WMSIC Electronic Components

ADI/LINEAR DS1340Z-33+T&R DS1340Z

ModelDS1340Z-33+T&R
PackageSOIC-8
BrandADI/LINEAR
Price Price on request Electronic component prices change quickly with market supply and demand. Please refer to the latest WMSIC quotation for current pricing.
Configuration
1 options
Configuration 25+

Available for RFQ

Technical data

Product details

18 specifications

Core information

Product name
ADI(Analog Devices) / LINEAR DS1340Z-33+T&R
Type
ADI/LINEAR
Minimum package
2500

Technical parameters

Electronic Component
ADI(Analog Devices) / LINEAR
Electronic Component
DS1340Z-33+T&R
Electronic Component
1
Package
SOIC-8
Electronic Component
Real-Time Clock (RTC)
Electronic Component
0.213g
Electronic Component
1
Electronic Component
BM0258833833
Operating Temperature
40℃~+85℃
Operating Voltage
2.97V~5.5V
Operating Current
192uA
Interface Type
I2C
Crystal Oscillator Type
Electronic Component
Static Current(Iq)
25nA
Electronic Component
2500

For datasheets, package documents, compatible-part guidance, or other technical resources, contact WMSIC customer service. Availability is confirmed case by case.

DS1340Z-33+T&R 产品概述

一、产品简介

DS1340Z-33+T&R 是一款低功耗、精确的实时时钟(RTC)芯片,适用于需要长期计时和电池备份的嵌入式系统。器件以外置晶振作为时间基准,支持标准的日期/时间格式(星期/日/月/年 时:分:秒),通过 I2C 总线与主控器通信,供电电压范围宽(2.97V 至 5.5V),并以 SOIC-8(NSOIC-8)封装提供,适合批量贴片与手工焊接两种场景。品牌参考:ADI(Analog Devices / Linear)。

二、主要特性

  • 标准 RTC 时间/日历格式:星期/日/月/年,时:分:秒,便于直接显示与处理。
  • I2C 接口:简化与单片机、MCU 或微处理器的硬件连接与软件驱动。
  • 宽电压范围:2.97V ~ 5.5V,兼容 3.3V 与 5V 系统。
  • 低工作电流:典型工作电流约 192 μA(工作时),大幅降低系统功耗。
  • 极低静态电流:静态(待机/掉电)电流 Iq 仅 25 nA,延长电池寿命。
  • 外置晶振:采用外部石英晶体作为时间基准(通常配合 32.768 kHz 晶体),提高时间精度与稳定性。
  • 宽温度范围:工作温度 -40℃ ~ +85℃,适合工业级应用。
  • 封装:SOIC-8 / NSOIC-8,兼容常见 PCB 布局需求。

三、电气参数与工作条件

  • 工作电压(VCC):2.97V ~ 5.5V,支持电源电压波动和电平兼容。
  • 工作电流:约 192 μA(典型,视负载与 I2C 访问频率而变)。
  • 静态电流(备用/掉电):约 25 nA,适合长时间电池备份应用。
  • 环境温度:-40℃ ~ +85℃,满足大多数工业和商用环境的可靠性要求。
  • 晶振:外置晶体(建议使用 32.768 kHz 专用 RTC 晶体以获得最佳性能)。

四、功能与接口

  • 时间与日历维护:自动进位处理秒、分、时、日、月、年与星期,简化上层软件。
  • I2C 总线通信:通过简单的寄存器读写实现时间设置与读取,便于与常见 MCU(如 AVR、ARM、PIC 等)集成。
  • 电源管理:支持主电源与备用电池(或电容)无缝切换,掉电时保持时间计数。
  • 外部晶振设计:外部晶体直接接入晶振引脚,建议按芯片手册布置负载电容与地平面以保证振荡稳定性。

五、典型应用场景

  • 工业控制系统:需要长期计时、事件记录与带电池备份的设备。
  • 数据记录仪与测量设备:在断电后仍需保持时间一致性的应用。
  • 消费类与家电产品:如智能家居控制器、定时器等需可靠计时功能的产品。
  • 通信与网络设备:用于日志时间戳与调度控制。
  • 医疗、POS 与金融终端:对时间准确性与可靠性有较高要求的场合。

六、封装与 PCB 设计注意事项

  • 封装为 SOIC-8(NSOIC-8),针脚间距与占板面积适中,便于 SMT 生产。
  • 晶振布局:晶体与晶振引脚应尽量靠近,晶体两侧连线尽量短且接地平面完整;按参考设计放置负载电容并避免高频干扰源。
  • 电源去耦:VCC 旁放置 0.1 μF 陶瓷电容以抑制瞬态噪声,备用电池引出线路加上二极管或开关以实现可靠切换。
  • I2C 总线:为提升兼容性与抗干扰能力,建议在 SDA/SCL 上使用上拉电阻并根据总线长度与负载选择合适阻值。

七、使用建议与调试要点

  • 初始化:上电后先设置正确的时间与日历寄存器(若芯片未自带有效时间),并确认时钟振荡已启动。
  • 读写策略:频繁读写会增加功耗,建议采用缓存与定时更新策略以降低平均功耗。
  • 校准:若需更高精度,可通过软件定期与参考时间源(如 NTP)对齐;硬件上确保晶体品质与匹配负载电容。
  • 电池寿命:选择合适容量与类型(如 CR2032)并估算静态电流与工作频率下的电池寿命;备用电源布线要短且阻抗低。

八、注意事项

  • 请参照器件完整数据手册获取针脚定义、寄存器映射、典型应用电路与温度漂移等详细参数。
  • 在高干扰环境中,应加强晶体与时钟引脚的屏蔽与滤波设计,以避免振荡器失稳。
  • 软件设计上注意 BCD/二进制格式的转换(若芯片采用 BCD 存储时间数据),并处理闰年与月份长度变化。

总结:DS1340Z-33+T&R 凭借宽电压、超低静态电流、工业级温度范围与 I2C 接口,适合要求长期电池备份与可靠时间保持的嵌入式应用。合理的硬件布局与软件管理能充分发挥其低功耗与高稳定性的优势。

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