Lifting type range hood
By designing a rectangular coordinate system flow channel structure on the cross-section of the range hood, the problem of the direct suction and exhaust channel in the working state and the overall height of the machine in the non-working state of the lift-type range hood is solved, achieving the effects of efficient smoke extraction and space saving.
Patent Information
- Application Number
- CN202310955808.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-07-31
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2043-07-31
AI Technical Summary
Existing lift-type range hoods are difficult to form a direct suction and exhaust channel when in operation, and the overall height of the machine is relatively high when not in operation, which affects the aesthetics and space utilization.
Establish a rectangular coordinate system on the cross-section of the range hood, design the first flow channel inside the air inlet, the second flow channel inside the lower box, and the third flow channel behind the fan to ensure that a direct suction and exhaust channel is formed in the descending state, and that the overall height of the machine is reduced in the non-working state.
It achieves efficient fume extraction during operation and reduces overall height when not in operation, resulting in a simple, compact, and aesthetically pleasing design that saves kitchen space.
Smart Images

Figure CN116989368B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of range hood technology, and in particular to a lift-type range hood. Background Technology
[0002] Range hoods have become an indispensable appliance in modern family kitchens. With their increasing usage, people are paying more and more attention to their smoke extraction efficiency and aesthetic appeal. Traditional top-mounted range hoods are bulky, making it easy for cooks to bump their heads. If the distance between the range hood's air inlet and the area where smoke is generated is large, the smoke's intake path is longer, increasing the extraction time and making it easier for smoke to escape during cooking. Lowering the installation height of the range hood and bringing the inlet as close to the smoke source as possible, while improving smoke extraction, results in a smaller cooking space, making it easier for the cook's head to accidentally hit the smoke hood. Furthermore, a lower installation height also affects visibility and the overall appearance of the kitchen. Therefore, lift-type range hoods were invented, where the smoke inlet can be raised and lowered; it lowers when the hood is on and rises when it is off. For example, the range hood disclosed in Chinese utility model patent No. 202222918682.7 (authorization announcement No. CN 218864291 U) includes a smoke collection chamber, a fan assembly and a lifting assembly. The fan assembly is set inside the smoke collection chamber, and the lifting assembly is connected to the smoke collection chamber. The lifting assembly can drive the smoke collection chamber to rise and fall. When the range hood is running, the lifting component lowers the smoke collection chamber below the cabinet, and the fan starts to extract the fumes. When the range hood is not running, the lifting component raises the smoke collection chamber into the cabinet, and the fan stops. This range hood has a single-stage lifting structure, with only one lifting component for the smoke collection chamber. The structure is relatively simple, and the positional constraints are limited. For a range hood with a two-stage lifting structure, it's necessary to ensure each lifting component has sufficient downward travel to significantly lower the negative pressure zone and create a direct suction and exhaust channel during operation, thereby improving fume extraction. Simultaneously, it's necessary to consider reducing the overall height of the unit when each lifting component is raised, resulting in a more compact and streamlined structure for concealed installation. In conclusion, further improvements to the existing lifting range hood structure are needed. Summary of the Invention
[0003] The technical problem to be solved by the present invention is to provide a lift-up range hood that can form a direct suction and exhaust channel inside the range hood when it is in operation and has a low overall height when it is not in operation, in view of the above-mentioned existing technology.
[0004] The technical solution adopted by the present invention to solve the above-mentioned technical problem is as follows: The lifting range hood includes an upper box, a lower box, and an air inlet. The lower box is disposed on the upper box and can move up and down relative to the upper box. The air inlet is disposed on the lower box and can move up and down relative to the lower box. A fan is installed in the upper box. The fan is vertically arranged and includes a volute. The characteristic feature is that:
[0005] Establish a rectangular coordinate system on section M of the range hood. Section M passes through the bottom of the volute and is parallel to the side panel of the upper housing. Set the X-axis and Y-axis on section M. The X-axis passes through the bottom of the volute and is parallel to the horizontal plane, and the Y-axis passes through the bottom of the rear cover of the volute and is parallel to the back panel of the upper housing.
[0006] In section M, a first flow channel is formed inside the air inlet body, a second flow channel is formed inside the lower housing, a main air inlet is located at the rear of the fan, and a third flow channel is formed between the main air inlet and the back plate of the upper housing. When both the lower housing and the air inlet body are lowered to their lowest positions, the first flow channel falls at least partially in the fourth quadrant of the rectangular coordinate system, the second flow channel falls at least partially in the fourth quadrant of the rectangular coordinate system, and the third flow channel falls in the first quadrant of the rectangular coordinate system. When both the lower housing and the air inlet body are raised to their highest positions, the first flow channel falls at least partially in the fourth quadrant of the rectangular coordinate system, the second flow channel falls partly in the first quadrant and partly in the fourth quadrant of the rectangular coordinate system, and the third flow channel falls in the first quadrant of the rectangular coordinate system.
[0007] With this configuration, when the lower casing and air intake are both at their lowest positions, the first, second, and third airflow channels are located in the fourth and first quadrants respectively, achieving a direct suction and exhaust effect. Furthermore, viewed from the front of the range hood, the width difference between the air intake, lower casing, and upper casing is minimal, maintaining the direct suction and exhaust effect. When the lower casing and air intake are both at their highest positions, a portion of the second airflow channel falls into the first quadrant, resulting in partial overlap between the second and third airflow channels. This leads to a larger overlap between the lower and upper casings when the range hood is raised, resulting in a smaller overall size and less space occupied.
[0008] As a preferred embodiment, when both the lower housing and the air inlet are at their lowest positions, at least 80% of the first flow channel is located in the fourth quadrant in the X-axis direction. With this configuration, the front panel of the air inlet is positioned further forward than the rear cover of the volute, allowing the air inlet to collect oil dripping from the rear cover of the volute.
[0009] As another preferred option, when both the lower housing and the air inlet are at their lowest positions, the first flow channel is completely located within the fourth quadrant in the X-axis direction. With this configuration, the air inlet is located entirely below and behind the fan, allowing the oil fume airflow to flow vertically upwards towards the fan's main air inlet without obstruction, thus achieving a direct suction and exhaust effect and improving the oil fume extraction efficiency.
[0010] Preferably, the fan has an auxiliary air inlet on its front side. In section M, a fourth flow channel is formed between the auxiliary air inlet and the front panel of the upper housing, and the fourth flow channel falls within the second quadrant of the rectangular coordinate system. With the auxiliary air inlet provided, the fumes in the second flow channel can be discharged more quickly during operation.
[0011] Further preferably, when both the lower casing and the air inlet are lowered to their lowest positions, the second flow channel includes a first part and a second part. The first part is at least partially located in the third quadrant, and the second part is at least partially located in the fourth quadrant. The first part corresponds to the fourth flow channel. This arrangement facilitates the smooth flow of air from the first part of the second flow channel into the fourth flow channel. Furthermore, it allows the air inlet to be accommodated in the second part of the second flow channel when it rises, thus fully utilizing the internal space of the range hood and reducing the overall height of the unit.
[0012] Further optimized, the vertical projection of the fourth flow channel falls entirely within the first part. This creates a direct suction and exhaust channel between the first part of the second flow channel and the fourth flow channel, which improves the fume extraction effect.
[0013] Further preferably, a baffle is provided inside the lower housing, parallel to the back panel of the lower housing. A second section is formed between the baffle and the back panel of the lower housing. When both the lower housing and the air inlet are at their lowest positions, at least 75% of this second section is located in the fourth quadrant along the X-axis. This arrangement creates a direct suction and exhaust passage between the second section of the second flow channel and the third flow channel, facilitating rapid smoke extraction and improving the fume extraction effect.
[0014] Further optimization involves ensuring that, when both the lower casing and the air inlet are at their lowest positions, the width of the first part of the second flow channel is greater than the width of the second part on the X-axis. With this configuration, cooking fumes enter the first part through the narrow second part and then into the upper casing. Because the first part is narrower, the fumes flow faster, driving the external flow field to achieve a faster airflow and providing greater backward velocity to the fumes within the same timeframe, preventing fumes from escaping. However, this also causes turbulence in the airflow, resulting in uneven fume velocity at the air inlet and affecting the fume extraction effect. The wider first part, located downstream of the second part, can create a highly efficient pressure-stabilizing chamber due to its larger volume. This chamber buffers and stabilizes the airflow, ensuring a relatively uniform wind speed at the air inlet and preventing fumes from escaping from the sides of the range hood. Furthermore, the oil stains inside the upper chamber will drip into the lower chamber, and the problem of oil splashing and drifting is difficult to deal with, especially when there is a lot of condensed oil inside the fan system. The wide first section can effectively reduce the wind speed, reduce the impact of airflow on the trajectory of oil droplets, and prevent oil droplets dripping from the volute from splashing.
[0015] Further optimization reveals that, when both the lower housing and the air inlet are at their lowest positions, the width W2 of the first part and the width W1 of the second part, on the X-axis, satisfy: 1.1W1≤W2≤4W1. With this configuration, the structure of the first and second parts of the second flow channel constitutes a variable cross-section air inlet channel, effectively blocking the direct transmission of fan system noise. By simulating the principle of reactive noise reduction, sound waves emitted from the fan are reflected multiple times within the wide second part and thus canceled out. Therefore, a variable cross-section acoustic impedance is constructed, reducing the energy of sound propagating from the fan inlet to the range hood inlet. Additionally, this airflow buffer chamber, simulating a static pressure box, can improve the unsteady flow separation caused by inlet distortion, thereby reducing pressure pulsation and improving sound quality.
[0016] Further preferred, when both the lower housing and the air inlet are lowered to their lowest positions, on the X-axis, the flow channel width W2 of the first part and the flow channel width W1 of the second part satisfy: 2W1≤W2≤3W1.
[0017] Preferably, the width of the fourth flow channel in the second quadrant is smaller than the width of the third flow channel in the first quadrant. This results in a wider flow channel on the main air inlet side of the fan and a narrower flow channel on the auxiliary air inlet side, leading to a more rational airflow distribution and improved fume extraction efficiency.
[0018] In order to form a direct suction and discharge channel, the first flow channel, the rear flow channel of the second flow channel, and the third flow channel are interconnected from bottom to top in the vertical direction.
[0019] Preferably, in the state where the lower box body descends to the lowest position, the whole fan is located above the second flow channel. With this arrangement, the descending stroke of the lower box body is large enough, and the negative pressure area can move down a sufficient distance, thereby improving the effect of sucking cooking fumes.
[0020] Preferably, in the state where the lower box body rises to the highest position, at least part of the fan extends into the second flow channel. With this arrangement, the overall height of the unit in the non-working state can be reduced, the structure of the range hood is more concise, and it is beneficial to conceal the whole unit in the cabinet.
[0021] Further preferably, in the state where the lower box body rises to the highest position, the height of the air inlet body in the lower box body is H1, the height of the upper box body in the lower box body is H2, and the height of the lower box body is H3, satisfying H1 + H2 ≥ aH3, where a is 0.8, 0.85, 0.9 or 0.95. With this arrangement, in the non-working state, the internal space of the lower box body can be fully utilized to accommodate the upper box body and the air inlet body, thereby reducing the overall height of the unit as much as possible.
[0022] Further preferably, in the state where the lower box body rises to the highest position, H1 + H2 < H3 is satisfied. In this way, in the non-working state, there is no overlapping part between the air inlet body and the fan in the vertical direction, which is convenient for guiding the oil liquid on the fan to the air inlet body.
[0023] In order to reduce the overall height of the unit in the non-working state, in the state where the lower box body rises to the highest position, on the Y-axis, at least 50% of the fan is located in the second flow channel.
[0024] In order to reduce the overall height of the unit in the non-working state as much as possible, in the state where the lower box body rises to the highest position, on the Y-axis, at least 95% of the air inlet body is located in the second flow channel.
[0025] In order to limit the minimum descending stroke of the unit and enable the negative pressure area to descend a sufficient distance, in the state where the lower box body descends to the lowest position, the height of the fan is L1, the air inlet body is provided with an air inlet, and the height from the bottommost end of the air inlet to the horizontal plane where the bottommost end of the fan is located is L2, satisfying: L2 ≥ bL1, where b is 1.3, 1.4, 1.5 or 1.6.
[0026] In order to drive the lower box body and the air inlet body to perform lifting movements, the lower box body moves up and down relative to the upper box body under the drive of the drive mechanism, and the air inlet body moves up and down relative to the lower box body under the drive of the drive mechanism.
[0027] Compared with the prior art, the advantages of the present invention are as follows: This lift-up range hood establishes a rectangular coordinate system on the cross-section of the range hood, with a first flow channel inside the air inlet, a second flow channel inside the lower housing, and a third flow channel on the side of the main air inlet at the rear of the fan. In the descending state, the rear of the first flow channel, the second flow channel, and the third flow channel can form a direct suction and exhaust channel, thereby improving the smoke extraction effect. In the non-working state, as part of the second flow channel falls into the first quadrant and part falls into the fourth quadrant, the fan can enter the lower housing, and the air inlet can enter the lower housing, thereby reducing the overall height of the range hood, making the range hood structure simple and compact, which is conducive to hiding the whole machine in the kitchen cabinet, with high aesthetics and saving external kitchen space. Attached Figure Description
[0028] Figure 1 This is a schematic diagram of the structure of a range hood according to an embodiment of the present invention (in a non-working state);
[0029] Figure 2 for Figure 1 The image shows a front view of the range hood.
[0030] Figure 3 for Figure 2 The image shows a sectional view of the range hood along the BB direction.
[0031] Figure 4 A schematic diagram of the structure of a range hood according to an embodiment of the invention (in working condition);
[0032] Figure 5 for Figure 4 The image shows a front view of the range hood.
[0033] Figure 6 for Figure 4 A three-dimensional sectional view of the range hood shown;
[0034] Figure 7 for Figure 5 The image shows a cross-sectional view of the range hood along the CC direction. Detailed Implementation
[0035] The present invention will be further described in detail below with reference to the accompanying drawings and embodiments.
[0036] The solution in this embodiment is implemented when the range hood is installed along a vertical wall, such as... Figures 1 to 7 As shown, the lift-type range hood of this embodiment includes an upper housing 1, a lower housing 2, and an air inlet 3. The lower housing 2 is mounted on the upper housing 1 and can move up and down relative to the upper housing 1, while the air inlet 3 is mounted on the lower housing 2 and can move up and down relative to the lower housing 2, thus realizing a two-stage lifting structure. The lower housing 2 and the air inlet 3 can move up and down synchronously under the drive of a single drive mechanism, or they can move independently under the drive of separate drive mechanisms.
[0037] A fan 4 is installed inside the upper housing 1. The fan 4 is a vertically arranged centrifugal fan. The vertical arrangement is not limited to being perpendicular to the horizontal plane; the angle between the fan and the horizontal plane can be 80°-100°. The fan 4 includes a volute 41, and the central axis of the impeller is located on the horizontal plane or at an angle of less than 10° to the horizontal plane.
[0038] The solutions in this embodiment are all described on cross-section M, such as... Figure 3 , 6 As shown in Figure 7, Figure 3 The direction indicated by the middle arrow A is backward. A rectangular coordinate system is established on the cross-section M of the range hood. This cross-section M passes through the bottom of the volute 41 and is parallel to the side panel of the upper housing 1. An X-axis and a Y-axis are set on cross-section M. The X-axis passes through the bottom of the volute 41, is parallel to the horizontal plane, and extends from front to back. The Y-axis passes through the bottom of the rear cover plate 411 of the volute, is parallel to the back panel 11 of the upper housing, and extends from bottom to top. Here, the side panel of the upper housing 1 refers to the left or right side panel of the upper housing 1. This side panel is perpendicular to the horizontal plane and perpendicular to the vertical plane where the back panel 11 of the upper housing is located. The vertical plane is perpendicular to the horizontal plane. Furthermore, when the volute 41 is vertically positioned, the bottom of the rear cover plate 411 is a straight line; when the volute 41 is inclined relative to the horizontal plane, the bottom of the rear cover plate 411 is a point.
[0039] In section M, a first flow channel 51 is formed inside the air inlet 3, a second flow channel 52 is formed inside the lower housing 2, a main air inlet 42 is located at the rear of the fan 4, an auxiliary air inlet 43 is located at the front of the fan 4, a third flow channel 53 is formed between the main air inlet 42 and the upper housing back plate 11, and a fourth flow channel 54 is formed between the auxiliary air inlet 43 and the upper housing front plate 12. The fourth flow channel 54 falls in the second quadrant of the rectangular coordinate system, and the first flow channel 51, the second flow channel 52, the third flow channel 53 and the fourth flow channel 54 are all fluidly connected. When both the lower housing 2 and the air inlet 3 are lowered to their lowest positions, the first flow channel 51 is at least partially located in the fourth quadrant of the rectangular coordinate system, the second flow channel 52 is at least partially located in the fourth quadrant of the rectangular coordinate system, and the third flow channel 53 is located in the first quadrant of the rectangular coordinate system; when both the lower housing 2 and the air inlet 3 are raised to their highest positions, the first flow channel 51 is at least partially located in the fourth quadrant of the rectangular coordinate system, the second flow channel 52 is partially located in the first quadrant and partially located in the fourth quadrant of the rectangular coordinate system, and the third flow channel 53 is located in the first quadrant of the rectangular coordinate system. Therefore, in the descending state, the rear of the first flow channel 51, the second flow channel 52, and the third flow channel 53 can form a direct suction and exhaust channel, thereby improving the fume extraction effect. In the non-working state, as part of the second flow channel 52 falls into the first quadrant and part falls into the fourth quadrant, the fan 4 can enter the lower housing 2 and the air inlet 3 can enter the lower housing 2, thereby reducing the overall height of the range hood, making the range hood structure simple and compact, which is conducive to hiding the whole unit in the kitchen cabinet, with high aesthetics and saving external kitchen space.
[0040] In this embodiment, the front side of the air inlet 3 has an air inlet 31, and the bottom of the air inlet 3 is equipped with an oil cup 8. When both the lower housing 2 and the air inlet 3 are lowered to their lowest positions, at least 80% of the first flow channel 51 is located in the fourth quadrant in the X-axis direction. With this configuration, the front panel of the air inlet 3 is further forward than the rear cover plate 411 of the volute, and the air inlet 3 can catch the oil dripping from the rear cover plate 411 of the volute. The oil eventually enters the oil cup 8 through the air inlet 3. In addition, when both the lower housing 2 and the air inlet 3 are lowered to their lowest positions, the first flow channel 51 can also be completely located in the fourth quadrant in the X-axis direction. Thus, the air inlet 3 is located below and behind the fan 4. After passing through the air inlet 3, the oil fume airflow can flow vertically upward to the main air inlet 42 of the fan without being obstructed during the flow, forming a direct suction and discharge effect, thereby improving the oil fume extraction effect.
[0041] like Figure 3 , 6As shown in Figures 7 and 8, the second flow channel 52 in this embodiment includes a first part 521 and a second part 522. The lower housing 2 has a horizontally arranged oil guide plate 7 and a vertically arranged baffle 6 inside. In the vertical direction, the oil guide plate 7 is approximately located in the middle of the lower housing. The oil guide plate 7 can be horizontally arranged or slightly angled downwards from front to back. The oil guide plate 7 is located below the fan 4 and can collect the oil dripping from the fan 4. The air inlet 3 is located below and behind the oil guide plate 7, allowing the oil fumes on the oil guide plate 7 to flow into the oil cup 8 through the air inlet 3. The baffle 6 is located below the oil guide plate 7 and in front of the air inlet 3. The top of the baffle 6 is connected to the rear of the oil guide plate 7. The baffle 6 can be parallel to the back plate 21 of the lower housing or at a certain angle. Typically, the angle between the baffle 6 and the plumb line can be 0-10°.
[0042] Viewed in section M, the interior of the lower housing 2 is divided into a first part 521 and a second part 522 of the second flow channel 52 by the oil guide plate 7 and the baffle 6. The lower housing back plate 21, the lower housing front plate 22, and the oil guide plate 7 form the first part 511, which is relatively wide, meaning it is wider in the front-to-back direction. The lower housing front plate 22 can be either the front panel of the lower housing 2 or a plate formed by bending the front side of the oil guide plate 7 vertically upwards. In this embodiment, the lower housing front plate 22 is the latter, meaning it is an integral piece with the oil guide plate 7. The baffle 6 and the lower housing back plate 21 form the second part 522, which is relatively narrow, meaning it is narrower in the front-to-back direction. Thus, a variable cross-section flow channel is formed inside the lower housing 2. When both the lower housing 2 and the air inlet 3 are lowered to their lowest positions, on the X-axis, the width of the first part 521 of the second flow channel 52 is greater than the width of the second part 522. The flow channel width W2 of the first part 521 and the flow channel width W1 of the second part 522 satisfy: 1.1W1≤W2≤4W1. In this embodiment, both the first part 521 and the second part 522 are regular rectangular structures, meaning that W1 and W2 remain unchanged in their respective height directions. If they were irregular structures, then at any position in the height direction, the following condition must also be met: 1.1W1≤W2≤4W1.
[0043] To increase the abrupt change in the flow channel width W2 of the first part 521 and the flow channel width W1 of the second part 522, and to ensure the buffering, stabilizing, noise reduction, and oil interception effects of the abrupt change in the variable cross-section channel on the airflow, when the lower housing and the air inlet are both at their lowest positions, the flow channel widths W2 of the first part and W1 of the second part satisfy the following condition on the X-axis: 2W1≤W2≤3W1. Similarly, both the first part 521 and the second part 522 are regular rectangular structures, meaning that W1 and W2 remain unchanged in their respective height directions. If they are irregular structures, then at any position in the height direction, the condition 2W1≤W2≤3W1 must also be satisfied.
[0044] With the aforementioned variable cross-section air inlet channel, viewed from section M, the fumes enter the first section 521 through the narrow second part 522, and then enter the upper casing 1. Because the second part 522 has a narrow front-to-back width, the fumes flow velocity is fast, which can drive the external flow field to achieve faster airflow, giving the fumes a greater backward velocity in the same amount of time, preventing the fumes from escaping. However, at the same time, the airflow here will also be turbulent, causing uneven fumes flow velocity at the air inlet, affecting the fume extraction effect. The wide first part 521 is located downstream of the second part 522. At this time, the first part 521, due to its larger volume, can construct an efficient pressure stabilizing chamber, allowing the airflow to be buffered and stabilized within the pressure stabilizing chamber, ensuring that there is a basically the same wind speed at the air inlet, avoiding the problem of fumes escaping from both sides of the range hood. Furthermore, the oil stains inside the upper housing 1 will drip into the lower housing, and the problem of oil splashing and drifting is difficult to deal with, especially when there is a lot of condensed oil inside the fan 4. The wide first part 521 can effectively reduce the wind speed, reduce the influence of airflow on the trajectory of oil droplets, and prevent oil droplets dripping from the volute from splashing.
[0045] Furthermore, the variable cross-section air inlet channel can effectively block the direct transmission of noise from the fan 4. By simulating the principle of reactive noise cancellation, the sound waves emitted from the fan 4 are reflected multiple times within the wide first section 521 and thus canceled out. Therefore, a variable cross-section acoustic impedance is constructed to reduce the energy of sound propagating from the fan inlet to the range hood inlet. In addition, the airflow buffer chamber is constructed to simulate a static pressure box, which can improve the unsteady flow separation caused by inlet distortion, thereby reducing pressure pulsation and improving sound quality.
[0046] In this embodiment, when the angle between the oil guide plate 7 and the baffle 6 reaches 90°, the turning angle of the variable cross section is the largest. This generates many small turbulences, increasing the contact between the oil fumes and the oil guide plate 7. As a result, the amount of condensed oil on the oil guide plate 7 increases, reducing the amount of oil fumes entering the fan 4, and thus reducing the amount of oil contamination on the impeller. In addition, turbulence is generated at the turning point. According to the oil fume path, the downstream of the turbulence is the large pressure stabilizing chamber, which corresponds to the first part of the second flow channel 52. The pressure stabilizing chamber has a certain height, so the airflow can be buffered and stabilized effectively, avoiding the influence of turbulence on the oil fume absorption effect.
[0047] like Figure 6 and Figure 7 As shown, the first part 521 is located in the third quadrant, and the second part 522 is at least partially located in the fourth quadrant. The first part 521 corresponds to the fourth flow channel 54. The vertical projection of the fourth flow channel 54 falls entirely within the first part 521. This facilitates the smooth flow of air from the first part 521 into the fourth flow channel 54, and also allows the air inlet 3 to be accommodated within the second part 522 when it is raised, thus making full use of the internal space of the smoke hood and reducing the overall height of the machine.
[0048] The first flow channel 51, the rear flow channel of the second flow channel 52, and the third flow channel 53 are vertically and upwardly interconnected. At least 75% of the second part 522 of the second flow channel 52 is located within the fourth quadrant in the X-axis direction. Thus, a direct suction and direct discharge connection is formed between the second part 522 of the second flow channel 52 and the third flow channel 53, which is conducive to rapid smoke exhaust and improves the oil fume extraction effect.
[0049] The flow channel width of the fourth flow channel 54 within the second quadrant is smaller than the flow channel width of the third flow channel 53 within the first quadrant. Thus, the flow channel on the main air inlet side of the fan 4 is wider, and the flow on the auxiliary air inlet side is narrower, with a more reasonable air flow distribution, which is beneficial to improving the oil fume extraction effect.
[0050] When both the lower box body 2 and the air inlet body 3 are lowered to the lowest position, the fan 4 is entirely located above the second flow channel 52. This setting enables the lower box body 2 to have a sufficient descending stroke, allowing the negative pressure area to move down a sufficient distance, thereby improving the oil fume extraction effect. Assuming the height of the fan 4 is L1, and the height from the lowest end of the air inlet 31 of the air inlet body 3 to the horizontal plane where the lowest end of the fan 4 is located is L2, satisfying: L2≥bL1, where b is 1.3, 1.4, 1.5, or 1.6. Thus, the minimum descending stroke of the whole machine can be limited, enabling the negative pressure area to descend a sufficient distance.
[0051] As Figure 3 shown, in the state where the lower box body 2 and the air inlet body 3 are raised to the highest position, at least a part of the fan 4 extends into the second flow channel 52. On the Y-axis, at least 50% of the fan 4 is located within the second flow channel 52, and at least 95% of the air inlet body 3 is located within the second flow channel 52. Assuming the height of the air inlet body 3 within the lower box body 2 is H1, the height of the upper box body 1 within the lower box body 2 is H2, and the height of the lower box body 2 is H3, satisfying H1 + H2≥aH3, where a is 0.8, 0.85, 0.9, or 0.95. Thus, in the non-working state, the internal space of the lower box body 2 can be fully utilized to accommodate the upper box body 1 and the air inlet body 3, thereby minimizing the height of the whole machine as much as possible. In addition, it is also necessary to satisfy H1 + H2 < H3. Thus, in the non-working state, there is no overlapping part between the air inlet body 3 and the fan 4 in the vertical direction, facilitating the introduction of the oil liquid on the fan 4 onto the air inlet body 3.
[0052] In the description and claims of the present invention, terms indicating directions, such as "front", "rear", "upper", "lower", "left", "right", "side", "top", "bottom", etc., are used to describe various exemplary structural parts and elements of the present invention. However, these terms are used only for the purpose of convenient explanation and are determined based on the exemplary orientations shown in the drawings. Since the embodiments disclosed in the present invention can be arranged in different directions, these terms indicating directions are only for illustration and should not be regarded as limitations. For example, "upper" and "lower" are not necessarily limited to directions opposite or consistent with the direction of gravity.
[0053] The term "fluid connectivity" as used in this invention refers to the spatial relationship between two components or parts, collectively referred to as the first part and the second part, meaning that a fluid, gas, liquid, or a mixture of both can flow from the first part along a flow path and / or be transported to the second part. This can be a direct connection between the first part and the second part, or an indirect connection between the first part and the second part through at least one third party. This third party can be a fluid channel such as a pipe, channel, conduit, guide, hole, or groove, or a chamber that allows fluid to flow through, or a combination of the above.
Claims
1. A lifting type range hood, comprising an upper cabinet (1), a lower cabinet (2) and an air inlet body (3), the lower cabinet (2) is arranged on the upper cabinet (1) and can move up and down relative to the upper cabinet (1), the air inlet body (3) is arranged on the lower cabinet (2) and can move up and down relative to the lower cabinet (2), a fan (4) is installed in the upper cabinet (1), the fan (4) is vertically arranged, and the fan (4) comprises a volute (41), characterized in that: a rectangular coordinate system is established on a cross section M of the range hood, the cross section M passes through the bottom end of the volute (41) and is parallel to the side plate of the upper cabinet (1), an X axis and a Y axis are arranged on the cross section M, the X axis passes through the bottom end of the volute (41) and is parallel to the horizontal plane, and the Y axis passes through the bottom end of the back cover plate (411) of the volute and is parallel to the back plate (11) of the upper cabinet, on the cross section M, a first flow channel (51) is formed in the air inlet body (3), a second flow channel (52) is formed in the lower cabinet (2), the fan (4) has a main air inlet (42) at the back side, and a third flow channel (53) is formed between the main air inlet (42) and the back plate (11) of the upper cabinet; when the lower cabinet (2) and the air inlet body (3) are both lowered to the lowest position, the first flow channel (51) is at least partially located in the fourth quadrant of the rectangular coordinate system, the second flow channel (52) is at least partially located in the fourth quadrant of the rectangular coordinate system, and the third flow channel (53) is located in the first quadrant of the rectangular coordinate system; when the lower cabinet (2) and the air inlet body (3) are both raised to the highest position, the first flow channel (51) is at least partially located in the fourth quadrant of the rectangular coordinate system, the second flow channel (52) is partially located in the first quadrant and partially located in the fourth quadrant of the rectangular coordinate system, and the third flow channel (53) is located in the first quadrant of the rectangular coordinate system, the lower cabinet (2) moves up and down relative to the upper cabinet (1) under the drive of a drive mechanism, and the air inlet body (3) moves up and down relative to the lower cabinet (2) under the drive of the drive mechanism.
2. The lifting type range hood according to claim 1, characterized in that: When the lower cabinet (2) and the air inlet body (3) are both lowered to the lowest position, the first flow channel (51) is at least 80% located in the fourth quadrant in the X axis direction.
3. The lifting type range hood according to claim 1, characterized in that: When the lower cabinet (2) and the air inlet body (3) are both lowered to the lowest position, the first flow channel (51) is completely located in the fourth quadrant in the X axis direction.
4. The lifting range hood according to claim 1, characterized in that: The fan (4) has an auxiliary air inlet (43) at the front side, on the cross section M, a fourth flow channel (54) is formed between the auxiliary air inlet (43) and the front plate (12) of the upper cabinet, and the fourth flow channel (54) is located in the second quadrant of the rectangular coordinate system.
5. The lifting hood according to claim 4, characterized in that: When the lower cabinet (2) and the air inlet body (3) are both lowered to the lowest position, the second flow channel (52) comprises a first part (521) and a second part (522), the first part (521) is at least partially located in the third quadrant, the second part (522) is at least partially located in the fourth quadrant, and the first part (521) corresponds to the fourth flow channel (54).
6. The lifting hood according to claim 5, characterized in that: The vertical projection of the fourth flow channel (54) falls completely within the first portion (521).
7. The lifting hood according to claim 5, characterized in that: The lower cabinet (2) is provided with a baffle (6) parallel to the lower cabinet back plate (21), and a second portion (522) is formed between the baffle (6) and the lower cabinet back plate (21). When the lower cabinet (2) and the air inlet body (3) are both lowered to the lowest position, the second portion (522) is at least 75% in the fourth quadrant in the X-axis direction.
8. The lifting hood according to claim 5, characterized in that: When the lower cabinet (2) and the air inlet body (3) are both lowered to the lowest position, the width of the first portion (521) of the second flow channel (52) is greater than the width of the second portion (522) in the X-axis.
9. The lifting hood according to claim 8, characterized in that: When the lower cabinet (2) and the air inlet body (3) are both lowered to the lowest position, the flow channel width W2 of the first portion (521) and the flow channel width W1 of the second portion (522) satisfy: 1.1W1≤W2≤4W1 in the X-axis.
10. The lifting hood according to claim 4, characterized in that: The flow channel width of the fourth flow channel (54) in the second quadrant is less than the flow channel width of the third flow channel (53) in the first quadrant.
11. The lifting hood according to claim 1, characterized in that: The rear flow channels of the first flow channel (51), the second flow channel (52), and the third flow channel (53) are mutually penetrable in the vertical direction from bottom to top.
12. The lifting hood according to claim 1, characterized in that: In the state that the lower cabinet (2) is lowered to the lowest position, the fan (4) is located above the second flow channel (52) as a whole.
13. The lifting hood according to claim 1, characterized in that: In the state that the lower cabinet (2) is raised to the highest position, the fan (4) at least partially extends into the second flow channel (52).
14. The lifting hood according to claim 13, characterized in that: In the state that the lower cabinet (2) is raised to the highest position, the height of the air inlet body (3) in the lower cabinet (2) is H1, the height of the upper cabinet (1) in the lower cabinet (2) is H2, and the height of the lower cabinet (2) is H3, which satisfy H1+H2≥aH3, a being 0.8, 0.85, 0.9, or 0.
95.
15. The lifting hood according to claim 14, characterized in that: In the state that the lower cabinet (2) is raised to the highest position, H1+H2<H3 is satisfied.
16. The lifting hood according to claim 14, characterized in that: In the state that the lower cabinet (2) is raised to the highest position, at least 50% of the fan (4) is located in the second flow channel (52) in the Y-axis.
17. The lifting hood according to claim 14, characterized in that: In the state that the lower cabinet (2) is raised to the highest position, at least 95% of the air inlet body (3) is located in the second flow channel (52) in the Y-axis.
18. The lifting hood according to claim 1, characterized in that: In the state that the lower cabinet (2) is lowered to the lowest position, the height of the fan (4) is L1, the air inlet body (3) is provided with an air inlet (31), the height from the bottom end of the air inlet (31) to the horizontal plane where the bottom end of the fan (4) is located is L2, and L2≥bL1 is satisfied, b being 1.3, 1.4, 1.5, or 1.6.
Citation Information
Patent Citations
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