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- [公司资讯]超低功耗MCU模拟器件优化ECS晶体振荡器精准选型准则2026年07月24日 00:59
超低功耗MCU模拟器件优化ECS晶体振荡器精准选型准则
超低功耗MCU的核心优势在于休眠功耗极低,待机续航持久,其搭载的模拟电路主要负责信号采集,电压监测,定时唤醒,低频通信等功能,对时钟源的要求与常规高速MCU截然不同,传统晶振选型极易出现适配漏洞,核心痛点集中在四点:1.功耗不匹配,透支设备续航:普通晶振起振电流,工作电流偏高,无法适配nA级休眠,μA级待机的超低功耗MCU,即使MCU进入深度休眠模式,晶振持续耗电,大幅缩短电池供电设备的使用寿命.
2.参数不兼容,模拟采样失真:MCU模拟器件的AD采样,基准电压校准,低频信号处理对时钟稳定性要求极高,普通晶振温漂大,频率偏差高,会导致模拟数据采样误差,信号失真,降低设备检测精度.
3.负载阻抗不符,起振异常:低功耗MCU内部振荡电路驱动能力偏弱,常规高ESR(等效串联电阻)晶振易出现起振慢,起振不稳定,停振等问题,直接导致MCU死机,定时失效,唤醒异常.
4.温稳性不足,极端工况失效:工业,户外物联网设备温差跨度大,普通晶振高低温环境下频率漂移严重,造成MCU时钟错乱,模拟器件工作阈值偏移,设备故障率大幅提升.
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- [公司资讯]SiTime晶振TCXO与OCXO的定位差异与选型指南2026年07月22日 06:03
SiTime晶振TCXO与OCXO的定位差异与选型指南
作为全球MEMS精密时序标杆品牌,SiTime推出的MEMS超TCXO与高端Emerald系列OCXO,彻底颠覆传统石英晶振的设计逻辑,凭借全硅固态架构,全数字补偿,可编程调谐,抗振抗冲击,低老化漂移等核心优势,大幅降低硬件设计门槛,同时全面提升系统时序上限.不同于传统石英器件严苛的布线要求,繁琐的外围匹配,固定的参数限制,SiTimeTCXO/OCXO具备高集成,高容错,可配置,高抗扰的设计特性,可帮助研发工程师快速完成高性能时序系统搭建,缩短研发周期,减少改版次数,降低量产不良率.深圳市康华尔电子有限公司作为SiTime官方授权一级代理商,专注为硬件研发团队提供SiTime全系TCXO,OCXO,可编程MEMS时钟芯片的精准选型,设计指导,电路适配,方案替换与批量量产配套服务,助力工程师一次性搞定精密时序设计,规避各类设计踩坑问题,技术咨询热线:0755-27838351.bs":{"0":"*0*1+q*0*1*2+p*0*1+5f*0*1*2+c*0*1+3i*0*1*2+d*0*1+1"}},"apool":{"numToAttrib":{"0":["ai-extra","{\"is_ai_gen\":true,\"rewrite_command\":1}"],"1":["author","7592593332774128587"],"2":["bold","true"]},"nextNum":3}},"type":"text","referenceRecordMap":{},"extra":{"channel":"saas","isEqualBlockSelection":true,"pasteRandomId":"bbe2c167-35f5-4539-a1ea-74d310cae396","mention_page_title":{},"external_mention_url":{}},"isKeepQuoteContainer":false,"isFromCode":false,"selection":[{"id":3,"type":"text","selection":{"start":0,"end":398},"recordId":"JQe7fQsegdD72vcoOAqc07h6nkg"}],"payloadMap":{},"isCut":false}'>
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- [公司资讯]RIVER日本大河晶振KCRO系列具备超低的抖动特性2026年07月21日 00:18
RIVER日本大河晶振KCRO系列具备超低的抖动特性
作为拥有七十余年晶体研发制造底蕴的日本老牌精工企业,RIVER日本大河晶振深耕高精度,低噪声时钟元器件领域,针对高端高速设备的时序痛点,重磅推出KCRO系列超低抖动晶振.该系列产品依托RIVER独家KoT切割专利技术与无PLL纯晶振振荡架构,突破传统时钟器件的噪声瓶颈,实现业界顶尖的超低抖动,超低相位噪声性能,为高速通信,智能算力,精密工控,高端车载等高精尖场景提供纯净,稳定,精准的基准时钟信号.深圳市康华尔电子为RIVER日本大河晶振官方授权代理商,原厂直供KCRO全系列超低抖动晶振,现货充足,技术配套完善,欢迎各大研发,量产企业咨询对接:0755-27838351.bs":{"0":"*1*0+20*1*0*2+c*1*0+38*1*0*2+r*1*0+1p"}},"apool":{"numToAttrib":{"0":["author","7592593332774128587"],"1":["ai-extra","{\"is_ai_gen\":true,\"rewrite_command\":1}"],"2":["bold","true"]},"nextNum":3}},"type":"text","referenceRecordMap":{},"extra":{"channel":"saas","isEqualBlockSelection":true,"pasteRandomId":"31087e8f-8ba5-4ee2-9d03-1d7de8bbe544","mention_page_title":{},"external_mention_url":{}},"isKeepQuoteContainer":false,"isFromCode":false,"selection":[{"id":3,"type":"text","selection":{"start":0,"end":288},"recordId":"W1yjfKfSJdLJiQcWvdvcaflpnwe"}],"payloadMap":{},"isCut":false}'>- 阅读(62)
- [公司资讯]NDK音响专用超低相位噪声OCXO恒温晶振核心特长解析2026年07月14日 02:08
NDK音响专用超低相位噪声OCXO恒温晶振核心特长解析
在数字音频系统中,所有声音信号的采样,解码,转换,输出都需要依托晶振提供精准,纯净,稳定的时钟时序.普通晶振,常规TCXO温补晶振存在明显的近端相位噪声偏高,时钟抖动量大,短期频率稳定性不足等问题,这些细微的时钟误差,在音频系统中会被无限放大,成为音质劣化的核心根源.常规时钟器件的相位噪声缺陷,会引发一系列典型音质问题:近端杂散噪声会叠加在音频信号中,导致高频延伸不足,细节丢失,齿音刺耳;时钟抖动超标会造成时序错乱,引发低频拖沓浑浊,动态范围压缩,声场塌陷;频率瞬时偏移会破坏乐器结像定位,导致立体声分离度不足,人声与伴奏层次感模糊.尤其针对当下主流的DSD高清音源,高采样率无损音频,普通时钟器件的精度短板会彻底浪费高清音源的原始细节,无法实现高保真还原,这也是高端音响设备必须搭载超低相位噪声OCXO的核心原因.
而NDKDuCULoN®音频专用OCXO,彻底摒弃通用晶振的设计逻辑,以音频音质优化为核心导向,针对性攻克相位噪声,时钟抖动,频率稳定三大核心难题,是高端Hi-Fi音响,专业音频设备的御用级时钟基准.
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- [公司资讯]Q-Tech晶振航天军事与高温场景完整解决方案2026年07月04日 05:20
Q-Tech晶振航天军事与高温场景完整解决方案
针对航天军事,高温极端工况的多维度严苛痛点,Q-Tech摒弃民用低成本设计逻辑,全程按照军工MIL标准,航天宇航级可靠性规范设计制造,从晶片选材,精密切角,应力优化,加固封装,预老化筛选,抗辐照工艺,动态稳频补偿全链路专项优化,形成适配极端高温,强振,辐照,宽温变场景的成熟解决方案,彻底解决普通晶振高温漂移大,老化快,抗扰弱,易失效的行业短板.bs":{"0":"*0*1+18*0*1*2+i*0*1+33"}},"apool":{"numToAttrib":{"0":["ai-extra","{\"is_ai_gen\":true,\"rewrite_command\":1}"],"1":["author","7592593332774128587"],"2":["bold","true"]},"nextNum":3}},"type":"text","referenceRecordMap":{},"extra":{"channel":"saas","isEqualBlockSelection":true,"pasteRandomId":"9e2b465f-875d-46f9-ba99-f75fe1c0637f","mention_page_title":{},"external_mention_url":{}},"isKeepQuoteContainer":false,"isFromCode":false,"selection":[{"id":18,"type":"text","selection":{"start":0,"end":173},"recordId":"AEr0fNtzYdMlv8cyGQdcvBjrn0b"}],"payloadMap":{},"isCut":false}'>- 阅读(61)
- [公司资讯]Microchip晶振PIC18F-Q35借助CLB功能突破局限2026年07月03日 05:21
Microchip晶振PIC18F-Q35借助CLB功能突破局限
CLB(ConfigurableLogicBlock,可配置逻辑单元)是Microchip为PIC18F-Q35系列专属升级的创新性硬件架构,也是该系列MCU区别于传统通用8位单片机的核心亮点.不同于传统MCU固定的硬件外设架构,CLB是一套独立,可自由配置,可灵活组合的硬件逻辑资源,无需依赖CPU内核运算,无需新增外围分立器件,用户可通过配置软件自由搭建自定义组合逻辑,时序逻辑,触发逻辑,联动逻辑,真正实现"硬件逻辑按需定制",大幅释放MCU性能潜力与设计灵活性.PIC18F-Q35系列集成多组独立CLB逻辑单元,内部搭载可配置门电路,触发器,锁存器,多路选择器,同步/异步触发模块,信号滤波模块,边沿检测模块,支持各类基础逻辑运算与复杂时序逻辑组合.所有CLB逻辑均为纯硬件独立运行,无需CPU参与运算,不占用系统主频与内核资源,响应速度达到硬件纳秒级,时序精准,无软件延时,无抖动,无误差,完美解决软件模拟逻辑的各类缺陷.同时CLB支持在线配置,灵活改版,无需修改硬件电路,仅通过软件参数配置即可完成逻辑功能调整,极大降低产品迭代成本与改板风险.bs":{"0":"*0*1*2+11*0*1+40*0*1*2+m*0*1+y"}},"apool":{"numToAttrib":{"0":["ai-extra","{\"is_ai_gen\":true,\"rewrite_command\":1}"],"1":["author","7592593332774128587"],"2":["bold","true"]},"nextNum":3}},"type":"text","referenceRecordMap":{},"extra":{"channel":"saas","isEqualBlockSelection":true,"pasteRandomId":"ee8be3c6-f1e5-4525-8a4e-c7840ead28eb","mention_page_title":{},"external_mention_url":{}},"isKeepQuoteContainer":false,"isFromCode":false,"selection":[{"id":8,"type":"text","selection":{"start":0,"end":237},"recordId":"ZFgdfSluFdk1D6cM1EXc5CvFnqh"}],"payloadMap":{},"isCut":false}'>bs":{"0":"*0*1+2w*0*1*2+7*0*1+3p"}},"apool":{"numToAttrib":{"0":["ai-extra","{\"is_ai_gen\":true,\"rewrite_command\":1}"],"1":["author","7592593332774128587"],"2":["bold","true"]},"nextNum":3}},"type":"text","referenceRecordMap":{},"extra":{"channel":"saas","isEqualBlockSelection":true,"pasteRandomId":"6817eaf4-9125-46d1-9afc-52a1276d4499","mention_page_title":{},"external_mention_url":{}},"isKeepQuoteContainer":false,"isFromCode":false,"selection":[{"id":9,"type":"text","selection":{"start":0,"end":244},"recordId":"ILpIfE4kzdiE3acjNXgcNhLznFh"}],"payloadMap":{},"isCut":false}'>- 阅读(62)
- [公司资讯]Statek用于BLE和MICS应用的医疗级石英晶体晶振2026年07月02日 00:14
Statek用于BLE和MICS应用的医疗级石英晶体晶振
随着智慧医疗,远程监护,微创植入医疗技术的高速普及,医疗电子设备正式迈入无线化,微型化,低功耗,高可靠,长续航的全新发展阶段.区别于普通民用电子设备,医疗设备尤其是植入式,穿戴式,便携式诊疗设备,对核心时序元器件的精度,稳定性,安全性,抗干扰性,使用寿命有着严苛的行业合规标准与临床使用要求.在众多无线医疗通信技术中,BLE低功耗蓝牙与MICS医疗植入通信服务频段是当下远程医疗监护,植入式医疗器械,便携诊疗终端的核心通信载体,广泛应用于生命体征监测,植入式心律管理,神经刺激治疗,移动医疗数据传输等关键场景.bs":{"0":"*1*0+10*1*0*2+j*1*0+2w*1*0*2+8*1*0+1*1*0*2+e*1*0+21"}},"apool":{"numToAttrib":{"0":["author","7592593332774128587"],"1":["ai-extra","{\"is_ai_gen\":true,\"rewrite_command\":1}"],"2":["bold","true"]},"nextNum":3}},"type":"text","referenceRecordMap":{},"extra":{"channel":"saas","isEqualBlockSelection":true,"pasteRandomId":"7a1f60a6-f46c-462d-b7a0-b0946807a769","mention_page_title":{},"external_mention_url":{}},"isKeepQuoteContainer":false,"isFromCode":false,"selection":[{"id":2,"type":"text","selection":{"start":0,"end":255},"recordId":"LSzFfkOCFdXEV4cZN8xcMmM8n50"}],"payloadMap":{},"isCut":false}'>- 阅读(78)
- [公司资讯]Abracon助力实现下一代性能的电力解决方案2026年06月30日 00:34
Abracon助力实现下一代性能的电力解决方案
随着新型电力系统建设全面提速,新能源并网,智能电网,储能系统,电力自动化运维,智慧配电与电力物联网迎来跨越式发展.风电,光伏等间歇性新能源大规模并入电网,叠加分布式储能,微电网,柔性负载的广泛普及,传统电力系统正从"粗放式稳定供电"向"精细化,数字化,智能化,高可靠"的下一代高性能电力体系全面转型.在全新的电力运行架构下,高精度时间同步,稳定频率控制,低抖动信号传输,全天候可靠运行成为保障电网安全稳定,精准计量,高效调度,故障精准溯源的核心基础.电力系统的每一次并网切换,每一组数据采集,每一次保护动作,每一条调度指令落地,都离不开精密时序器件的硬核支撑.作为全球知名的频率控制与定时器件领军品牌,Abracon(艾博康)深耕时频技术数十年,针对电力行业高温,强电磁干扰,长期不间断运行,宽温域工况等严苛场景,量身打造下一代高性能电力专用频率控制与定时解决方案,全方位赋能智能电网,新能源储能,电力自动化,电力测控保护等核心场景迭代升级.bs":{"0":"*0*1+4i*0*1*2+u*0*1+6d"}},"apool":{"numToAttrib":{"0":["ai-extra","{\"is_ai_gen\":true,\"rewrite_command\":1}"],"1":["author","7592593332774128587"],"2":["bold","true"]},"nextNum":3}},"type":"text","referenceRecordMap":{},"extra":{"channel":"saas","isEqualBlockSelection":false,"pasteRandomId":"15ef9fbc-a28e-47ed-b8a2-8561b60bf266","mention_page_title":{},"external_mention_url":{}},"isKeepQuoteContainer":false,"isFromCode":false,"selection":[{"id":2,"type":"text","selection":{"start":0,"end":421},"recordId":"HtxGfEulUdMpEkc2exJcbhrUn7c"}],"payloadMap":{},"isCut":false}'>- 阅读(82)
- [公司资讯]MTI-milliren石英晶体振荡器长期老化性能结果2024年04月22日 14:30
MTI-milliren石英晶体振荡器长期老化性能结果
石英晶体振荡器的超长时间老化性能研究
摘要
将提供长达1900天的延长老化测试结果,以深入了解石英晶体振荡器的长期漂移特性。将对结果进行讨论,以显示环境条件和功率开关循环变化的影响。
1.介绍
对几种类型的石英晶体振荡器进行了非常长时间尺度的老化测量,包括AT和SC切割烘箱控制晶体振荡器(OCXO)以及温度补偿晶体振荡器(TCXO)。)尽管每个OCXO在生产中都会老化,但通常只在满足老化率规范所需的时间段内收集数据。由于确定真正的老化性能需要很长的测试时间,TCXOs很少老化。通常无法获得大组振荡器长期老化性能的研究结果。
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- [TXC资讯]QuartzCom从天然石英SMX-7S到精确计时2024年04月19日 10:45
QuartzCom从天然石英SMX-7S到精确计时
压电效应是居里兄弟在1880年描述的。这是基础知识 需要开启一个时间测量和频率控制的新时代。
直到20世纪60年代,天然石英还被用作原材料 石英晶体的生产。但是乔治·斯佩齐亚已经发现了 1900年在意大利都灵大学 石英。他的高压灭菌器很小,是气体加热的。他制作了 第一个可用的人造石英石。石英的生长是不可能的 由熔化的材料制成。石英的反转点在 573 ℃,其中结构从低温α 石英(压电)到高温β石英(不再 压电)。在从高温到低温的过程中,晶体 追溯到阿尔法石英结构。而是来自阿尔法石英存在两种结晶学 版本,右手左手水晶。 这产生了双胞胎,意味着水晶的一部分被留下了 另一部分是右撇子。这给出了一个 完全不同的行为 最终产品。这样的 水晶已经没用了 敬水晶行业。
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- [公司资讯]Abracon针对节能MCU优化的ABS05-32.768KHz-T晶振设备2024年04月18日 16:50
- Abracon针对节能MCU优化的ABS05-32.768KHz-T晶振设备
ABS05调谐叉晶体1.6x1.0x0.5mm设备,优化了节能mcu
I.介绍
在过去的两年中,供应链的挑战使行业标准的3.2x1.5mm和2.0x1.2mm音叉晶体的高容量供应变得非常复杂。灯塔考虑到了这一挑战,并开发了其微型ABS05系列的4.0pF镀板版本。
Abracon的ABS07家族3.2x15x0.9mm音叉石英晶体是济贫院的解决方案,从工业和医疗电子产品到消费者物联网产品。随着下一代mcu的使用已经确立,对更低的电镀负载(下降到4.0pF)版本的需求获得了势头。
与此同时,行业小型化最终产品设计的持续趋势已经让位于对2.0x1.2x0.6mm音叉石英晶体的需求,这以Abracon的ABS06系列产品为代表。 - 阅读(904)
- [TXC资讯]Pletronics振荡器SM2245KE-32.768K-T3K为精确计时树立了新的基准2024年04月13日 11:17
Pletronics振荡器SM2245KE-32.768K-T3K为精确计时树立了新的基准
在便携式、可穿戴和电池驱动设备不断发展的格局中,对紧凑、节能组件的需求从未如此之大。Pletronics SM22K/SM33K/SM44K 32.768KHz CMOS石英晶体振荡器系列以其多样化的封装尺寸阵容、出色的频率稳定性和显著的低功耗而成为精度的灯塔。本文探讨了该系列的关键特性,强调了它作为现代电子应用的高级实时时钟参考的作用。
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- [TXC资讯]领先同行Cardinal quartz crystal oscillator的反脆弱性2023年10月07日 16:59
- 领先同行Cardinal quartz crystal oscillator的反脆弱性,爱因斯坦说:“一切都应该尽可能简单,但不能简单。”。本“教程”的主要目标是尽可能简单地帮助介绍频率控制和定时中最常见的概念。
我经常被要求向访客、管理层和精密晶体振荡器的潜在用户介绍情况,还被邀请在大学、IEEE和其他专业团体面前发表研讨会、教程和评论论文。一开始,我花了很多时间准备这些演示。大部分时间都花在了准备幻灯片上。随着我积累了越来越多的幻灯片,准备连续的演示文稿变得越来越容易。
我经常被要求提供幻灯片的“硬拷贝”,所以我开始组织,并补充道一些文本,并填补幻灯片集合中的空白。随着收藏的增加,我开始收到好评和要求增加副本的请求。显然,其他人也发现这个收藏很有用。最终,我组装了这份文件,即“教程”。
这是一项正在进行的工作。我计划加入新材料,包括补充说明。欢迎对今后的修订提出意见、更正和建议。 - 阅读(603)
- [公司资讯]遥遥领先威尔威OSC晶振常用于可穿戴设备支持选型2023年10月07日 13:00
遥遥领先威尔威OSC晶振常用于可穿戴设备支持选型,Wi2Wi is a vertically integrated global manufacturer providing Wireless Connectivity Solutions, Location & Navigation Solutions, Timing Devices, Frequency Controllers and Microwave Filters to the global market. Wi2Wi provides modules and subs systems based on 2.4GHz Wi-Fi 802.11 b/g/n, Dual Band WiFi 802.11 ac/a/b/g/n (2.4/5GHz), Wifi 802.11 bgn plus Bluetooth Multi-Protocol, 802.11 abgn/ac+BLE 4.2 and Bluetooth BLE modules and are widely accepted in the Internet of Things (IoT) and Industrial Internet of Things (IIoT/M2M) markets. These Wi2Wi’s Hosted, Embedded and MCU Embedded module and subsystem architecture serves the unique technical requirements of each customer into various market segments; Healthcare, Home/Building Automation, Retail, Medical, After Market Automotive etc. Wi2Wi's locationing module solutions support multi-constellation GPS, GLONASS, SBAS, and QZSS. Wi2Wi is a well-recognized name in the Avionics, Space, Industrial and Military markets through its “PDI” Brand Quartz Crystals, Crystal Oscillators, Crystal Filters, and MILPRF55310 certified QPL Oscillators, MIL PRF 3098 certified Crystals and Space Qualified Oscillators
投资关系
Wi2Wi是一家垂直整合的全球制造商,提供无线连接解决方案,位置和导航解决方案,计时装置、频率控制器和微波滤波器走向全球市场。Wi2Wi提供模块和子系统,基于2.4GHz无线网络802.11 b/g/n,双频带WiFi 802.11交流/交流/宽带/宽带(2.4/5GHz),Wifi802.11 bgn加蓝牙多协议,802.11澳大利亚/加拿大+BLE 4.2和蓝牙BLE模块和在物联网和工业物联网(IIoT/M2M)市场。这些Wi2Wi款待, 植入的和嵌入式MCU模块和子系统架构满足不同细分市场中每个客户的独特技术要求;卫生保健, 家庭/楼宇自动化, 零售、医疗、汽车后市场等。Wi2Wi的定位模块解决方案支持多星座全球定位系统,GLONASS,SBAS和QZSS。Wi2Wi通过其“PDI”牌石英,在航空电子、航天、工业和军事市场上享有盛誉晶体,水晶晶体振荡器, 晶体过滤器和MILPRF55310认证QPL振荡器、MIL PRF 3098认证晶体和空间合格振荡器.
Wi2Wi是一家垂直整合的全球设计商、集成商和制造商,为各种高端全球市场提供无线技术解决方案。该公司的产品套件包括无线连接解决方案、频率控制产品,以及用于航空电子设备的射频和微波滤波器;空间;军事;防御;政府;基础设施;工业;汽车;医疗;通信;移动无线电;物联网(IoT);个人导航设备和高端消费应用。
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- [台湾晶体技术]领先同行HELE汽车级SMD晶体术语与选型2023年09月28日 11:35
领先同行HELE汽车级SMD晶体术语与选型,Crystal oscillators and crystal resonators are essential components used in electronic devices to generate precise and stable frequencies. As an engineer working with these components, it's important to understand some key terms that will help you select the right crystal for your application. Here are six everyday terms you need to know:
1. Fundamental Mode
The fundamental mode refers to the primary frequency at which a crystal is designed to vibrate. Most crystals operate in the fundamental mode, meaning they vibrate at their intended frequency. However, crystals can also be designed to vibrate at higher frequencies, known as overtones. These overtones occur near multiples of the fundamental resonant frequency, such as the 3rd or 5th overtone. When selecting a crystal, it's crucial to determine whether it operates in the fundamental mode or an overtone mode.
2. Operating Temperature Range
The operating temperature range specifies the temperatures within which a crystal can function reliably. Different applications may require crystals that can withstand specific temperature ranges. For example, automotive-grade crystals may have an operating temperature range of -40°C to 125°C. It's important to pay attention to the operating temperature range of a crystal to ensure it meets the requirements of your application.
3. Frequency Stability
Frequency stability refers to the ability of a crystal oscillator or resonator to maintain a consistent frequency output over time. It is expressed in parts per million (ppm) and typically measured at room temperature (25°C). The lower the ppm value, the more stable the frequency output. Crystals with higher stability are often used in applications where precision is crucial, such as GPS devices.
4. Frequency Tolerance
Frequency tolerance represents the acceptable deviation from the stated frequency across the entire operating temperature range of the crystal. It is added to the frequency stability value measured at room temperature. For example, a crystal with a frequency stability of 50 ppm and a frequency tolerance of 50 ppm means that the actual frequency may vary by up to 100 ppm across the entire temperature range.
5. Load Capacitance
Load capacitance refers to the capacitance value within the crystal oscillator or resonator. It is expressed in picofarads (pF) and determines the external capacitance required for the crystal to function optimally. The load capacitance can be a standard value specified on the datasheet or customized based on the specific requirements of the circuit design. Optimizing the load capacitance helps ensure the crystal's stable operation across temperature extremes.
6. Case Size
The case size indicates the physical dimensions of the crystal package. It is typically expressed as length x width x height (e.g., 5.0mm x 3.2mm x 0.8mm). Additionally, the case size may specify the number of pads (2 or 4) and the package type, such as ceramic, plastic, glass weld, or epoxy weld. Engineers often refer to case sizes using industry-standard codes like 2016 or 3225.
By familiarizing yourself with these everyday terms, you'll gain a better understanding of crystal oscillators and crystal resonators. Remember to consider fundamental mode, operating temperature range, frequency stability, frequency tolerance, load capacitance, and case size when selecting the right crystal for your electronic designs.
Note: The information provided is based on industry knowledge and best practices. For detailed specifications and further guidance, consult the manufacturer's datasheets and application notes.
For additional information, contact Harmony Electronics to discuss our crystal devices and how we can assist with your quartz frequency component needs. We encourage you to explore our website to learn more about our company, applications, and product offerings.
晶体振荡器和石英晶体谐振器是电子设备中用来产生精确和稳定频率的基本元件。作为一名使用这些元件的工程师,了解一些关键术语非常重要,这将有助于您根据应用选择合适的晶体。以下是你需要知道的六个日常用语:
1.基本形式
基模是指晶体设计振动的主要频率。大多数晶体以基本模式运行,这意味着它们以预定的频率振动。然而,晶体也可以被设计成以更高的频率振动,即泛音。这些泛音出现在基本谐振频率的倍数附近,例如第三或第五泛音。选择晶振时,确定它是工作在基音模式还是泛音模式至关重要。
2.工作温度范围
工作温度范围规定了晶体能够可靠工作的温度。不同的应用可能需要能够承受特定温度范围的晶体。例如,汽车级SMD晶体的工作温度范围可能为-40°C至125°C,务必注意晶体的工作温度范围,以确保其满足应用要求。领先同行HELE汽车级SMD晶体术语与选型.
3.频率稳定度
频率稳定性是指晶体振荡器或谐振器在一段时间内保持一致频率输出的能力。它以百万分率(ppm)表示,通常在室温(25°C)下测量。ppm值越低,频率输出越稳定。稳定性更高的晶体通常用于精度至关重要的应用中,如GPS设备。
4.频率公差
频率容差表示在晶体的整个工作温度范围内,与规定频率的可接受偏差。它与室温下测得的频率稳定度值相加。例如,频率稳定性为50ppm、频率容差为50ppm的石英晶体意味着实际频率在整个温度范围内的变化幅度最高可达100ppm。
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- [TXC资讯]美国CTS振荡器选型列表2023年09月07日 17:05
美国CTS振荡器选型列表,美国CTS公司是一家超级专业化的元器件供应商,主要向广泛应用市场提供极其具有价值的产品线为主,经过长期的沉淀,如今的CTS已有极大的突破,尤其在制作高质量的OSC晶振产品更是将其的实力展示一览无遗,凭借着自身对于元器件行业的热爱,源源不断创造价值的同时,也行业开创大量创新型的产品,这是产品使得CTS公司的发展进行新的阶段,也使得其名气暴涨,也为其的发展打下极好的基础。
Clocks for North American synchronized networks are categorized into four basic “stratum” levels (i.e., stratum 1, 2, 3 and 4), where stratum 1 clocks are the most accurate and stratum 4 clocks are the least accurate. In addition to these four basic levels, there are two enhanced stratum classifications (i.e., stratum 3E and 4E), a level for Transit Node Clocks (TNCs) that falls between the stratum 2 and 3 levels, and another level for SONET Minimum Clocks (SMCs) that falls between the stratum 3 and 4 levels. All of these levels (which are described further below) have been standardized and their basic performance parameters are defined in ANSI T1.101. In general, the performance parameters for the various levels have been established to assure that synchronization can be transmitted through the network from the most accurate clocks, through intermediate clocks, to the least accurate clocks.
北美同步网络的时钟被分类为四个基本的“阶层”级别(即。层1、2、3和4),其中层1时钟最准确,层4时钟最少精确的除了这四个基本层次之外,还有两个增强的地层分类(即3E和4E),位于层2和层3级别之间的传输节点时钟(跨国公司)的级别,以及另一个位于层3和4级别之间的SONET最小时钟(SMC)的级别。所有这些级别(将在下文中进一步描述)已经被标准化,并且它们的基本性能参数是定义见ANSI T1.101。一般来说,已经确定了各个级别的性能参数为了确保同步可以从最准确的时钟通过网络传输中间时钟到最不精确的时钟。
Stratum 2, 3E and 3 clocks form the major distributive part of service provider synchronization networks. These clocks are generally deployed in NEs (Network Elements) in pairs (i.e., as independent, redundant units, each of which consists of an oscillator and the functions for controlling that oscillator).层2、3E和3时钟形成了服务提供商同步网络的主要分布部分。这些时钟通常成对地部署在网元(网元)中(即,作为独立的、冗余的每个单元由一个晶体振荡器和用于控制该振荡器的功能组成)。
In general, the stratum 3E level was defined to be compatible with previously existing stratum 3 clocks (i.e., it has the same pull-in/hold-in requirements as stratum 3). However, the stratum 3E requirements on filtering of wander and holdover are significantly tighter than those for stratum 3. GR-436-CORE recommends that stratum 3E clocks be the minimum clocks used for Building Integrated Timing Supply (BITS) applications. In addition, it is recommended that stratum 3E or higher quality clocks not be used in NEs other than a BITS (e.g., it is recommended that transport NEs use stratum 3 or lower quality clocks).一般来说,层3E级别被定义为与先前存在的层3时钟兼容(即具有与地层3相同的拉入/保持要求)。然而,地层3E对过滤的要求漂移和滞留明显比地层3的那些更紧密。GR-436-CORE建议第3E层时钟是用于楼宇集成定时供应(BITS)应用的最小时钟。在里面此外,建议在BITS以外的网元中不要使用第3E层或更高质量的时钟或石英晶体振荡器(例如,建议传输网元使用第3层或更低质量的时钟)。
The accuracy of a clock is a measure of its ability to generate, in the absence of any reference, a frequency as close as possible to the nominal frequency. Frequency accuracy is expressed and defined quantitatively in terms of maximum fractional frequency offset, as discussed in Section 3.2. Table 4-1, 4-4, 4-7 lists the freerun accuracy values for the various clock stratum levels (Stratum 2, 3E, 3).时钟的准确性是衡量其在没有任何参考的情况下产生频率的能力尽可能接近标称频率。频率精度在最大分数频率偏移项,如第3.2节所述。表4-1、4-4、4-7列出了各种时钟阶层级别(阶层2、3E、3)的自由运行精度值。
Free-run accuracy represents the maximum long-term (20 years) deviation limit from the nominal frequency with no outside frequency reference (Free Run Mode).自由运行精度表示与标称频率的最大长期(20年)偏差限制没有外部频率参考(自由运行模式)。
Accuracy is used in this document to indicate the degree to which the frequency of a clock may deviate from its ideal or desired value. Accuracy is usually used to specify the frequency deviation of a clock in the free-run mode. (See Section 3.6 for a discussion of modes.) Accuracy is defined such that the magnitude of the fractional frequency offset of a clock does not exceed the specified number, where: fractional frequency offset = (f-fd)/fd f = actual frequency output of a clock fd = ideal or desired frequency.
本文件中使用精度来指示时钟频率可能偏离的程度其理想值或期望值。精度通常用于指定自由运行中时钟的频率偏差模式(有关模式的讨论,请参见第3.6节。)定义精度时时钟的分数频率偏移不超过指定的数字,其中:分数频率偏移=(f-fd)/fd
f=时钟的实际频率输出
fd=理想或期望的频率。Drift is a measure of how a clock’s frequency accuracy (or offset) changes with time. Drift is typically used (along with an initial holdover accuracy or offset limitation and possibly a temperature-related factor) to limit the frequency offset of a clock in the holdover mode.
漂移是衡量时钟频率精度(或偏移)如何随时间变化的指标。通常使用漂移(连同初始保持精度或偏移限制以及可能的温度相关因素)保持模式中时钟的频率偏移.
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- [公司资讯]艾博康超低抖动石英晶体振荡器介绍2023年09月06日 13:59
艾博康超低抖动石英晶体振荡器介绍,Small form factors allow system designers to keep their products condensed and compact, but the reduced size comes at a performance cost compared to larger versions of the same components. For high-speed computations and operations, many applications require extremely low jitter from the reference clock. System designers evaluate the trade-offs and alternatives to search for the best combination of size and rms phase jitter performance. Some applications that use such low jitter technology include optical modules, cloud computing, networking, data storage, PCIe-5/6, 100G/200G/400G/800G Ethernet and other RF applications.
小的外形因素使系统设计师能够保持其有源晶振产品的简洁和紧凑,但与相同组件的较大版本相比,尺寸的减小会带来性能成本。对于高速计算和操作,许多应用程序需要极低的抖动参考时钟。系统设计者评估权衡和备选方案,以搜索尺寸和均方根相位抖动性能的最佳组合。一些使用如此低抖动技术包括光学模块、云计算、网络、数据存储、PCIe-5/6、100G/200G/400G/800G以太网和其他射频应用。
In 2019, Abracon released its first generation AK2 and AX3 series as part of the ClearClock™ family of ultra-low jitter quartz crystal oscillators. These third-overtone solutions were created to keep up with the demand for 100 to 200 MHz clocking solutions in small package sizes; particularly PCI Express, optical transceivers, data storage, and networking designs. Abracon ClearClock™ solutions are offered in LVPECL, LVDS, and HCSL outputs across this frequency range. 2019年,Abracon发布了第一代AK2和AX3系列,作为ClearClock的一部分™ 的家族超低抖动石英晶体振荡器。这些第三泛音解决方案是为了跟上对小封装尺寸的100至200MHz时钟解决方案的需求;特别是PCI Express,光学收发器、数据存储和网络设计。Abracon ClearClock™ 提供了解决方案在该频率范围内的LVPECL、LVDS和HCSL输出中。
With the development of new oscillator IC technology, Abracon released the next generation of ClearClock™ oscillators: the AK2A and AK3A series. Matching the smaller footprints of the AK2 (2.5 x 2.0 mm) and AX3 (3.2 x 2.5 mm) respectively, the AK2A and AK3A series offer improved rms phase jitter performance without sacrificing their compact form factor. For example, at 156.25 MHz carrier frequency, the AK3A offers a typical RMS jitter of 72 fs for its HCSL output, improved from the AX3’s typical 113 fs RMS jitter performance over the 12kHz to 20MHz BW from the carrier.
随着新型晶体振荡器IC技术的发展,Abracon发布了下一代ClearClock™ 振荡器:AK2A和AK3A系列。匹配AK2的较小占地面积(2.5x2.0毫米)和AX3(3.2x2.5毫米),AK2A和AK3A系列提供了改进的均方根相位抖动性能,而不牺牲其紧凑的外形因素。例如,在156.25MHz载波频率,AK3A的HCSL输出提供了典型的72 fs的RMS抖动,比AX3的有所改进载波在12kHz到20MHz带宽上的典型113 fs RMS抖动性能.
Taking a closer look at this example, the AK3A has a 3.2 x 2.5 mm footprint and delivers 72 fs typical RMS jitter over an offset bandwidth of 12 kHz – 20 MHz (referenced from the carrier frequency), with a maximum specification limit of 100 fs. RMS phase jitter is a time domain parameter that is derived from the phase noise (frequency domain) measurement. Figures 1 and 2 show the phase noise plots of the corresponding AK3A and AX3 part numbers (AK3AHAQ1-156.25MHZ and AX3HAQ1-156.25MHZ). Both parts are operated at 3.3V with a 156.25 MHz differential HCSL output. Note that at frequency offsets starting at 100kHz, the AK3A has a lower phase noise floor than the AX3, reaching -161 dBc/Hz at a 20MHz offset.
仔细看一下这个例子,AK3A的占地面积为3.2x2.5毫米,通常可提供72 fs偏移带宽为12kHz–20MHz(参考载波频率)的RMS抖动最大规格限制为100 fs。RMS相位抖动是一个时域参数,从相位噪声(频域)测量。图1和图2显示了相应的AK3A和AX3零件号(AK3AHAQ1-156.25MHZ和AX3HAQ1-156.25MHZ)部件在3.3V下操作,具有156.25MHz差分HCSL输出。请注意,在频率偏移处从100kHz开始,AK3A的本底相位噪声低于AX3,在20MHz偏移。
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