7TROUBLESHOOTING

[1]Principal Parts

Pressure Sensor

(1) Judging Failure

1) Check for failure by comparing the sensing pressure according to the high pressure/low pressure pressure sensor and the pressure gauge pressure.

Turn on switches 1, 3, 5, 6 (High) and 2, 4, 5, 6 (Low) of the digital display select switch (SW1) as shown below, and the sensor pressure of the high pressure/low pressure sensors is displayed digitally by the light emitting diode LD1.

 

1

2

3

4

5

6

7

8

9 10

High Pressure

ON

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

1

2

3

4

5

6

7

8

9 10

Low Pressure

ON

 

 

 

 

 

 

 

 

1In the stopped condition, compare the pressure readings from the gauge and from the LD1 display.

(a)If the gauge pressure is 0~1 kg/cm2G (0.098MPa), the internal pressure is dropping due to gas leakage.

(b)If the pressure according to the LD1 display is 0~1 kg/cm2G (0.098MPa), there is faulty contact at the connec- tor, or it is disconnected. Proceed to 4.

(c)If the pressure according to the LD1 display is 32 kg/cm2G (3.14MPa) or higher, proceed to 3.

(d)If other than (a), (b) or (c), compare the pressure readings during operation. Proceed to 2.

2Compare the pressure readings from the gauge and from the LD1 display while in the running condition.

(a)If the difference between the two pressures is within 1 kg/cm2G (0.098MPa), both the affected pressure sensor and the main MAIN board are normal.

(b)If the difference between the two pressures exceeds 1 kg/cm2G (0.098MPa), the affected pressure sensor is faulty (deteriorating performance).

(c)If the pressure reading in the LD1 display does not change, the affected pressure sensor is faulty.

3Disconnect the pressure sensor from the MAIN board and check the pressure according to the LD1 display.

(a)If the pressure is 0~1 kg/cm2G (0.098MPa) on the LD1 display, the affected pressure sensor is faulty.

(b)If the pressure is 32 kg/cm2G (3.14MPa) (in the case of the low pressure sensor, 10 kg/cm2G (0.98MPa)) or higher, the MAIN board is faulty.

4Disconnect the pressure sensor from the MAIN board and short out the No. 2 and No. 3 pins of the connector (63HS, 63LS), then check the pressure by the LD1 display.

(a)If the pressure according to the LD1 display is 32 kg/cm2G (3.14MPa) (in the case of the low pressure sensor, 10 kg/cm2G (0.98MPa)) or higher, the affected pressure sensor is faulty.

(b)If other than (a), the MAIN board is faulty.

2)Pressure sensor configuration.

The pressure sensors are configured in the circuit shown in the figure at right. If DC 5 V is applied between the red and black wires, a voltage corresponding to the voltage between the white and black wires is output and this voltage is picked up by the microcomputer. Output voltages are as shown below.

High Pressure

0.1 V per 1 kg/cm2G (0.098MPa)

Low Pressure

0.3 V per 1 kg/cm2G (0.098MPa)

63HS/

Vout 0.5~3.5 V

63LS

Connector

GND (Black)

Vout (White)

Vcc (DC5V) (Red)

–66–

Page 68
Image 68
Mitsubishi Electronics P500YMF-C, PURY-P400 specifications Principal Parts, Pressure Sensor, Judging Failure

PURY-P400, P500YMF-C specifications

Mitsubishi Electronics has long been a leader in the HVAC industry, known for its innovative technology and reliable performance. Among its notable offerings are the P500YMF-C and PURY-P400 models, designed to address the diverse needs of commercial and residential applications.

The Mitsubishi P500YMF-C is a high-performance outdoor unit that showcases energy efficiency and advanced refrigerant technology. It employs a sophisticated inverter-driven compressor, which optimizes energy usage by adjusting its speed based on the specific heating and cooling demands of the environment. This flexibility helps to minimize energy consumption while ensuring optimal comfort.

One of the standout features of the P500YMF-C is its ability to provide consistent heating and cooling even in extreme outdoor temperatures. The unit can operate effectively in low-temperature conditions, making it ideal for regions with harsh winters. Furthermore, the system is designed with a robust build, ensuring durability and longevity.

On the other hand, the PURY-P400 is an indoor multi-split system that complements the outdoor unit perfectly. It's designed for versatility and efficiency, capable of accommodating multiple indoor units connected to a single outdoor unit. This feature is particularly beneficial for larger spaces or buildings where different zones require individual climate control.

The PURY-P400 incorporates Mitsubishi's advanced filtration technology, which significantly improves indoor air quality. It features a multi-layer filtration system that effectively removes dust, allergens, and other particulates from the air, ensuring a healthier environment for occupants.

Both systems utilize R-32 refrigerant, which has a lower global warming potential compared to traditional refrigerants. This not only makes them more eco-friendly but also complies with emerging environmental regulations. The ease of installation and operation of these units is another noteworthy characteristic, with intuitive controls and user-friendly interfaces that facilitate seamless integration into existing systems.

In summary, the Mitsubishi P500YMF-C and PURY-P400 represent a fusion of technology, efficiency, and user-centric design. With a range of features aimed at enhancing performance and environmental sustainability, these models are an excellent choice for anyone looking to invest in a reliable and efficient HVAC system. Whether for residential or commercial use, Mitsubishi’s offerings continue to set the standard in comfort and efficiency.