SLKOR SL-W-TRS-5.5Dx Digital Infrared Thermopile Chip Application Solutions

2024-09-28 Kinghelm Official Website
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To help customers make the most of SLKOR's products, the company has recently introduced the SL-W-TRS-5.5DX Digital Infrared Thermopile Chip and its associated application solutions, offering comprehensive technical support. 

Sun Gaofei (left), Zhang Junjun(middle), and Professor Li Jianxiong from Tsinghua University


SLKOR's Marketing Director, Sun Gaofei, introduced that the "SLKOR" brand's digital infrared thermopile is designed for non-contact temperature measurement applications in fields such as medical devices, smart wearables, smart home appliances, industrial temperature monitoring, non-contact body temperature measurement, forehead thermometers, student ID cards, and electronic sentinels.

 

The SL-W-TRS-5.5Dx chip features a direct-mount digital infrared thermopile designed for non-contact temperature measurement. It includes an integrated thermopile sensor and dedicated processing chip, allowing communication and data reading via an I²C bus without additional external components. The chip has standard metal tube options of 5mm and 8mm and can operate in temperature environments ranging from -40℃ to 130℃. It measures temperatures of liquids, objects (surface temperatures), and body temperatures, with a measurement range of -40℃ to 530℃.


The SL-W-TRS-5.5Dx series models are:

SL-W-TRS-5.5D1 — Bare sensor, TO-46 package, field of view (FOV) = 90°

SL-W-TRS-5.5D2 — TO-46 package with a 5mm high metal tube, FOV = 75°

SL-W-TRS-5.5D3 — TO-46 package with an 8mm high metal tube, FOV = 60°

SL-W-TRS-5.5D4 — TO-46 package with a 5mm custom metal tube, FOV = 75°

SL-W-TRS-5.5D5 — TO-46 package with a 5mm custom metal tube, FOV = 75°

SL-W-TRS-5.5D6 — TO-46 package with a 3.5mm custom metal tube, FOV = 75°

 

2. Typical application circuit diagram

2.1 The circuit principle of SL-W-TRS-5.5Dx

The SL-W-TRS-5.5Dx device has four pins, including power and I²C bus connections, with an allowable supply voltage range of 2.3 to 3.6V. The sensor itself has low power consumption, and a 0.1uF capacitor is sufficient between the power and ground. If the sensor is located far from the power supply, a 10uF capacitor can be added to ensure stable power and reduce noise.


2.2 The SL-W-TRS-5.5Dx device supports the I²C communication protocol for serial communication. The choice of communication protocol is based on the state of the CSB pin. The I²C bus uses SCL and SDA as signal lines, both connected to VDDIO through pull-up resistors to maintain a high level when the bus is idle. The I²C device address of the digital device can be configured via the Chip_Address in register 0x92, with a generic 7-bit address of 0x7F for I²C communication (as shown in the figure below).


I 2C Device generic address

I²C The bus line characteristics of the SDA and SCL lines in the I²C bus

I 2C Timing diagram

I 2C Communication protocol


2.3 When SCL is high and SDA transitions from high to low, it signals the start of I²C data communication. The I²C master device sequentially sends the 7-bit address of the slave device, followed by the R/W control bit to choose read/write operations. Upon recognizing the address, the slave generates an acknowledgment signal by pulling SDA low during the ninth SCL (ACK) cycle. When SCL is high and SDA transitions from low to high, it marks the end of I²C data communication. Data on SDA must remain stable while SCL is high, and it can only change when SCL is low.

 
3.TO-46 Metal tube package and dimensions

3.1 Pin definitions

3.2 Structural design requirements

For models with a metal optical cup, if structurally permissible, the sensor lens may extend beyond the top surface of the device housing. If there are aesthetic restrictions requiring the component to be recessed, the design must ensure that the structure avoids obstructing the device's field of view.

For products that require the use of the TO46 bare sensor chip due to specific needs, the sensor's inherent field of view (FOV) is approximately 90 degrees. Because infrared thermopile sensors are very sensitive to light and heat, a stable ambient temperature minimizes stray light interference, resulting in more accurate measurement results. Generally, direct measurement with the sensor is not recommended; structural integration is needed for product applications. The sensor itself comes with a silicon optical filter, which attenuates infrared signals and can lead to lower measurement results. Unless absolutely necessary, additional filters should not be added.

 

4.1 Thermal design requirements

The ambient temperature significantly impacts measurement accuracy, so it is important to keep the sensor in a stable environment to avoid interference from heat sources. Therefore, it should be located away from high-heat-generating components. On the PCB, it is advisable to design slots around the sensor, placing it in an isolated area.

 

4.2 Measurement distance 

The sensor's output characteristics are more influenced by distance when measuring at close range (generally within 20mm of the sensor lens). Therefore, for measuring human body temperature, a recommended distance of approximately 2-5 cm is advised. For measuring other objects, the distance can be extended as long as the field of view requirements are met.

 

5. Program design 

5.1 Standard Mode: In this mode, the I²C configuration is implemented via register settings, allowing direct I²C data reading.

 

5.2 Sleep Mode:

In Sleep Mode, the SDA line is repurposed as an INT output, and I²C is disabled while SCL remains high. Only the sensor channel is compared, not the internal temperature sensor output. In I²C IDLE mode, set sleep_en = 1 and mode_en = 1 to enter sleep, lasting from 100 ms to 25.6 s (8-bit). Upon waking, a conversion is performed to obtain the ADC calibration output. The channel combination checks are performed using the calibrated ADC raw data against a threshold to trigger an interrupt if conditions are met. Registers can be configured to trigger the interrupt when values exceed or fall below the set threshold. After the comparison, the device returns to sleep. By default, the SDA remains high; when an interrupt occurs, it is pulled low and returned to high after 50 ms. This interrupt signal can wake the MCU. Once the MCU detects the INT signal, it pulls SCL low for more than 10 ms, returning to I²C IDLE mode with sleep_en = 0.

 

6. Design Considerations

In application design, it is essential to understand the characteristics of the measurement object (liquid, solid, or human body), measurement distance, and temperature range. Based on the application environment, algorithm optimization is crucial to enhance measurement accuracy.

 

The original chip algorithms are designed to ensure specified accuracy only under thermal equilibrium and isothermal conditions (where there is no temperature difference across the sensor package). Any temperature gradient within the sensor package can adversely affect measurement accuracy. Situations that can cause temperature differences include heat-generating components located on or near the bottom or sides of the sensor, or when the sensor is positioned very close to the object being measured, which can lead to localized heating of the sensor.

 

If you have questions or requirements related to the products and application solutions from SLKOR, please feel free to contact us. We are here to provide dedicated support and assistance!


授权代理商:世强先进(深圳)科技股份有限公司
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本文由samsara转载自Kinghelm Official Website,原文标题为:SLKOR SL-W-TRS-5.5Dx digital infrared thermopile chip application solutions,本站所有转载文章系出于传递更多信息之目的,且明确注明来源,不希望被转载的媒体或个人可与我们联系,我们将立即进行删除处理。

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常规

选型表  -  金航标 立即选型

金航标TF卡座连接器KH-TF002,兼容性强、数据传输高效,打造高效稳定的存储连接新体验

KH-TF002作为Kinghelm金航标的一款TF卡座连接器,凭借其兼容性强、结构稳定、数据传输高效和耐用性高等特点,在电子设备中得到了广泛应用。无论是手机、平板电脑还是数码相机等便携式设备,Kinghelm金航标KH-TF002都能提供稳定可靠的TF卡连接解决方案。

产品    发布时间 : 2024-11-09

金航标北斗/GPS外置天线KH1GPC-011,具有卓越的性能、稳定的品质和便捷的安装方式

Kinghelm金航标北斗/GPS外置天线KH1GPC-01以其卓越的性能、稳定的品质和便捷的安装方式,成为了市场上的一款优秀产品。无论是用于导航、定位还是其他需要高精度信号接收的领域,它都能为用户提供可靠的解决方案,引领定位技术的新篇章。

产品    发布时间 : 2024-04-26

金航标排母选型表

金航标提供排母选型:PIN数:2-40PIN,间距(mm):0.8-2.54mm,排母类型:单排母/双排母,额定电流(A):1-3A,多种安装方式:直插/弯插/立贴。

产品型号
品类
间距(mm)
PIN
高度(mm)
安装方式
排母类型
KH-1.27FH-DZ2X5P-H4.3-SMT
排母
1.27
2X5P
4.3
直插
双排母

选型表  -  金航标 立即选型

金航标电池连接器KH-BS2430-1,接触电阻最大值30MΩ,绝缘电阻最小值1000MΩ

金航标推出了专为工业自动化和监测领域设计的高性能传感器产品——KH-BS2430-1电池连接器,其出色的性能参数,如接触电阻最大值30MΩ、绝缘电阻最小值1000MΩ、介电电压75V AC,以及在-55°C至+85°C温度范围内的稳定工作,都彰显了Kinghelm金航标在传感器技术领域的领先地位。

产品    发布时间 : 2024-11-02

金航标胶壳选型表

金航标提供压线端子胶壳/SPH双排胶壳/PA胶壳/HA胶壳/XHD双排胶壳/XA双排胶壳/XA单排胶壳/VH胶壳/PHB双排胶壳/PH胶壳/XH胶壳/XHB胶壳/无缺胶壳选型:间距(mm):1.25-3.96mm,PIN:2-20P,额定电流(A):2-7A,额定电压(V):100-250V。

产品型号
品类
间距(mm)
PIN
额定电流(A)
额定电压(V)
接触电阻(mΩ)
绝缘电阻(mΩ)
温度范围(℃)
耐受电压(V)
材料
KH-A1250H-16P-JK
无缺胶壳
1.25mm
16P
2A AC,DC
125V AC,DC
最大20mΩ
100MΩMin
-25℃~+85℃
250V AC/分钟
尼龙66,UL94V-0

选型表  -  金航标 立即选型

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品类:屏蔽夹

价格:¥0.1307

现货: 50

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品类:电池底座

价格:¥0.9500

现货: 45

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价格:¥0.2110

现货: 36

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