接口 SOP-20 VK2C21D 2.4~5.5V 8seg*4com 4*8 偏置电压1/3 1/4 I2C通讯接口 NSOP-16 VK2C22A 2.4~5.5V 44seg*4com 偏置电压1/2 1/3 I2C通讯接口 LQFP-52 VK2C22B 2.4~5.5V 40seg*4com 偏置电压1/2 1/3 I2C通讯接口 LQFP-48 VK2C23A 2.4~5.5V 56seg*4com 52*8 偏置电压1/3 1/4 I2C通讯接口 LQFP-64 VK2C23B 2.4~5.5V 36seg*8com 偏置电压1/3 1/4 I2C通讯接口 LQFP-48 VK2C24 2.4~5.5V 72seg*4com 68*8 60*16 偏置电压1/3 1/4 1/5 I2C通讯接口 LQFP-80 超低功耗LCD液晶控制器及驱动系列 VKL060 2.5~5.5V 15seg*4com 偏置电压1/2 1/3 I2C通讯接口 SSOP-24 VKL128 2.5~5.5V 32seg*4com 偏置电压1/2 1/3 I2C通讯接口 LQFP-44 VKL144A 2.5~5.5V 36seg*4com 偏置电压1/2 1/3 I2C通讯接口 TSSOP-48 VKL144B 2.5~5.5V 36seg*4com 偏置电压1/2 1/3 I2C通讯接口 QFN48L (6MM*6MM) 静态显示LCD液晶控制器及驱动系列 VKS118 2.4~5.2V 118seg*2com 偏置电压 -- 4线通讯接口 LQFP-128 VKS232 2.4~5.2V 116seg*2com 偏置电压1/1 1/2 4线通讯接口 LQFP-128 内存映射的LED控制器及驱动器 VK1628 --- 通讯接口:STB/CLK/DIO 电源电压:5V(4.5~5.5V) 驱动点阵:70/52 共阴驱动:10段7位/13段4位 共阳驱动:7段10位 按键:10x2 封装SOP28 VK1629 --- 通讯接口:STB/CLK/DIN/DOUT 电源电压:5V(4.5~5.5V) 驱动点阵:128 共阴驱动:16段8位 共阳驱动:8段16位 按键:8x4 封装QFP44 VK1629A --- 通讯接口:STB/CLK/DIO 电源电压:5V(4.5~5.5V) 驱动点阵:128 共阴驱动:16段8位 共阳驱动:8段16位 按键:--- 封装SOP32 VK1629B --- 通讯接口:STB/CLK/DIO 电源电压:5V(4.5~5.5V) 驱动点阵:112 共阴驱动:14段8位 共阳驱动:8段14位 按键:8x2 封装SOP32 VK1629C --- 通讯接口:STB/CLK/DIO 电源电压:5V(4.5~5.5V) 驱动点阵:120 共阴驱动:15段8位 共阳驱动:8段15位 按键:8x1 封装SOP32 VK1629D --- 通讯接口:STB/CLK/DIO 电源电压:5V(4.5~5.5V) 驱动点阵:96 共阴驱动:12段8位 共阳驱动:8段12位 按键:8x4 封装SOP32 VK1640 --- 通讯接口: CLK/DIN 电源电压:5V(4.5~5.5V) 驱动点阵:128 共阴驱动:8段16位 共阳驱动:16段8位 按键:--- 封装SOP28 VK1650 --- 通讯接口: SCL/SDA 电源电压:5V(3.0~5.5V) 驱动点阵:8x16 共阴驱动:8段4位 共阳驱动:4段8位 按键:7x4 封装SOP16/DIP16 VK1668 ---通讯接口:STB/CLK/DIO 电源电压:5V(4.5~5.5V) 驱动点阵:70/52 共阴驱动:10段7位/13段4位 共阳驱动:7段10位 按键:10x2 封装SOP24 VK6932 --- 通讯接口:STB/CLK/DIN 电源电压:5V(4.5~5.5V) 驱动点阵:128 共阴驱动:8段16位17.5/140mA 共阳驱动:16段8位 按键:--- 封装SOP32 VK16K33 --- 通讯接口:SCL/SDA 电源电压:5V(4.5V~5.5V) 驱动点阵:128/96/64 共阴驱动:16段8位/12段8位/8段8位 共阳驱动:8段16位/8段12位/8段8位 按键:13x3 10x3 8x3 封装SOP20/SOP24/SOP28 (所有型号全部封装均有现货,欢迎加Q查询 191 888 5898 许生) 以上介绍内容为IC参数简介,难免有错漏,且相关IC型号众多,未能一一收录。欢迎联系索取完整资料及样品! 请加许先生 QQ:191 888 5898联系!谢谢 生意无论大小,做人首重诚信!本公司全体员工将既往开来,再接再厉。争取为各位带来更专业的技术支持,更优质的销售服务,更高性价比的好产品.竭诚希望能与各位客户朋友深入沟通,携手共进,共同成长,合作共赢!谢谢。
上传时间: 2020-05-25
上传用户:2937735731
This book gives a comprehensive overview of the technologies for the advances of mobile radio access networks. The topics covered include linear transmitters, superconducting filters and cryogenic radio frequency (RF) front head, radio over fiber, software radio base stations, mobile terminal positioning, high speed downlink packet access (HSDPA), multiple antenna systems such as smart antennas and multiple input and multiple output (MIMO) systems, orthogonal frequency division multiplexing (OFDM) systems, IP-based radio access networks (RAN), autonomic networks, and ubiquitous networks.
标签: Advances Networks Access Mobile Radio in
上传时间: 2020-05-26
上传用户:shancjb
Employing multiple transmit and receive antennas, namely using multi-input multi-output (MIMO) systems, has proven to be a major breakthrough in providing reliable wireless communication links. Since their invention in the mid-1990s, transmit diversity, achieved through space-time coding, and spatial multiplexing schemes have been the focus of much research in the area of wireless communications.
标签: Communication Systems Coding MIMO for
上传时间: 2020-05-26
上传用户:shancjb
Multiple-Input Multiple-Output (MIMO) systems have recently been the subject of intensive consideration in modem wireless communications as they offer the potential of providing high capacity, thus unleashing a wide range of applications in the wireless domain. The main feature of MIMO systems is the use of space-time processing and Space-Time Codes (STCs). Among a variety of STCs, orthogonal Space-Time Block Codes (STBCs) have a much simpler decoding method, compared to other STCs
标签: Orthogonal Space-Time Processing Complex
上传时间: 2020-05-26
上传用户:shancjb
Multiuser multiple-input-multiple-output (MU- MIMO) systems are known to be hindered by dimensionality loss due to channel state information (CSI) acquisition overhead. In this paper, we investigate user-scheduling in MU-MIMO systems on account of CSI acquisition overhead, where a base station dynamically acquires user channels to avoid choking the system with CSI overhead.
标签: Acquisition Dynamic Channel
上传时间: 2020-05-27
上传用户:shancjb
The writing of this book was prompted by two main developments in wireless communications in the past decade. First is the huge surge of research activities in physical-layer wireless communication theory. While this has been a subject of study since the 60’s, recent developments in the field, such as opportunistic and multi-input multi-output (MIMO) communication techniques, have brought completely new per- spectives on how to communicate over wireless channels.
标签: Communication Fundamentals Wireless of
上传时间: 2020-05-27
上传用户:shancjb
To meet the future demand for huge traffic volume of wireless data service, the research on the fifth generation (5G) mobile communication systems has been undertaken in recent years. It is expected that the spectral and energy efficiencies in 5G mobile communication systems should be ten-fold higher than the ones in the fourth generation (4G) mobile communication systems. Therefore, it is important to further exploit the potential of spatial multiplexing of multiple antennas. In the last twenty years, multiple-input multiple-output (MIMO) antenna techniques have been considered as the key techniques to increase the capacity of wireless communication systems. When a large-scale antenna array (which is also called massive MIMO) is equipped in a base-station, or a large number of distributed antennas (which is also called large-scale distributed MIMO) are deployed, the spectral and energy efficiencies can be further improved by using spatial domain multiple access. This paper provides an overview of massive MIMO and large-scale distributed MIMO systems, including spectral efficiency analysis, channel state information (CSI) acquisition, wireless transmission technology, and resource allocation.
标签: Large-scale Antenna Systems
上传时间: 2020-05-27
上传用户:shancjb
In order to improve the spectral efficiency in wireless communications, multiple antennas are employed at both transmitter and receiver sides, where the resulting system is referred to as the multiple-input multiple-output (MIMO) system. In MIMO systems, it is usually requiredto detect signals jointly as multiple signals are transmitted through multiple signal paths between the transmitter and the receiver. This joint detection becomes the MIMO detection.
标签: Complexity Detection MIMO Low
上传时间: 2020-05-27
上传用户:shancjb
Use of multiple antennas at both ends of wireless links is the result of the natural progression of more than four decades of evolution of adaptive antenna technology. Recent advances have demonstrated that multiple- input-multiple-output (MIMO) wireless systems can achieve impressive increases in overall system performance.
标签: Technology System MIMO
上传时间: 2020-05-28
上传用户:shancjb
The family of recent wireless standards included the optional employment of Multiple-Input Multiple-Output(MIMO)techniques.This was motivatedby the observationaccordingto the classic Shannon–Hartley law that the achievable channel capacity increases logarithmically with the transmit power. In contrast, the MIMO capacity increases linearly with the number of transmit antennas, provided that the number of receive antennas is equal to the number of transmit antennas. With the further proviso that the total transmit power is increased in proportion to the number of transmit antennas, a linear capacity increase is achieved upon increasing the transmit power, which justifies the spectacular success of MIMO systems.
标签: Multi-Functional Systems MIMO
上传时间: 2020-05-31
上传用户:shancjb