F-Gas English Low GWP
All questions
HFC | Flammable | CO₂ | NH₃
Easy questions |
Medium questions |
Difficult questions
1
Medium
What process takes place in the condenser of a refrigeration system?
| In the condenser, the refrigerant releases the heat absorbed in the evaporator into the surroundings. |
| Hot refrigerant vapour is pumped from the compressor to the condenser, where it is cooled and then condensed. In this heat exchanger, the resulting liquid refrigerant is also slightly subcooled. |
| The refrigerant releases the heat absorbed in the compressor via the condenser |
| The medium flowing through the evaporator (glycol, water) condenses, whilst the refrigerant evaporates. |
2
Medium
What determines the condensation temperature of an air-cooled unit?
| On the ambient temperature. |
| On the superheat temperature. |
| On the evaporation (boiling) temperature. |
| On the compressor and discharge temperatures |
3
Medium
Is energy required when heat is transferred from the condenser to the surroundings?
| The heat flow balances the energy input. |
| No, because according to the second law of thermodynamics, thermal energy always flows from a body at a higher temperature to a body at a lower temperature. |
| Yes, in every case. |
| Yes, but only when using HFC refrigerants. |
4
Medium
What should you pay attention to during the operation of the condenser?
| Care should be taken to ensure that the air temperature at the condenser inlet is lower than the air temperature at the condenser outlet. |
| Ensure that the air temperature at the condenser outlet is higher than the condensation temperature. |
| Pay attention to the fan’s operation and the ambient temperature. |
| You should ensure the general maintenance of the condenser and keep the heat exchange surfaces clean. |
5
Medium
What criteria should be considered when selecting a suitable condenser?
| First and foremost, you should consider the operating noise level of the fans, the diameter of the connection pipes and the colour scheme. |
| The required capacity of the condenser and the technical specifications declared by the manufacturer must be taken into account. |
| Condensers should be selected based on your own experience, and the condenser’s geometric parameters should be taken into account. |
| These include size and the number of fans. The geometric parameters of the condenser must be taken into account. |
6
Medium
How do contaminants (dust, particulates, deposits) affect the performance and efficiency of heat exchange surfaces in condensers?
| Contaminants restrict heat transfer (reducing the heat transfer coefficient) and cause an increase in condensing temperature and pressure, which in turn leads to a reduction in the condenser’s efficiency. |
| Contaminants restrict heat transfer (reducing the heat transfer coefficient) and cause a reduction in condensing pressure. |
| Contaminants do not significantly affect the efficiency and effectiveness of the heat exchange surfaces in condensers. |
| Contaminants increase the heat transfer area and reduce the condensing pressure. |
7
Medium
If an air-cooled condenser becomes contaminated, will the condensation efficiency?
| It will increase. |
| It remains unchanged. |
| It will decrease. |
| It will increase as a result of the fan speed being raised further. |
8
Medium
What can cause frost to form on the evaporator?
| Frost build-up on the evaporator increases airflow resistance and, consequently, causes the fan motor to work harder. |
| a drop in cooling capacity. |
| A reduction in the temperature of the cooled substance. |
| An increase in refrigerant flow resistance and a reduction in the refrigerant flow rate through the evaporator. |
9
Medium
What happens when the evaporation temperature drops?
| The condenser fan speed increases. |
| The discharge temperature decreases. |
| The compressor’s cooling capacity decreases. |
| The compressor’s cooling capacity increases. |
10
Medium
When is defrosting using the refrigerant possible?
| Only when using speed-controlled fans. |
| In the case of air-cooled chillers, only when the air temperature is above 0°C. |
| Never. We use electricity for defrosting (for example, using a special electric heater). |
| Defrosting using the refrigerant is not possible at all. |
11
Medium
When can frost form on the evaporator surface?
| Frost always forms on air coolers. |
| Only in the case of air coolers, when the air temperature drops below 0°C. |
| In the case of finned evaporators. |
| Frost forms only when the refrigeration system is operating continuously. |
12
Medium
In the case of extensive pipework systems, secondary evaporation of the refrigerant can be prevented by...
| by insulating the pipes between the compressor and the condenser. |
| additional cooling. |
| using larger-diameter pipes. |
| using smaller-diameter pipes. |
13
Medium
How does hot gas defrosting of the evaporator work?
| Heated vapour (hot gas) from the compressor is directed into the evaporator piping. |
| This involves reversing the direction of rotation of the compressor. |
| We switch on the gas heater directed at the evaporator. |
| We swap the outlet and inlet sides of the evaporator. |
14
Medium
What is the function of the evaporator in a refrigeration system?
| Thanks to the evaporator, the cooled medium transfers heat to the boiling refrigerant. |
| It evaporates the water flowing through the evaporator. |
| It ensures that the refrigerant is superheated over the largest possible heat exchange surface area. |
| It cools the refrigerant. |
15
Medium
What conditions must be met for the evaporator to be defrosted using electric heaters?
| The electric heaters must be in contact with the evaporator’s heat exchange surface (the heater must touch the fins). |
| The electric heaters must be positioned in direct contact with the refrigerant so that the refrigerant flowing through the evaporator is at a sufficiently high temperature. |
| The electric heaters must be positioned beneath the evaporator’s heat exchange surface. |
| Thanks to the forced air flow created by the fans, the heat from the heaters is transferred to the heat exchanger. |
16
Medium
Refrigerant distributor:
| ensures an even distribution of the refrigerant to the individual sections of the evaporator. |
| acts as a buffer for the refrigerant in the event that the pressure upstream of the expansion valve is exceeded. |
| ensures the even distribution of the refrigerant discharged by compressors connected in parallel. |
| ensures even distribution of the refrigerant to the individual sections of the condenser. |
17
Medium
What are the possible methods of defrosting air coolers?
| Electric defrosting, liquid defrosting or defrosting using hot refrigerant vapour. |
| Natural defrosting; there are no other effective methods. |
| Electric defrosting only. |
| Hot gas defrosting. |
18
Medium
The boiling point increases (and consequently the rate of evaporation increases) if the pressure above the liquid...
| It behaves differently depending on the ambient temperature. |
| Rises. |
| Remains constant. |
| Falls. |
19
Medium
MOP in thermostatic expansion valves stands for:
| self-cleaning of the valve in the event of moisture in the refrigerant freezing. |
| maximum operating pressure. |
| maximum pressure switch protection. |
| minimum flow opening. |
20
Medium
The function of a thermostatic expansion valve (TEV) in a refrigeration system is:
| to control the amount of refrigerant supplied to the evaporator depending on the superheat of the vapour leaving that heat exchanger. |
| regulating the superheat of the refrigerant leaving the evaporator so that it is at the minimum value. |
| to consistently adjust the evaporation pressure in the condenser depending on the temperature of the refrigerant vapour leaving the condenser. |
| to maintain a constant suction pressure to the compressor. |
21
Medium
When using a capillary tube, what type of motor can be used in the compressor?
| A motor with low starting torque can be used. |
| A low-speed motor should be used. |
| A motor with high starting torque must be used. |
| An electronically commutated motor approved for use with the compressor should be used. |
22
Medium
What does the thermostatic expansion valve regulate?
| Evaporation pressure after. |
| The mass flow of the refrigerant injected into the evaporator. |
| Cooling. |
| Discharge temperature. |
23
Medium
The refrigerant absorbs heat when...
| sublimates |
| it evaporates. |
| it condenses. |
| freezes. |
24
Medium
In the case of a thermostatic expansion valve, the manufacturer specifies...
| ...the degree to which the valve is filled with refrigerant liquid. |
| ...the superheat value during valve operation. |
| ...the static superheat of the valve. |
| …the degree of refrigerant expansion. |
25
Medium
How do we charge a new or repaired system with refrigerant when it is fitted with an expansion valve
| in any way. |
| Charging with refrigerant takes place during operation via the outlet connection of the refrigerant capillary tube. |
| behind the condenser to the liquid refrigerant receiver. |
| to the suction side of the compressor. |
26
Medium
What does a thermostatic/electronic expansion valve regulate?
| The number of revolutions of the compressor per unit of time. |
| The evaporation pressure, closing when it falls below the setpoint temperature. |
| The amount of refrigerant by controlling the evaporator superheat. |
| Condenser subcooling by adjusting the condensing pressure. |
27
Medium
What does the MOP function in expansion valves mean?
| This means that these expansion valves are set to a specific suction pressure. |
| This means that these expansion valves are set to limit subcooling. |
| This means that these expansion valves are set to prevent overheating. |
| It means that these expansion valves are set to limit the maximum operating pressure. |
28
Medium
The lower the temperature of the liquid refrigerant upstream of the expansion valve,
| ...the lower the theoretical coefficient of refrigeration efficiency qo will be, and the lower the refrigeration capacity Qo will be. |
| ...the lower the theoretical coefficient of cooling efficiency qo will be, and the lower the system’s energy efficiency will be. |
| ... the higher the theoretical coefficient of cooling capacity qo will be, and the greater the cooling capacity Qo will be. |
| ...the lower the theoretical coefficient of cooling efficiency qo will be, whilst the cooling capacity Qo remains unchanged. |
29
Medium
The MOP point in the expansion valve, due to the maximum evaporation temperature of the refrigeration system, ...
| ...must be approximately 5 K lower. |
| The value of the MOP point is irrelevant. |
| ...must be approximately 7 K lower. |
| ...must be approximately 7 K higher. |
30
Medium
What is the function of the suction pressure regulator?
| It prevents a drop in suction pressure and, if necessary, shuts down the refrigeration system. |
| To maintain the suction pressure at the highest possible level. |
| It limits the suction pressure and protects the compressor from excessively high suction pressure. |
| It maintains the suction pressure at a constant level. |
31
Medium
What is the function of the valve regulating water flow through the condenser?
| To maintain the condensing pressure at a constant level. |
| To maintain the water temperature at the highest level. |
| To maintain the condensing pressure at the lowest possible level. |
| To maintain the condensing pressure at the highest possible level. |
32
Medium
The use of a refrigerant distributor requires a thermostatic expansion valve …
| … with external pressure equalisation. |
| … with a MOP function. |
| … with internal pressure equalisation. |
| … with an adsorption-type sensor filling. |
33
Medium
What properties should good insulation materials have?
| It must have a low thermal conductivity. |
| It must have a good antistatic coating |
| It must have a high thermal conductivity. |
| It must be able to absorb large amounts of moisture. |
34
Medium
When do we encounter the superheated state?
| This is the temperature difference between the actual vapour temperature and the vapour temperature at saturation. |
| It is a condition in which the compressor motor temperature rises excessively. |
| This is a state that arises as a result of the temperature difference between the suction side and the discharge side of a compressor. |
| It is the temperature difference between the evaporation temperature and the ambient temperature. |
35
Medium
How can you check whether the liquid refrigerant is reaching the expansion valve without vapour bubbles?
| We check this using a sight glass. |
| We check using a pressure gauge fitted on the discharge side of the compressor. |
| We are unable to check this. |
| We check using a liquid pressure gauge. |
36
Medium
The liquid lines are located...
| between the compressor and the condenser. |
| between the condenser and the liquid receiver. |
| between the evaporator and the compressor. |
| between the evaporator and the regenerative heat exchanger. |
37
Medium
What is the function of the liquid receiver in a refrigeration system?
| The tank is used to store and ensure an adequate supply of refrigerant in the event of fluctuations in the thermal load of the refrigeration system. |
| The tank is used to collect the liquid refrigerant and excess oil in the system. |
| The reservoir is used to further cool the liquefied refrigerant leaving the condenser. |
| When an installation technician does not know the exact amount of refrigerant required, the tank serves as a safety reserve for the entire refrigeration system. |
38
Medium
What is the purpose of the liquid refrigerant reservoir?
| The tank is used to collect the liquid refrigerant and excess oil in the system. |
| The tank is required during maintenance work, when there is a temporary need to store the refrigerant that has been circulating in the refrigeration system up to that point. |
| The tank is used to further cool the liquefied refrigerant leaving the condenser. |
| When an installation technician does not know the exact amount of refrigerant required, the tank serves as a safety reserve for the entire refrigeration system. |
39
Medium
Where should the liquid receiver be installed?
| It should be fitted just before the compressor. |
| It should be fitted between the compressor and the condenser. |
| It should be fitted after the evaporator. |
| It should be installed downstream of the condenser, upstream of the expansion valve. |
40
Medium
What is the function of the suction pressure regulator fitted to the suction pipe when the compressor starts up?
| It regulates the evaporation pressure. |
| It closes when the suction pressure upstream of the compressor drops. |
| It regulates the condensing pressure. |
| It opens when the suction pressure upstream of the compressor drops. |
41
Medium
The use of microchannel heat exchangers, compared with conventional heat exchangers made of copper tubes and fins, results in:
| A reduction in the system’s energy efficiency. |
| There is no effect whatsoever on either the amount of refrigerant or energy efficiency. |
| A reduction in the amount of refrigerant and an increase in energy efficiency. |
| An increase in the amount of refrigerant in the system and an increase in condensing pressure. |
42
Medium
Which refrigerants belong to the HFC group?
| R22, R401A. |
| R134a, R404A, R507A, R410A. |
| R134a, R32, R22, R507A, R290. |
| R11, R12, R502. |
43
Medium
Which refrigerants belong to the HFO group?
| R134a, R290. |
| R1234yf, R1234ze. |
| R22, R12. |
| R134a, R404A. |
44
Medium
What are the characteristics of R410A refrigerant compared to R407C refrigerant?
| The saturation pressure of R410A refrigerant is higher than that of R407C. |
| The saturation pressure of R407C refrigerant is much higher than that of R410A. |
| The saturation pressure of R407C is 150% higher than that of R410A. |
| The saturation pressure of both refrigerants is roughly the same. |
45
Medium
What does the TEWI parameter define?
| It is the total (global) greenhouse gas equivalent – this indicator takes into account the refrigerant’s direct capacity to contribute to the greenhouse effect and its indirect impact on it through the energy consumption (during the production of which CO₂ is generated) by the refrigeration unit in operation. |
| This is a parameter that quantifies the impact of refrigerants on the ozone layer. |
| It is the global warming potential, expressed in terms of carbon dioxide (CO₂), over a 100-year time horizon. |
| This is a parameter defining the ozone layer’s ability to recover (regenerate). |
46
Medium
What are the characteristics of R452A refrigerant compared to R404A?
| The temperature glide of R452A is half that of R404A. |
| Both refrigerants are homogeneous refrigerants with no temperature glide. |
| It is a non-flammable refrigerant, a mixture from the HFC/HFO group with thermodynamic properties similar to those of R404A and a GWP approximately 45% lower than that of R404A. |
| It is a flammable and toxic homogeneous refrigerant from the HFC group. |
47
Medium
What is the distinguishing feature of R1234yf compared to R134a?
| A higher critical temperature. |
| greater flammability. |
| a higher boiling point at standard pressure. |
| greater toxicity. |
48
Medium
Compared to R134a, the refrigerant CO₂ is characterised by?
| It has identical thermodynamic properties and can be used as a drop-in replacement for R134a. |
| It has a lower critical temperature, higher operating pressures and greater volumetric efficiency, allowing for the use of a smaller quantity of refrigerant compared to R134a. |
| It has a temperature slip of 7K greater than R134a. |
| Unlike R134a, it is an azeotropic mixture. |
49
Medium
The following are not classified as fluorinated greenhouse gases:
| Perfluorocarbons (PFCs). |
| Carbon dioxide (CO₂). |
| Hydrofluorocarbons (HFCs). |
| Sulphur hexafluoride (SF6). |
50
Medium
What is the greenhouse effect?
| It causes the thermal radiation emitted by the Earth to be trapped in the upper atmosphere. |
| It lowers the average surface temperature of the Earth. |
| It alters the composition of the atmospheric air. |
| It causes an increase in temperature close to the Earth’s surface (up to 10 metres above the surface). |
51
Medium
How do refrigeration systems contribute to the greenhouse effect, i.e. the rise in atmospheric temperature at the Earth’s surface?
| Through the leakage of refrigerant into the environment. |
| Indirectly (through energy consumption) and directly (through the emission of refrigerants into the atmosphere) |
| Refrigeration equipment emits CO₂ both directly and indirectly. |
| As a result of oil being emitted into the atmosphere by the condenser and filter |
52
Medium
What is the greenhouse effect, also known as the greenhouse phenomenon?
| This is the formation of a layer that traps only the heat generated by the combustion of fuel in aeroplanes. |
| It is the phenomenon of heat being trapped in the Earth’s atmosphere (making it difficult for heat to radiate out of the Earth’s atmosphere). |
| The absorption of radiation reaching the Earth’s surface. |
| The filtering out of solar radiation. |
53
Medium
Which EU regulation is currently the primary piece of legislation governing the use of fluorinated greenhouse gases (F-gases) in the European Union?
| Regulation (EU) No 517/2014 |
| Regulation (EU) 2015/1188 |
| Directive 2009/125/EC |
| Regulation (EU) 2024/573 |
54
Medium
What is the main objective of Regulation (EU) 2024/573?
| To reduce taxes on refrigeration equipment |
| To facilitate the import of electrical appliances |
| Standardising metal recycling standards |
| Prevention of F-gas emissions and the achievement of the EU’s climate targets |
55
Medium
What are the obligations of manufacturers of refrigeration appliances in the context of ecodesign, and which regulation governs them?
| Manufacturers are only required to declare the quantity of F-gas used, in accordance with Regulation (EU) No 517/2014 |
| Manufacturers must comply solely with ISO 9001 standards, without any link to EU regulations |
| Manufacturers are only required to use energy labels, and this is regulated by Regulation (EU) 2024/573 |
| The manufacturer must ensure minimum energy efficiency, reparability and recyclability of equipment, as regulated by Regulation (EU) 2019/2019 |
56
Medium
What is the main objective of the Ecodesign Directive?
| Reducing the negative environmental impact of products by improving energy efficiency, durability and recyclability |
| To standardise the appearance of products in the EU |
| To increase sales of electrical appliances in the EU |
| To facilitate the import of products from outside the EU |
57
Medium
What is the function of a ball valve in a refrigeration system?
| Enables the refrigerant flow to be completely shut off |
| It measures the moisture content of the refrigerant |
| It prevents excessive pressure build-up in the system |
| It regulates the temperature of the refrigerant |
58
Medium
How do certain substances or gases contribute to the greenhouse effect?
| Certain substances trap the thermal radiation that the Earth should radiate into the atmosphere. In this way, the Earth gradually warms up and the greenhouse effect occurs. |
| Some substances damage the ozone layer |
| Certain substances limit the impact of the Sun’s ultraviolet radiation on the Earth’s surface. |
| When released into the atmosphere, certain substances cause the air to heat up as a result of reactions with the oxygen and nitrogen contained in the air. |
59
Medium
What is the purpose of the sight glass in a refrigeration system?
| For visual assessment of the presence of refrigerant and oil, and for monitoring moisture levels |
| To shut off the flow in the event of an emergency |
| To measure the condenser temperature |
| To regulate compressor pressure |
60
Medium
What is the function of the temperature regulator in a refrigeration system?
| It drains excess refrigerant into the receiver |
| To maintain a constant pressure in the compressor |
| Controls the operation of the compressor and valves to maintain the set temperature |
| It restricts oil flow |
61
Medium
What is the purpose of oil level regulators in a refrigeration system?
| They control the evaporator temperature |
| Maintains the correct oil level in the compressor |
| They control the pressure in the condenser |
| They drain off excess refrigerant |
62
Medium
What is the function of the refrigerant receiver in the system?
| It maintains a constant pressure in the system |
| It controls the evaporator temperature |
| Stores excess refrigerant and facilitates the detection of leaks |
| Regulates the oil flow |
63
Medium
What is the role of the manifold thermometer in the refrigeration system?
| It monitors the moisture content of the refrigerant |
| Measures the refrigerant temperature at the compressor inlet and outlet, which helps to identify leaks |
| Relieves pressure in the system in the event of excessive pressure |
| Controls the oil level |
64
Medium
What is the role of the defrost control valves?
| They control the pressure in the compressor |
| They are used to monitor the moisture content of the refrigerant |
| They drain off excess oil |
| Protect the evaporator from excessive icing and reduce the risk of leaks |
65
Medium
Where can I find lists detailing fluorinated greenhouse gases (F-gases)?
| In Regulation (EU) No 2024/573 of the European Parliament and of the Council |
| In the Act on Ozone-Depleting Substances and Certain Fluorinated Greenhouse Gases. |
| In the Vienna Convention for the Protection of the Ozone Layer. |
| In the Regulation of the Minister for the Economy on the introduction of a list of fluorinated greenhouse gases. |
66
Medium
Where can I find the lists specifying controlled substances?
| In the Vienna Convention for the Protection of the Ozone Layer. |
| In the current Act on Ozone-Depleting Substances and Certain Fluorinated Greenhouse Gases. |
| In Regulation (EU) No 2024/590 of the European Parliament and of the Council. |
| In the Regulation of the Minister for the Environment on the list of controlled substances. |
67
Medium
Where and by when should annual reports on ODS and F-gases be submitted?
| Reports for the previous year must be submitted by 31 March of the relevant year electronically to the Ministry of the Environment. |
| Reports must be submitted by the end of the relevant calendar year, using a special form at the regional branch of the Office of Technical Inspection (UDT) |
| Reports on ODS and F-gases for the previous year must be submitted by 28 February of the following year, via the IT system available in the reports database at the Office for the Protection of the Ozone Layer and Climate (BOWOiK) on the ICHP website. |
| Reports for the previous year must be submitted by 31 January electronically by completing the special forms available in the central register of operators ‘CRO’. |
68
Medium
Which measure has the greatest impact on improving the compressor’s energy efficiency during installation?
| Correctly create a vacuum and remove moisture from the system |
| Increasing the amount of refrigerant |
| Installation without a leak test |
| Installation without filters |
69
Medium
How does regular monitoring of the oil level affect the compressor’s operation?
| Ensures proper lubrication and improves energy efficiency |
| It has no effect |
| It reduces cooling capacity |
| Causes a rise in pressure |
70
Medium
How do system leaks affect the compressor’s energy efficiency?
| These cause a drop in performance and an increase in energy consumption |
| Have no effect |
| They lower the operating temperature |
| They improve efficiency |
71
Medium
Regulation (EC) No 2024/590 relates to:
| Ozone-depleting substances. |
| Alternative refrigerants serving as substitutes for fluorinated greenhouse gases. |
| The conditions for obtaining F-gas certificates by companies carrying out the recovery and reclamation of waste refrigerants. |
| Health and safety at work during the recovery of refrigerants. |
72
Medium
What is the significance of regulating suction and discharge pressure?
| Helps maintain optimal operating conditions for the compressor |
| It has no effect on efficiency |
| Increases oil consumption |
| Causes leaks |
73
Medium
What maintenance measure reduces the compressor’s energy consumption?
| Regular replacement of filters and dryers |
| Increasing the refrigerant charge |
| Disabling safety devices |
| Lack of servicing |
74
Medium
How does the presence of air in the refrigeration system affect performance?
| It has no effect |
| Reduces energy consumption |
| Leads to increased pressure and reduced efficiency |
| It improves efficiency |
75
Medium
What role do control systems (e.g. regulators) play in compressor efficiency?
| It increases the amount of refrigerant |
| Enables optimisation of operation and a reduction in energy consumption |
| It doesn’t matter |
| Causes leaks |
76
Medium
How does refrigerant superheat at the compressor suction affect performance?
| It only causes a drop in temperature |
| It has no effect |
| Excessive overheating reduces efficiency and increases energy consumption |
| It always improves performance |
77
Medium
How does the correct layout of the system affect efficiency?
| It causes the temperature to rise |
| It doesn’t matter |
| It increases the pressure |
| Shortens flow paths and reduces energy losses |
78
Medium
How important is pipe insulation?
| Causes a rise in pressure |
| Reduces heat loss and improves energy efficiency |
| It increases energy consumption |
| It has no effect |
79
Medium
Which measure most improves the condenser’s energy efficiency?
| Regular cleaning of heat exchange surfaces |
| Restricted airflow |
| Increasing the amount of refrigerant |
| Contamination of the heat exchange surface |
80
Medium
How does a dirty condenser affect the operation of the refrigeration system?
| It lowers the condensing pressure |
| Causes an increase in pressure and energy consumption by the compressor |
| It improves efficiency |
| It has no effect |
81
Medium
Why is adequate airflow through an air-cooled condenser important?
| Insufficient airflow reduces efficiency |
| Causes a drop in pressure |
| Ensures effective heat dissipation and improves energy efficiency |
| It doesn’t matter |
82
Medium
Which refrigerants cause damage to the ozone layer?
| All refrigerants that contain chlorine or bromine in their molecules. |
| All refrigerants that contain carbon in their molecular structure. |
| All refrigerants that contain fluorine and hydrogen in their molecules. |
| All refrigerants that are hydrocarbon derivatives. |
83
Medium
How does the presence of limescale in a water-cooled condenser affect performance?
| It improves heat transfer |
| It has no effect |
| Impairs heat exchange and increases energy consumption |
| It lowers the condensation temperature |
84
Medium
How does correct condensation pressure control affect efficiency?
| Maintains optimum operating conditions and reduces energy consumption |
| It increases energy consumption |
| Causes leaks |
| It has no effect |
85
Medium
How do condenser leaks affect energy efficiency?
| They lower the temperature |
| Causes refrigerant loss and a drop in efficiency |
| They improve efficiency |
| Have no effect |
86
Medium
How important is the correct positioning of an air-cooled condenser?
| It should be installed in a well-ventilated area with unobstructed airflow |
| It should be close to heat sources |
| It doesn’t matter |
| It should be housed in a small room |
87
Medium
How does hot air recirculation affect the condenser?
| Impairs cooling and increases energy consumption |
| It improves efficiency |
| It reduces the pressure |
| It has no effect |
88
Medium
How does the insulation of central heating and domestic hot water pipework affect the operation of the heat pump’s condenser?
| It increases the pressure |
| It doesn’t matter |
| It impairs cooling |
| Reduces energy losses and improves the efficiency of the entire system |
89
Medium
Which measure most improves the energy efficiency of the evaporator?
| Regular defrosting of the evaporator |
| Restricted airflow |
| Increasing the condensation temperature |
| Increasing the amount of refrigerant |
90
Medium
How does evaporator icing affect the system’s operation?
| It improves cooling performance |
| It lowers the condensation temperature |
| Impairs heat exchange and increases energy consumption |
| It has no effect |
91
Medium
How does dirt on the evaporator surface affect its performance?
| It reduces the pressure |
| It improves efficiency |
| It has no effect |
| Impairs heat exchange and increases energy consumption |
92
Medium
What maintenance task is crucial for the evaporator?
| Lack of maintenance |
| Regular cleaning and defrosting |
| Increasing the refrigerant charge |
| Reduced airflow |
93
Medium
What does an F-gas personal certificate (Category A2) authorise?
| to make permanent joints by brazing in systems containing fluorinated greenhouse gases. |
| for the purchase of lubricants and refrigeration oils, and for the testing of safety valves. |
| To recover refrigerant from equipment containing less than 3 kg of fluorinated greenhouse gases, or less than 6 kg in the case of hermetically sealed systems. |
| to repair, maintain or service refrigeration equipment and systems containing controlled substances. |
94
Medium
How does superheating of the refrigerant at the evaporator outlet affect efficiency?
| It has no effect |
| It only causes a drop in temperature |
| Excessive superheat reduces energy efficiency |
| It always improves performance |
95
Medium
How do leaks in the evaporator affect efficiency?
| These cause refrigerant loss and a drop in efficiency |
| Improves performance |
| Have no effect |
| Increase capacity |
96
Medium
How important is correct expansion valve adjustment?
| It doesn’t matter |
| Causes leaks |
| Ensures optimal evaporator charge and improves efficiency |
| It increases energy consumption |
97
Medium
How does inadequate insulation of the heat transfer circuit pipes affect evaporator performance?
| It has no effect |
| Causes cooling losses and increased energy consumption |
| It lowers the condensation temperature |
| It improves efficiency |
98
Medium
How does correct TEV valve adjustment affect the system’s energy efficiency?
| Causes leaks |
| It increases energy consumption |
| Ensures optimum superheat and improves system efficiency |
| It has no effect |
99
Medium
What happens if the superheat set by the TEV is too high?
| Cooling efficiency will improve |
| The refrigerant charge will increase |
| It has no effect |
| Efficiency will drop because the evaporator is not being fully utilised |
100
Medium
How does a low superheat setting on the TEV affect performance?
| It increases operational safety |
| It reduces refrigerant flow |
| It may lead to improved efficiency, but it increases the risk of the compressor becoming flooded with liquid |
| It has no effect |
101
Medium
How do contaminants in the system affect the operation of the TEV?
| They lower the temperature |
| They improve its performance |
| They can cause it to become blocked and reduce efficiency |
| Have no effect |
102
Medium
What role does the filter-drier play in terms of system efficiency?
| It lowers the temperature |
| It increases the amount of refrigerant |
| Removes moisture and contaminants, improving the system’s efficiency |
| It doesn’t matter |
103
Medium
How does proper insulation of components (e.g. pipes near the TEV) affect the system?
| It doesn’t matter |
| Prevents unwanted heat gains and improves efficiency |
| It causes leaks |
| It increases energy consumption |
104
Medium
What does Regulation (EU) No 2024/573 of the European Parliament and of the Council cover?
| The Regulation concerns gases that contribute to the greenhouse effect. |
| The Regulation sets out health and safety requirements for soldering work. |
| The Regulation concerns leak testing of stationary refrigeration, air-conditioning and heat pump equipment containing fluorinated greenhouse gases. The Regulation sets out the requirements relating to leak testing of such equipment. |
| The Regulation sets out requirements relating to brazing of refrigeration systems. |
105
Medium
How important is it to check the operation of the condensing pressure control valve in the system?
| It increases energy consumption |
| It causes a significant rise in temperature |
| It has no effect |
| Ensures operation within the optimum pressure range and reduces energy losses |
106
Medium
How does the correct selection of a TEV affect energy efficiency?
| It doesn’t matter |
| Ensures the system is matched to its capacity and operates optimally |
| It lowers the temperature |
| It increases the amount of refrigerant |
107
Medium
What is the main design difference in hydrocarbon-based refrigeration systems?
| Lower energy efficiency |
| No need for safety measures |
| The need for explosion-proof measures due to the flammability of the refrigerant |
| Higher operating pressures |
108
Medium
What differences are there in the compressors used in hydrocarbon systems?
| They do not require lubrication |
| No differences |
| They must be designed to operate with flammable refrigerants (e.g. hermetic compressors) |
| They must operate at higher pressures |
109
Medium
How can one check whether the system has been overcharged with refrigerant?
| The refrigeration system is overcharged with refrigerant whilst in operation, and even under a very small heat load, frost forms on the suction side of the compressor |
| This cannot be checked with sufficient reliability, as the sight glass is not designed for this purpose. |
| The compressor will operate under a lower load and the suction pressure will decrease |
| Under normal conditions, there is a marked increase in condensing pressure because an excessive amount of refrigerant accumulates in the condenser, reducing the heat exchange surface area within it. |
110
Medium
Before charging the refrigeration unit with refrigerant, it is essential to…
| complete the unit’s data sheet. |
| check the compressor’s suction and discharge connections. |
| carry out a leak test. |
| carry out a start-up test. |
111
Medium
What information must appear on the unit’s label?
| Markings regarding the weight and capacity of the pipework, together with the colour code and chemical composition of the paints used to coat the frame and casing. |
| Among other things: information stating that the unit contains a fluorinated greenhouse gas, together with the industrial designation of the gas or its chemical name, the mass of the gas and its CO₂ equivalent |
| It does not matter what should be included on the device label. |
| The manufacturer’s logo and the weight of the unit. |
112
Medium
What is the base unit of temperature according to the International System of Units (Système International d’Unités)?
| °F |
| °C |
| °R |
| K |
113
Medium
Which of the following are the most important pieces of information that should be included in the unit’s data sheet:
| The owner, installer and service technician of the unit. |
| Operator details, unit details, type and quantity of refrigerant, information regarding servicing and repairs. |
| Information regarding refrigerant recovery and unit dismantling. |
| The make and model of the unit, so that the manufacturer can be contacted to obtain the technical information necessary for servicing. |
114
Medium
Who is responsible for drawing up the equipment or installation record?
| The operator of the unit or system. |
| The equipment maintenance technician. |
| There is no such obligation. |
| The person responsible for risk assessment. |
115
Medium
Oil traps on the suction pipework are required:
| at the inlet to each component of the refrigeration system. |
| before the compressor. |
| always before any rise in the pipeline. |
| before the safety valve. |
116
Medium
When is there a refrigerant leak, even though the compressor is still running?
| When the suction pressure is low, superheat is high, subcooling is negligible and the temperature difference between the condenser and the expansion valve is small. |
| When the sight glass is full of liquid refrigerant and we observe a rise in the oil level in the compressor sump. |
| When the condensing pressure and suction pressure rise, but there is no superheat. |
| When we observe a rise in the refrigerant level in the liquid receiver and the subcooling increases. |
117
Medium
Which components of a refrigeration system can be classified as potential leak points (leaks) subject to regular leak tests?
| Fittings, valves including their stems, seals – including those in replaceable filters and dryers, components exposed to vibration, and connections to measuring, control and safety devices. |
| Parts of the system located on the high-pressure side (from the compressor up to and including the expansion valve). |
| All parts of the refrigeration unit that are connected to the suction side of the refrigeration system. |
| Hermetic compressors, liquid refrigerant tanks and liquid separators. |
118
Medium
What is the test pressure during the pressure leak test of the unit?
| The test pressure is determined by the person carrying out the leak test based on their experience. |
| According to the PN-EN 378 standard, at least 0.25 times the maximum permissible pressure for the system (PS). |
| The test pressure for leak testing is equivalent to the maximum operating pressure measured during the operation of the refrigeration unit. |
| The test pressure (maximum) is 30 bar. |
119
Medium
In which part of the refrigeration unit must the recommended leak test be carried out?
| The check must be carried out on all parts of the refrigeration system that are connected to the discharge side of the refrigeration circuit. |
| The check should only be carried out at the connection points for measuring instruments (pressure switches, pressure gauges, temperature sensors). |
| The test must be carried out on the compressor shut-off valves, solenoid valves and filters. |
| The test must be carried out at all points on the refrigeration unit where there is a potential risk of refrigerant leakage. |
120
Medium
When can a given unit be considered perfectly leak-tight?
| The device in question is perfectly leak-tight when we have carried out a check using a permanently installed electronic detector. |
| A device can be considered perfectly leak-tight if gas bubbles appear when it is submerged in water. |
| A given device can be considered perfectly leak-tight when the pressure drop during the test does not exceed 0.1 bar. |
| A given unit can be considered perfectly leak-tight if, during a leak test, the pressure remains constant, taking into account pressure changes caused by temperature variations. Any drop in pressure indicates a leak and requires the location of the leak to be identified. |
121
Medium
What does EU Regulation 1516/2007 cover?
| The Regulation concerns leak testing of stationary refrigeration, air-conditioning and heat pump equipment containing fluorinated greenhouse gases. The Regulation sets out the requirements for leak testing of such equipment. |
| The Regulation sets out requirements relating to brazing of refrigeration systems. |
| The Regulation addresses the disposal of gases that contribute to the greenhouse effect. |
| The Regulation sets out health and safety requirements for soldering work. |
122
Medium
How should the pressure be increased during a pressure leak test?
| We increase the pressure gradually whilst checking for leaks, until the test pressure is reached, at a rate of no more than 2 bar/min |
| We increase the pressure at a rate of 10 bar/s. |
| We increase the pressure in any way. |
| We increase the pressure as quickly as possible. |
123
Medium
What electronic equipment should be used to carry out leak testing?
| Only with devices fitted with an ‘Ion Pump’ sensor. |
| Only using devices with verified measurement sensitivity. |
| Only with devices fitted with hot cathodes. |
| Only with devices fitted with an infrared detector. |
124
Medium
What documentation should be checked before starting a leak test?
| Check the time sheets of the staff responsible for the machinery/equipment. |
| The maintenance log and the machine/device operating instructions must be checked. |
| Check the stock ledger (accounts). |
| Check the operating instructions for the machine/equipment. |
125
Medium
What information must be recorded when drawing up the leak test report?
| The date of the inspection, a record of the occurrence of the leak, and a signature. |
| The number of locations where leaks have occurred and the date of the inspection. |
| The method used to carry out the leak test, the number of faults, the method of repairing the faults, the time taken to work on the installation, and the cost of the repair. |
| The date of the inspection, the number of faults (leaks), the location of the faults (leaks), the proposed method of rectifying the fault/defect (leak), attached documents and a signature. |
126
Medium
What pressure values should be used for the pressure leak test?
| At the discretion of the person authorised to carry out the pressure test. |
| Use a pressure not exceeding the maximum permissible pressure for the system (PS). |
| The pressure value for the leak test is 10–12 bar. |
| The pressure for the leak test is 2–3 bar. |
127
Medium
What is temperature slip?
| It involves a decrease in temperature. |
| A specific temperature corresponds to a given vapour pressure. |
| It involves an increase in temperature. |
| A specific temperature cannot be assigned to a given vapour pressure. There is a temperature difference between the start and end of evaporation. |
128
Medium
In which appliances and systems is the installation of a permanent leak detection system required?
| In equipment and systems containing at least 500 tonnes of CO₂ equivalent. |
| In equipment and systems containing at least 50 tonnes of CO₂ equivalent. |
| In equipment and installations containing at least 30 kg of fluorinated greenhouse gases. |
| In equipment and systems containing at least 5 tonnes of CO₂ equivalent. |
129
Medium
Which category of F-gas certificate (A1, A2, B, C, D, E) authorises the performance of leak tests on refrigeration equipment:
| All except category D. |
| Category E only. |
| Categories D and E. |
| Only categories A1 and A2. |
130
Medium
Why is it advisable to subcool the liquid refrigerant?
| This is advisable because it allows a smaller condenser to be used (smaller heat exchange surface area). |
| This is advisable because it ensures that the liquid refrigerant, free of vapour bubbles, enters the expansion valve. |
| This is advisable because it allows a smaller evaporator to be used (lower refrigerant temperature at the evaporator inlet). |
| This is advisable because it allows a smaller expansion valve to be used (less superheat at the valve). |
131
Medium
What should be done following repairs to a leak in the refrigeration unit of a refrigerated trailer?
| The unit must be charged with an alternative refrigerant, started up, and the refrigerant parameters checked at the service valve located on the liquid receiver. |
| A visual inspection should be carried out only on bolted and soldered joints. |
| An invoice for the service work carried out must be issued as soon as possible. |
| You must enter the details into the equipment log (including the quantities of refrigerant recovered and used) and inform the Operator that an additional leak test must be carried out by a certified person within one month of the repair. |
132
Medium
Recovery of fluorinated greenhouse gases means:
| The reprocessing of fluorinated greenhouse gases to achieve their specified standard properties. |
| The reuse of fluorinated greenhouse gases following a basic purification process. |
| The final decommissioning and withdrawal from service or use of a product or piece of equipment containing fluorinated greenhouse gases. |
| The collection and storage of fluorinated greenhouse gases originating, for example, from machinery, equipment and containers. |
133
Medium
Who is authorised to recover refrigerant from stationary refrigeration equipment:
| The owner of the installation. |
| The operator. |
| The administrator of the operator’s account. |
| A service technician holding an F-gas certificate in the relevant category. |
134
Medium
Recovered refrigerants must be stored:
| In any pressure vessel that has been officially certified. |
| In a cylinder that previously contained the same type of refrigerant. |
| In a specially adapted and labelled cylinder fitted with a two-way valve. |
| In any used refrigerant cylinder. |
135
Medium
When should the recovery of fluorinated greenhouse gases be carried out:
| Only prior to the final disposal of equipment. |
| Before each leak test of the equipment. |
| Always during servicing and maintenance of equipment. |
| Before the final disposal of equipment and, where applicable, during its servicing and maintenance. |
136
Medium
What should be done if the refrigerant recovered from the system is contaminated, e.g. with acid, air or moisture?
| Such a mixture must be handed over to a specialist authorised company for regeneration or disposal. |
| Add a special contaminant neutraliser to the mixture. |
| Purify the mixture by passing it through a particulate filter and reuse it. |
| You should attempt to purify the mixture yourself using a dehydrating filter. |
137
Medium
What should be done if different types of refrigerants become mixed in a storage cylinder (container)?
| The mixture should be purified by passing it through a filter-drain and reused. |
| You should attempt to separate the mixture into its individual components. |
| Add a special refrigerant to the mixture. |
| Send this mixture to a specialist authorised company to have it neutralised. |
138
Medium
How does refrigerant recovery using the Push-Pull method work?
| This involves injecting nitrogen from the cylinder into the unit and expelling the liquid refrigerant from the unit. |
| This involves using a suction device (compressor) to ensure that the refrigerant, in liquid form, is transferred into the cylinder. |
| It involves using a recovery unit to draw (pull) the refrigerant vapour from the cylinder and then force it (push) into the low-pressure side of the system. |
| This involves the refrigerant being alternately drawn from the suction side and then from the discharge side of the refrigeration unit (compressor). |
139
Medium
What are the methods for managing waste refrigerant?
| Regeneration, recovery. |
| Recycling, regeneration, disposal. |
| Recovery, disposal. |
| Disposal, storage. |
140
Medium
The most advantageous method of managing waste refrigerant is:
| Storage. |
| Regeneration. |
| Disposal. |
| Recycling. |
141
Medium
The lower the evaporation temperature, ...
| ...the lower the refrigerant density, and the greater the cooling capacity of the compressor. |
| ...the lower the density of the refrigerant and the lower the mass of the flowing refrigerant. |
| …the greater the density of the refrigerant and the lower the mass flow rate of the refrigerant. |
| ...the greater the density of the refrigerant and the mass flow rate of the flowing refrigerant. |
142
Medium
How should pressure vessels (e.g. refrigerant cylinders) be marked?
| They should bear, amongst other things, information such as: the number of the standard applied to their design, construction and testing; the identification marks of the country of approval and the inspection body; the date of the acceptance test; and the manufacturer’s and operational marks. |
| They should bear the manufacturer’s logo and the date of manufacture. |
| It is irrelevant how pressure vessels should be marked. |
| They should bear only markings relating to weight and capacity. |
143
Medium
The recovery of refrigerants does not require the use of:
| Scales with a measurement range suitable for the size of the cylinder being filled. |
| Hoses with shut-off valves. |
| An electronic leak detector. |
| A refrigerant recovery station. |
144
Medium
What functions does the compressor perform in a refrigeration system?
| The compressor condenses the refrigerant. |
| The compressor compresses ambient air and increases the pressure of the refrigerant. |
| The compressor draws in refrigerant vapour from the evaporator, compresses it, and then forces it into the condenser, raising the pressure to the required condensing pressure. |
| The compressor creates a vacuum on the suction side of the system |
145
Medium
What is compressor flooding?
| A large amount of liquid refrigerant in the evaporator. |
| Flooding of the compressor due to rainfall. |
| Flooding the compression chamber with liquid refrigerant or oil. |
| Suction of liquid refrigerant into the compressor’s suction line. |
146
Medium
To what extent do we regulate the compressor motor’s rotational speed when using a frequency converter?
| Up to a maximum of 10 per cent. |
| From approximately 30% to 90% of capacity. |
| Regulating the compressor motor speed is not the same as regulating the cooling capacity. |
| Approximately from 30 to 75 Hz, which corresponds to around 60% to 150% of the cooling capacity. |
147
Medium
Why is it essential to observe the correct phase sequence for scroll compressors and screw compressors?
| Because the motor speed would decrease, and consequently the compressor’s capacity. |
| Because these types of compressors are sensitive to voltage drops. |
| Because this type of compressor has difficulty starting up if the phase sequence is changed. |
| Because changing the phase sequence would reverse the direction of rotation of the compressor rotors, which could result in damage to the compressors. |
148
Medium
The cycle of a two-stage vapour-compression refrigeration system should have, in each stage of the system:
| a compression ratio greater than 8. |
| a compression ratio of less than 18. |
| a compression ratio of less than 6 |
| a compression ratio of less than 8. |
149
Medium
Why is it necessary to seal the shafts in gland-sealed refrigeration compressors?
| Because it ensures the bearing remains lubricated. |
| Because it prevents oil leakage. |
| Because we need to prevent air from entering the compressor and we need to prevent refrigerant from leaking from the compressor. |
| Because it protects the compressor’s crankshaft bearing. |
150
Medium
When is the refrigerant sufficiently cooled?
| When the liquid distributors are warm. |
| When the outlet from the condenser is cold. |
| When the evaporator is covered in frost. |
| When no vapour bubbles are observed forming in the liquid sight glass. |
151
Medium
Why should the compressor crankcase be heated?
| Heating keeps the lubricating oil in a liquid state. |
| Heating prevents the refrigerant from dissolving in the oil. |
| Heating improves the dissolution of the refrigerant in the oil, which is beneficial for its viscosity. |
| Heating ensures that the lubricating oil is de-watered. |
152
Medium
What are compressor sets?
| These consist of a larger number (several) of compressors connected in parallel and mounted on a common frame. |
| These are units consisting of two-stage compressors. |
| These are multiple (several) air-cooled condensers. |
| These are sets comprising several compressors connected in any configuration. |
153
Medium
What are the advantages of compressor units?
| These are inexpensive and easy-to-install units. |
| Space-saving and lower energy consumption. |
| Easy modification of the system. |
| The ability to adjust the cooling capacity as required. |
154
Medium
What do we mean by the ‘application range’ of a compressor?
| By this term, we mean that the compressor’s operating range is determined by the evaporation temperature ‘to’ during operation. |
| By this term, we mean that the compressor’s application range is determined by the evaporation temperature ‘to’ at a given ambient temperature. |
| By this term, we mean the following parameters: compressor capacity, type of refrigerant, and the compressor’s geometric dimensions. |
| By this term, we mean the following parameters: the evaporation and condensation temperatures (to and tk), or the pressure values that determine the compressor’s application. |
155
Medium
What are the basic functions of oil in a compressor?
| The oil lubricates both the bearings and the sliding surfaces of the compressor components, and cools the compressor by transferring the heat generated during compression to the compressor’s outer casing. |
| The oil absorbs moisture from the refrigerant that enters the compressor. |
| The oil seals any leaks that develop in the system. |
| The oil seals the gap between the piston and the cylinder. |
156
Medium
What are the most effective ways of regulating the compressor’s cooling capacity?
| By changing the compressor’s displacement, by varying the rotational speed, or by deactivating individual cylinders. |
| By partially covering the evaporator to reduce the heat exchange surface area. |
| Using an expansion valve. |
| By means of pressure control valves. |
157
Medium
What does compressor bypass control involve?
| The bypass control is not used to regulate the compressor. |
| High-pressure liquid refrigerant is injected on the suction side of the compressor. |
| Hot, high-pressure refrigerant vapour is drawn in on the suction side of the compressor. |
| Refrigerant in the form of cooled, high-pressure vapour is introduced into the suction line. |
158
Medium
What is the fundamental difference between hermetic and semi-hermetic compressors?
| The casing of semi-hermetic compressors can be dismantled, whereas the casing of hermetic compressors cannot be dismantled. |
| Both types of compressors are disassemblable, and the difference lies in their varying capacities. |
| The housing of a hermetic compressor and the compressor itself form a single unit. |
| Semi-hermetic compressors are characterised by the quiet operation of the entire unit. |
159
Medium
How does a scroll compressor work?
| It is a type of piston-type device. |
| A scroll compressor is also known as a turbo compressor. |
| It uses two screws to compress the refrigerant. |
| It is a device fitted with two spirals. It is a type of positive displacement (volumetric) compressor in which compression takes place through the interaction of the two spirals. |
160
Medium
What physical process takes place in the evaporator?
| It causes the refrigerant flowing through it to condense. |
| The liquid refrigerant evaporates and a small amount of it becomes superheated. |
| It cools the refrigerant flowing through it. |
| The medium flowing through the evaporator (glycol, water) evaporates, whilst the refrigerant condenses. |
161
Medium
What is the purpose of regulating the compressor’s capacity?
| Capacity control protects the compressor from low thermal loads. |
| It ensures adequate lubrication of the compressor. |
| It allows the cooling capacity to be adjusted to meet requirements. |
| It ensures that the cooling capacity is adjusted based on condensing temperatures. |
162
Medium
Why is inverter speed control suitable for refrigeration compressors?
| Inverter speed control can be used with any type of compressor to ensure adequate lubrication. |
| By reducing the speed of the refrigeration compressor motor, inverter speed control improves the return oil flow to the compressor. |
| Inverter speed control reduces energy consumption only under natural conditions. |
| Inverter speed control enables continuous, smooth regulation of cooling capacity. |
163
Medium
Does the suction gas temperature affect the cooling capacity of the compressor?
| It does, but only for reciprocating compressors. |
| Temperature has no effect on the compressor’s cooling capacity. |
| It does, but only if the gas is deeply cooled. |
| It has a significant effect on performance. |
164
Medium
In the case of compressor units fitted with an oil level control system, is it necessary to install the compressors at the same height?
| Yes. |
| No. |
| Only screw compressors. |
| Only scroll compressors. |
165
Medium
What functions does a compressor powered by the vehicle’s engine perform in a transport refrigeration system?
| This compressor condenses the refrigerant whilst the vehicle is in motion. |
| This compressor creates a vacuum on the suction side of the system whilst the vehicle’s engine is switched off. |
| The compressor compresses ambient air and increases the pressure of the refrigerant. |
| This compressor draws in refrigerant vapour from the evaporator, compresses it and then forces it into the condenser whilst the vehicle’s engine is running. |
166
Medium
Which natural fluids absorb heat from the refrigerant in the condenser?
| Water or air. |
| Water and an antifreeze mixture. |
| Air and CO2. |
| Ammonia |
167
Medium
What is the function of the condenser in refrigeration systems?
| Heat from the compressor is then released into the environment via the condenser. |
| The heat absorbed in the evaporator is then released into the environment via the condenser |
| The heat absorbed in the evaporator and transferred during the compression process is then released into the environment via the condenser. |
| Heat released in the regenerative heat exchanger is absorbed by the condenser. |
168
Medium
If the condensation temperature is higher than the critical point temperature of the refrigerant, condensation:
| temperature has no effect on condensation. |
| will occur provided a specially designed condenser is used. |
| will not occur. |
| will always occur regardless of the temperature. |
169
Medium
How does the subcooling of the refrigerant take place within a refrigeration system?
| Subcooling using high-pressure hot vapour. |
| Subcooling of the refrigerant using oil (dissolving the refrigerant in oil). |
| Subcooling using an additional heat exchanger and liquid nitrogen. |
| Subcooling of the liquid refrigerant in the final section of the condenser. |
170
Medium
What is the purpose of controlling the condenser fan speed?
| Condenser fan speed control safeguards against the maximum permissible condensing pressure. |
| Dispersion of the refrigerant in the event of a system leak. |
| Condenser fan speed control ensures that the condensing pressure is maintained at the correct level. |
| Condenser fan speed control reduces energy efficiency. |



