

Magnetic Fixed Gas Detector HRP-GT-H10
This industrial-grade gas monitoring device integrates low-power LoRa networking, magnetic adsorption installation, and long-lasting battery power. It is designed for scenarios where there is no power supply, no wiring, and flexible deployment is required, enabling centralized monitoring that can be used immediately upon attachment.
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High precision
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Customized
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24*7 support
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OEM/ODM
- Features
- Parameters
- Accessories
- Gases and Ranges
The battery-powered magnetic fixed gas detector is an industrial-grade intelligent monitoring device that integrates "low-power LoRa networking, strong magnetic adsorption installation, and long-lasting battery power." It is tailored for temporary work sites, equipment surfaces, and scenarios without power or wiring, solving the core pain points of traditional fixed detectors such as "drilling holes for installation that damages equipment, high wiring costs, and inconvenient mobile deployment." It achieves "plug and play, long-distance network uploading, and 24-hour continuous monitoring," making it an efficient solution for flexible blind spot monitoring in industrial scenarios.
1.Wiring-free and construction-free: strong magnets are used for adsorption and fixation, without drilling, wiring or complicated construction. This greatly saves the installation time and labor cost, and also avoids the safety risks caused by construction.
2.Ready-to-use: the equipment can be easily adsorbed on any metal surface to achieve rapid deployment. Even in a business place (such as a gas station), the installation can be easily completed without stopping business.
3.Adjustable position: the installation position can be changed at any time according to the monitoring requirements, which is extremely flexible.
Battery-powered electromagnetic suction fixed gas detector
Industrial gas safety monitoring solution
Battery-powered electromagnetic fixed gas detector is a kind of equipment used for gas safety monitoring in industrial field, which can continuously detect combustible gas and toxic gas. The equipment adopts battery power supply and magnetic attraction installation structure, which can be installed quickly without wiring, and is suitable for various application scenarios such as temporary monitoring, equipment inspection and emergency investigation.
When abnormal gas concentration is detected, the equipment can immediately give an audible and visual alarm to help field personnel take timely measures to effectively reduce safety risks such as fire, explosion and poisoning.
principle of operation
The equipment adopts high-precision gas sensors, and can be equipped with electrochemical, catalytic combustion or infrared sensors according to different detection requirements.
Its working process is as follows:
- The sensor continuously collects the change of gas concentration in the ambient air.
- Gas molecules react with the sensor and generate electrical signals.
- The signal is converted into gas concentration value by internal circuit and displayed in real time.
- When the concentration exceeds the preset alarm value, the equipment automatically triggers the acousto-optic alarm.
Through continuous monitoring and rapid response, early detection and early warning of gas leakage can be realized.
Product features
Battery power supply design
Built-in large-capacity rechargeable battery can run for a long time without external power supply, which is suitable for temporary deployment and mobile monitoring on site.
Magnetic attraction type quick installation
The bottom strong magnetic structure can be directly adsorbed on metal surfaces, such as pipelines, storage tanks, equipment shells, etc., without punching or wiring, and the installation is convenient.
Real-time gas monitoring
The equipment can continuously monitor the gas concentration, respond quickly, and capture the leakage change in time.
Multi-gas compatibility
It can detect combustible gas, oxygen, carbon monoxide, hydrogen sulfide, ammonia and other gas types according to requirements.
Acousto-optic alarm function
When the gas concentration reaches or exceeds the set threshold, the equipment immediately sends out an audible and visual alarm to remind the field personnel to deal with it in time.
Flexible deployment mode
It has both the stability of fixed monitoring and the flexibility of portable equipment, and can quickly adjust the installation position according to the site requirements.
Low maintenance cost
The sensor has long service life, low power consumption, simple daily maintenance and low overall use cost.
Application industry
Oil and gas industry
It is suitable for pipeline inspection, gas safety monitoring in storage tank area and natural gas treatment facilities.
Petrochemical industry
Used for gas leakage monitoring in reaction devices, valve systems, pumping stations and chemical storage areas.
Industrial manufacturing
Suitable for welding, spraying, chemical production and other working environments with gas risks.
electricity industry
Used for monitoring combustible gas in power stations and energy systems.
Environmental protection and sewage treatment
Used for monitoring toxic gases in sewage treatment plants, pumping stations and confined spaces.
Closed space operation
It is suitable for temporary or mobile monitoring scenes such as underground, tunnels, storage tanks and underground facilities.
Summary of product advantages
Compared with the traditional fixed gas detector, the equipment can be deployed quickly without complicated construction, which greatly reduces the installation cost and time cost. At the same time, the magnetic attraction structure and battery power supply design make it have obvious advantages in emergency monitoring and temporary operation scenarios.
On the premise of ensuring the detection accuracy and stability, it realizes higher flexibility and practicability.
summary
The battery-powered electromagnetic fixed gas detector is suitable for a variety of industrial gas safety monitoring scenarios, with rapid deployment, high stability and good environmental adaptability. Through real-time monitoring and timely alarm, the on-site safety management level can be effectively improved, which is one of the important equipment in the industrial safety protection system.
Single Gas Detec
- Detected Gase: Combustible gas、toxic gas
- Detection Principle: Catalytic combustion、infrared、electrochemistry
- Detection Mode: Diffusion type
- MeasuringRange: 0-100% LEL、PPM
- Measurement Accuracy: ≤ 3% FS
- Response Time: <30 s
- Alarm Method: Audible and visual alarm, status indicator
- Display mode LCD display
- Power Supply: DC 3.6V Li-ion
- Output Signal: LoRa wireless data upload
- Transmission Distance: <1000m
- Operating Temperature: -20℃-+55℃
- Relative Humidity: ≤ 95% (non-condensing)
- Pressure Range: 86 kPa- 106 kPa
- Explosin-Proof Rating: ll 2G Ex db lIC T6 Gb
- Ingress protection: IP68
- Enclosure Material; Die-cast aluminum
- Dimenslons: 205*77*161mm
- Product Weight: 2000g
- Installation method: Magnetic suction + Fixed

LED Display Screen(Optional, not required):
This gas concentration monitoring display screen features a dual-color display and connects to the host computer via RS485 protocol. It is primarily used to display real-time concentration data for various gases. The font colors differ between alarm and normal states. Normal state text is blue, while alarm state text is red.
Mounting Bracket(Optional selection):
High-strength metal mounting brackets are specifically designed for mounting gas monitors and actuators, and are typically used for wall-mounted installations.
Calibration Hood(Optional selection):
This is a standard calibration cover specially designed for HIREP series fixed gas detectors, which is used for fast and accurate gas concentration calibration and sensor testing on the equipment site. It has simple structure and good sealing performance, which ensures that the gas can evenly cover the sensor probe during calibration and avoid external interference.
Sampling Tube(Optional):
The sampling tube is made of polytetrafluoroethylene (PTFE), which is resistant to high temperatures and corrosion. It is usually used in conjunction with an external pump to safely and stably deliver the gas to be tested in the environment to the sensor analysis unit. It is suitable for remote sampling, detection in confined spaces, or gas monitoring under complex working conditions.
Explosion-Proof Cable Gland(Optional):
Used for the safe wiring connection of fixed gas detector, alarm host or electrical equipment in explosive environment. Its structure conforms to international explosion-proof standards, ensuring reliable sealing and electrical isolation in flammable and explosive gas environment and preventing accidents caused by sparks or high temperature.
Rain cover(Optional):
Prevents rainwater, dew, and spray water from entering the detector housing, circuitry, and sensor cavity, preventing short circuits due to moisture on the circuit board, reducing rainwater corrosion, and minimizing aging damage to the detector housing and probe caused by ultraviolet radiation. Significantly improves equipment durability, especially suitable for outdoor, open-air, and factory outdoor installation scenarios.
| Name | Chemical Formula | Lower Explosive Limit(Volume Fraction)in Air%VOL|Lower Limit | Serial No | Name | Chemical Formula | Lower Explosive Limit(Volume Fraction)in Air%VOL|Lower Limit | |
| 1 | Ethane | C₂H₆ | 3.0 | 49 | Cyclohexane | CH₂ (CH₂)₄CH₂ | 1.2 |
| 2 | Ethanol | C₂H₅OH | 3.4 | 50 | Cyclohexanol | CH₂ (CH₂)₃CHOHCH₂ | 1.2 |
| 3 | Ethylene | C₂H₄ | 2.8 | 51 | Cyclohexanone | CH₂ (CH₂)₃COCH₂ | 2.8 |
| 4 | Hydrogen | H₂ | 4.0 | 52 | Cyclopropane | CH₂CH₂CH₂ | 2.4 |
| 5 | Methane | CH₄ | 5.0 | 53 | Decane | C₁₀H₁8 | 0.7 |
| 6 | Methanol | CH₃OH | 5.5 | 54 | Cyclohexene | CH₂ (CH₂)₃CHCHCH₂ | 1.2 |
| 7 | Acetylene | C₂H₂ | 2.5 | 55 | Diacetone Alcohol | (CH₃)₂COHCH₂COCH₃ | 1.8 |
| 8 | Propanol | C₃H₇OH | 2.5 | 56 | Di-n-butyl Ether | C₄H₉OC₄H₉ | 0.9 |
| 9 | Propane | C₃H₈ | 2.2 | 57 | Dichlorobenzene | (C₆H₄)Cl₂ | 2.2 |
| 10 | Propylene | C₃H₆ | 2.4 | 58 | Diethylamine | (C₂H₅)₂NH | 1.7 |
| 11 | Toluene | C₆H₅CH₃ | 1.2 | 59 | Dimethylamine | (CH₃)₂NH | 2.8 |
| 12 | Xylene | C₆H₄ (CH₃)₂ | 1.0 | 60 | Dimethylaniline | (CH₃)₂C₆H₃NH₂ | 1.2 |
| 13 | Dichloromethane | C₂H₄Cl₂ | 5.6 | 61 | Dicyclohexylamine | (CH₂)₄O₂ | 1.9 |
| 14 | Dichloroethylene | C₂H₂Cl₂ | 6.5 | 62 | Ethylene Oxide | OCH₂CH₂CH₂ | 1.9 |
| 15 | Dichloropropane | C₃H₆Cl₂ | 3.4 | 63 | Diethyl Ether | C₂H₅OC₂H₅ | 1.8 |
| 16 | Diethyl Ether | C₂H₅OC₂H₅ | 1.7 | 64 | Ethyl Acetate | CH₃COOC₂H₅ | 2.1 |
| 17 | Dimethyl Ether | CH₃OCH₃ | 3.0 | 65 | Ethyl Acrylate | CH₂CHCO₂C₂H₅ | 1.7 |
| 18 | Formaldehyde | CH₂OCH | 4.0 | 66 | Styrene | C₆H₅C₂H₃ | 1.0 |
| 19 | Acetic Acid | CH₃COOH | 4.0 | 67 | Ethylene Oxide | CH₂CH₂O | 2.6 |
| 20 | Acetone | CH₃COCH₃ | 2.3 | 68 | Ethanethiol | C₂H₅SH | 2.3 |
| 21 | Acetyl Chloride | (CH₃CO)₂CH₂ | 1.7 | 69 | Ethyl Mercaptan | C₂H₅SCH₃ | 2.0 |
| 22 | Chloroform | CH₃COCl | 5.0 | 70 | Methyl Ethyl Ketone | C₃H₇COCH₃ | 1.8 |
| 23 | Acrylonitrile | CH₂CHCN | 2.8 | 71 | Ethylamine | C₂H₅NH₂ | 3.5 |
| 24 | Allyl Chloride | CH₂CHCH₂Cl | 3.2 | 72 | Gasoline | — | 0.9 |
| 25 | Methylacetylene | CH₃CCH | 1.7 | 73 | Kerosene | — | 0.7 |
| 26 | Amyl Acetate | CH₃CO₂C₅H₁1 | 1.0 | 74 | Turpentine | — | 1.8 |
| 27 | Aniline | C₆H₅NH₂ | 1.2 | 75 | Nitrobenzene | C₆H₅NO₂ | 1.8 |
| 28 | Benzene | C₆H₆ | 1.2 | 76 | Nitromethane | CH₃NO₂ | 7.1 |
| 29 | Benzaldehyde | C₆H₅CHO | 1.4 | 77 | Phenol | C₆H₅OH | 1.3 |
| 30 | Benzyl Chloride | C₆H₅CH₂Cl | 1.1 | 78 | Phenylacetylene | C₆H₅C₂H | 1.1 |
| 31 | Bromobenzene | C₆H₅CH₂Br | 2.5 | 79 | Ethylbenzene | C₆H₄C₂H₅ | 1.0 |
| 32 | Bromoethane | CH₃CH₂Br | 6.7 | 80 | Methyl Formate | HCOOC₂H₅ | 2.7 |
| 33 | Butadiene | CH₂CHCHCH₂ | 2.0 | 81 | p-Dioxane | C₄H₈O₂ | 2.0 |
| 34 | Butane | C₄H₁0 | 1.9 | 82 | Isobutane | i-C₄H₁0 | 1.8 |
| 35 | Butanol | C₄H₉OH | 1.8 | 83 | Naphthalene | C₁₀H₈ | 1.9 |
| 36 | Butylene | C₄H₈ | 1.6 | 84 | Nonane | CH₃ (CH₂)₇CH₃ | 0.7 |
| 37 | Butyraldehyde | C₃H₇CHO | 1.4 | 85 | Nonanol | CH₃ (CH₂)₇CH₂OH | 0.8 |
| 38 | Butyl Butyrate | C₃H₇COOC₄H₉ | 1.2 | 86 | Valeraldehyde | C₆H₁₀0 | 1.2 |
| 39 | Butyl Methyl Ketone | C₄H₉COCH₃ | 1.2 | 87 | Pentane | C₅H₁2 | 1.4 |
| 40 | Carbon Disulfide | CS₂ | 1.0 | 88 | Pentanol | C₅H₁₁OH | 1.2 |
| 41 | Chlorobenzene | C₆H₅Cl | 1.3 | 89 | Propylamine | C₃H₇NH₂ | 2.0 |
| 42 | Chlorobutane | C₄H₉CH₂Cl | 1.8 | 90 | Propyl Methyl Ketone | C₄H₉COCH₃ | 1.5 |
| 43 | Chloroethane | CH₃CH₂Cl | 3.8 | 91 | Pyridine | C₅H₅N | 1.7 |
| 44 | Chloroethylene | CH₂CHCl | 3.8 | 92 | Tetrahydrofuran | C₄H₈O | 2.0 |
| 45 | Chloromethane | CH₃Cl | 8.1 | 93 | Tetrahydrofurfuryl | C₅H₁₀O₂ | 1.5 |
| 46 | 2-Chloropropane | CH₃CHCICH₃ | 2.6 | 94 | Triethylamine | (C₂H₅)₃N | 1.2 |
| 47 | Cresol | C₆H₄OH | 1.1 | 95 | Trimethylamine | (CH₃)₃N | 2.0 |
| 48 | Cyclobutane | CH₂CH₂CH₂CH₂ | 1.8 | 96 | Trioxane | (CH₂O)₃ | 3.0 |
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