Protective enclosure system suitable for extreme climate conditions
By designing a protective shell system suitable for extreme climatic conditions, the combination of support and stability mechanisms is used to solve the problems of medical equipment damage and inconvenience in use by ship shaking, and the stable fixation and operation accuracy of the equipment are achieved.
Patent Information
- Application Number
- CN202411934511.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-26
- Publication Date
- 2025-05-02
AI Technical Summary
Ships shaking and tilting in extreme climates can lead to damage and inconvenient use of medical equipment, and existing fixing methods cannot effectively deal with this situation.
A protective shell system including a support mechanism and a stabilizing mechanism is designed. The support mechanism realizes the stable fixation of medical equipment through a mounting seat, mounting disc, semi-sphere, slide rod and counterweight block. The stabilizing mechanism uses a level and electric push rod to monitor and adjust the locking state of the semi-sphere to ensure that the equipment does not shake when the ship shakes.
It effectively prevents medical equipment from being damaged by shaking in extreme climate conditions, improves the operation accuracy of medical staff, and reduces the difficulty and risk of medical treatment.
Smart Images

Figure CN119911376A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of marine medical equipment, in particular to a protective housing system suitable for extreme climatic conditions. Background Art
[0002] When a ship is sailing and encounters extremely bad weather, the ship will inevitably be affected by waves, currents and other factors, causing it to sway and tilt. This sway and tilt will cause many serious problems for the medical equipment on board.
[0003] On the one hand, violent shaking may cause the precision components inside the medical equipment to shift and collide, thereby causing damage to the equipment and affecting its normal service life and performance; on the other hand, when the medical equipment is in use, the shaking will greatly interfere with the operating accuracy of medical staff, increase the difficulty and risk of medical treatment, and bring great inconvenience to medical rescue work on board.
[0004] The traditional method of fixing shipboard medical equipment is often to simply fix the equipment on the flat surface of the ship. It is difficult to effectively deal with the complex shaking and tilting conditions of the ship, and cannot meet the needs of stable operation and precise use of medical equipment in a ship environment. Summary of the invention
[0005] The present invention provides a protective shell system suitable for extreme climatic conditions to solve the problem that existing medical equipment is not easy to cope with the shaking of ships in extreme weather.
[0006] In order to alleviate the above technical problems, the technical solution provided by the present invention is:
[0007] A protective shell system suitable for extreme climatic conditions includes a supporting mechanism and a stabilizing mechanism, wherein the supporting mechanism includes a mounting seat and a mounting plate, and the medical device is mounted on the mounting plate; the stabilizing mechanism includes a semicircular sphere hinged in the mounting seat, the mounting plate is connected to the top of the semicircular sphere, the bottom of the semicircular sphere is connected to a sliding rod, the upper part of the sliding rod is connected to a counterweight block, and the mounting seat is connected to a spirit level, when the spirit level detects that the mounting seat is close to horizontal, the semicircular sphere is locked to the mounting seat, and when the spirit level detects that the inclination of the mounting seat increases, the semicircular sphere is unlocked from the mounting seat.
[0008] Furthermore, the support mechanism also includes a ball, a plurality of the ball is provided, and the plurality of the ball are all rollingly connected to the semicircular ball.
[0009] Furthermore, the support mechanism further comprises a plurality of screws threadedly connected to the mounting plate, and after the medical device is placed on the mounting plate, the screws are tightened so that the medical device is fixedly connected to the mounting plate;
[0010] Two blocking rods are arranged on the mounting seat, and the two blocking rods are respectively close to two adjacent sides of the mounting plate.
[0011] Furthermore, a connecting column is arranged on the semicircular sphere at the opposite side of the sliding rod, and the mounting plate is connected to the top of the connecting column.
[0012] Furthermore, the stabilizing mechanism also includes two electric push rods, which are symmetrically connected to the mounting seat, and the ends of the two electric push rods are connected with blocks. When the level detects that the mounting seat is close to horizontal, the two electric push rods are extended so that the two blocks are engaged with the semi-circular sphere, and when the level detects that the inclination of the mounting seat increases, the two electric push rods are shortened so that the two blocks are away from the semi-circular sphere.
[0013] Furthermore, the stabilizing mechanism also includes a limit plate connected to the bottom end of the slide rod, the counterweight block is slidably connected to the slide rod, and when the counterweight block moves down the slide rod to a maximum stroke, the limit plate abuts against the counterweight block.
[0014] Furthermore, it also includes a lifting mechanism, which includes four connecting seats connected to the four corners of the mounting seat, two of the connecting seats are connected to a hydraulic rod, and the output end of the hydraulic rod is connected to a rectangular frame seat. When the semicircular ball is unlocked on the mounting seat, the hydraulic rod extends. When the hydraulic rod extends, the sliding rod slides up on the counterweight block and drives the counterweight block away from the lower contact surface through the limit plate.
[0015] Furthermore, the lifting mechanism further comprises four groups of electric telescopic rods, the four groups of electric telescopic rods are respectively connected to the four corners of the rectangular frame seat, the output ends of the four hydraulic rods are connected to the top seats, and the tops of the four groups of electric telescopic rods are respectively connected to the four top seats;
[0016] A pressure sensor is connected to the upper surface of the limit plate. When the ship rises and falls so that the counterweight block is in an overweight state, the pressure on the pressure sensor increases, so that the four groups of electric telescopic rods are shortened. When the ship descends so that the counterweight block is in a weightless state, the pressure on the pressure sensor decreases, so that the four groups of electric telescopic rods are extended.
[0017] Furthermore, it also includes an anti-tilt mechanism, which includes extension plates slidably connected to the four sides of the rectangular frame seat. When the swing angle of the semicircular ball increases, the extension plate located on the opposite side of the swing of the mounting plate extends.
[0018] Furthermore, the anti-tilt mechanism also includes four pressure-sensitive switches arranged on the mounting seat, and the four sides of the rectangular frame seat are respectively connected to four cylinders for driving the four extension plates to slide, and the four pressure-sensitive switches respectively control the extension and retraction of the cylinders on the opposite sides.
[0019] The beneficial effects of the present invention are analyzed as follows:
[0020] A protective housing system suitable for extreme climatic conditions includes a supporting mechanism and a stabilizing mechanism. The supporting mechanism includes a mounting seat and a mounting plate. The medical device is mounted on the mounting plate. The stabilizing mechanism includes a semicircular ball hinged in the mounting seat. The mounting plate is connected to the top of the semicircular ball. The bottom of the semicircular ball is connected to a sliding rod. The upper part of the sliding rod is connected to a counterweight. The mounting seat is connected to a spirit level. When the spirit level detects that the mounting seat is close to horizontal, the semicircular ball is locked to the mounting seat. When the spirit level detects that the mounting seat is tilted more, the semicircular ball is unlocked from the mounting seat.
[0021] The mounting base of the shell system is placed on the ship and fixed with ropes, etc. The medical equipment is installed on the mounting plate. When the shaking amplitude of the ship increases, the semi-circular ball is unlocked on the mounting base. At this time, the semi-circular ball can roll in the mounting base, and the counterweight block applies a downward force to the semi-circular ball, so that the slide bar is always in a vertical state, thereby preventing the medical equipment from shaking and causing damage and inconvenience in use. The setting of the spirit level enables the tilt degree of the ship to be monitored, and the control system receives the data detected by the spirit level to determine whether the ship is too tilted and the semi-circular ball needs to be unlocked. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] In order to more clearly illustrate the specific embodiments of the present invention or the technical solutions in the related technologies, the drawings required for use in the specific embodiments or the related technical descriptions will be briefly introduced below. Obviously, the drawings described below are some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative work.
[0023] Figure 1 It is an overall state diagram of the equipment for the stable operation of the vessel of the present invention;
[0024] Figure 2 This is a diagram showing the overall state of the device when the ship of the present invention is shaking;
[0025] Figure 3 It is a schematic diagram of the structure of the hemisphere of the present invention;
[0026] Figure 4 It is a structural schematic diagram of the installation disk of the present invention;
[0027] Figure 5 It is a structural schematic diagram of the limiting plate of the present invention;
[0028] Figure 6 It is a structural schematic diagram of the anti-tilt mechanism of the present invention.
[0029] icon:
[0030] 100, support mechanism; 110, mounting seat; 120, ball bearing; 130, mounting plate; 140, screw; 200, stabilizing mechanism; 210, semicircular ball; 220, slide bar; 230, limit plate; 240, connecting column; 250, counterweight; 260, level; 270, electric push rod; 280, block; 290, stop rod; 300, lifting mechanism; 310, connecting seat; 320, hydraulic rod; 330, top seat; 340, electric telescopic rod; 341, pressure sensor; 350, rectangular frame seat; 400, anti-tilt mechanism; 410, cylinder; 420, extension plate; 430, pressure sensitive switch. DETAILED DESCRIPTION
[0031] The technical solution of the present invention will be described clearly and completely below in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0032] In the description of the present invention, it should be noted that the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as limiting the present invention. In addition, the terms "first", "second", and "third" are used for descriptive purposes only, and cannot be understood as indicating or implying relative importance.
[0033] In the description of the present invention, it should be noted that, unless otherwise clearly specified and limited, the terms "installed", "connected", and "connected" should be understood in a broad sense, for example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection, or it can be indirectly connected through an intermediate medium, or it can be the internal communication of two components. For ordinary technicians in this field, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.
[0034] Examples, such as Figure 1-Figure 6As shown, a protective housing system suitable for extreme climate conditions includes a supporting mechanism 100 and a stabilizing mechanism 200, wherein the supporting mechanism 100 includes a mounting seat 110 and a mounting plate 130, wherein the medical device is mounted on the mounting plate 130, and the stabilizing mechanism 200 includes a hemispherical ball 210 hinged in the mounting seat 110, wherein the mounting plate 130 is connected to the top of the hemispherical ball 210, wherein a slide bar 220 is connected to the bottom of the hemispherical ball 210, wherein a counterweight block 250 is connected to the top of the slide bar 220, and a spirit level 260 is connected to the mounting seat 110, wherein when the spirit level 260 detects that the mounting seat 110 is close to being horizontal, the hemispherical ball 210 is locked to the mounting seat 110, and further, when the spirit level 260 detects that the inclination of the mounting seat 110 increases, the hemispherical ball 210 is unlocked from the mounting seat 110.
[0035] The working mechanism of the housing system provided in this embodiment is as follows:
[0036] The mounting base 110 of the shell system is placed on the ship and fixed with ropes, etc. The medical equipment is installed on the mounting plate 130. When the shaking amplitude of the ship increases, the semi-circular sphere 210 is unlocked on the mounting base 110. At this time, the semi-circular sphere 210 can roll in the mounting base 110, and the counterweight block 250 applies a downward force to the semi-circular sphere 210, so that the slide bar 220 is always in a vertical state, thereby preventing the medical equipment from shaking and causing damage and inconvenience in use. The setting of the spirit level 260 enables the tilt degree of the ship to be monitored, and the control system receives the data detected by the spirit level 260 to determine whether the ship is too tilted and the semi-circular sphere 210 needs to be unlocked.
[0037] Among the optional methods of this embodiment, the more preferred ones are:
[0038] The supporting mechanism 100 further includes a ball 120 . A plurality of the ball 120 are provided, and the plurality of ball 120 are all rollingly connected to the semicircular ball 210 .
[0039] The setting of the ball 120 prevents the semi-circular sphere 210 from directly contacting the mounting seat 110, thereby reducing the friction between the semi-circular sphere 210 and the mounting seat 110, so that the medical device on the mounting plate 130 can be close to a vertical state with reduced shaking.
[0040] Among the optional methods of this embodiment, the more preferred ones are:
[0041] The support mechanism 100 also includes a plurality of screws 140 threadedly connected to the mounting plate 130. After the medical device is placed on the mounting plate 130, the screws 140 are tightened to fix the medical device to the mounting plate 130. Two baffle rods 290 are provided on the mounting seat 110, and the two baffle rods 290 are respectively close to two adjacent sides of the mounting plate 130.
[0042] After the medical device is placed on the mounting plate 130, the screws 140 are tightened so that the multiple screws 140 apply pressure to the medical device together, thereby fixing the medical device on the mounting plate 130. The mounting plate 130 is designed according to actual needs and can be molded and set according to the bottom shape of the medical device to be fixed;
[0043] The setting of the blocking rod 290 limits the rotation range of the mounting plate 130, thereby preventing the semicircular ball 210 from driving the mounting plate 130 to rotate with the sliding rod 220 as the axis, so that the wiring harness of the medical device is not disconnected.
[0044] Among the optional methods of this embodiment, the more preferred ones are:
[0045] A connecting post 240 is disposed on the semicircular sphere 210 at the opposite side of the sliding rod 220 , and the mounting plate 130 is connected to the top of the connecting post 240 .
[0046] A hemispherical hole and a cylindrical hole with the same diameter as the hemispherical hole are opened inside the mounting seat 110, and the two holes are interconnected. The semi-sphere 210 is located inside the hemispherical hole, and the connecting column 240 is located inside the cylindrical hole. The diameter of the cylindrical hole is much larger than the connecting column 240, and the connecting column 240 has a sufficient length, thereby ensuring that the mounting plate 130 can swing at a larger angle range relative to the mounting seat 110, so as to cope with the situation where the ship has a high degree of inclination.
[0047] Regarding the structure of the stabilizing mechanism 200, specifically:
[0048] The stabilizing mechanism 200 also includes two electric push rods 270, which are symmetrically connected to the mounting base 110, and the ends of the two electric push rods 270 are connected to a block 280. When the level 260 detects that the mounting base 110 is close to horizontal, the two electric push rods 270 are extended so that the two blocks 280 are engaged with the semi-circular sphere 210. When the level 260 detects that the inclination of the mounting base 110 increases, the two electric push rods 270 are shortened so that the two blocks 280 are away from the semi-circular sphere 210.
[0049] When the control system receives the high inclination detected by the level meter 260, it will control the electric push rod 270 to shorten, so that the block 280 is away from the semi-circular ball 210. At this time, the lock of the semi-circular ball 210 is released, so that it can roll relative to the mounting seat 110. When the inclination data detected by the level meter 260 continues to not increase, the surface of the mounting plate 130 and the surface of the mounting seat 110 tend to be parallel. At this time, the electric push rod 270 is extended, so that the block 280 is clamped on the semi-circular ball 210.
[0050] The hemispherical 210 has an arc surface and a plane surface, the clamping block 280 is clamped on the plane of the hemispherical 210, and an inclination angle is set on the edge of the lower surface of the clamping block 280 close to the hemispherical 210 to ensure that the clamping block 280 will not be obstructed when sliding onto the plane of the hemispherical 210, thereby ensuring that the electric push rod 270 can drive the mounting plate 130 and the mounting seat 110 to be in a parallel state after extending.
[0051] Among the optional methods of this embodiment, the more preferred ones are:
[0052] The stabilizing mechanism 200 further includes a limit plate 230 connected to the bottom end of the slide bar 220 , and a counterweight 250 is slidably connected to the slide bar 220 . When the counterweight 250 moves down the slide bar 220 to a maximum stroke, the limit plate 230 abuts against the counterweight 250 .
[0053] When the semi-circular sphere 210 is unlocked, the mounting seat 110 drives the semi-circular sphere 210 to move upward, so that the sliding rod 220 slides up on the counterweight block 250. When the upper surface of the limit plate 230 abuts against the counterweight block 250, the mounting seat 110 continues to move upward, so that the counterweight block 250 is driven to separate from the lower supporting surface. At this time, the semi-circular sphere 210 can roll relative to the mounting seat 110, so that when the ship shakes, the medical equipment will not shake significantly.
[0054] Regarding the structure of the lifting mechanism 300, specifically:
[0055] The lifting mechanism 300 includes four connecting seats 310 connected to the four corners of the mounting seat 110, and two connecting seats 310 are connected to hydraulic rods 320. The output end of the hydraulic rod 320 is connected to a rectangular frame seat 350. When the semicircular ball 210 is unlocked on the mounting seat 110, the hydraulic rod 320 extends. When the hydraulic rod 320 extends, the sliding rod 220 slides up on the counterweight block 250 and drives the counterweight block 250 away from the lower contact surface through the limit plate 230.
[0056] When the control system senses through the spirit level 260 that the ship is shaking at a low amplitude, it does not control the hydraulic rod 320 to extend. At this time, the distance between the mounting seat 110 and the ground is low, so that the height of the medical equipment from the ground is low, which is convenient for operation. When the ship is shaking at a high amplitude, the control system controls the hydraulic rod 320 to extend, so that the mounting seat 110 drives the medical equipment to rise, so that the height of the medical equipment from the ground increases, and the operating panel or other control parts of the medical equipment are raised, thereby reducing the probability of people or objects accidentally touching the operating panel or control parts of the medical equipment when the ship shakes.
[0057] Among the optional methods of this embodiment, the more preferred ones are:
[0058] The lifting mechanism 300 also includes four groups of electric telescopic rods 340, which are respectively connected to the four corners of the rectangular frame seat 350, and the output ends of the four hydraulic rods 320 are connected to the top seats 330, and the tops of the four groups of electric telescopic rods 340 are respectively connected to the four top seats 330; the upper surface of the limit plate 230 is connected to a pressure sensor 341, and when the ship rises and falls so that the counterweight block 250 is in an overweight state, the pressure on the pressure sensor 341 increases, so that the four groups of electric telescopic rods 340 are shortened, and when the ship descends so that the counterweight block 250 is in a weightless state, the pressure on the pressure sensor 341 decreases, so that the four groups of electric telescopic rods 340 are extended.
[0059] When the ship moves, it will not only shake, but also rise and fall. The rise and fall of the ship will also affect the use of medical equipment. When the ship rises and falls, the items on the ship alternate between overweight and weightless states. When the ship rises, due to the large mass of the counterweight block 250, the inertia of the counterweight block 250 is also large. At this time, the counterweight block 250 in the overweight state can cause a large pressure on the pressure sensor 341 on the upper surface of the limit plate 230. When the control system detects that the pressure sensor 341 is subjected to increased pressure, it will control the electric telescopic rod 340 to shorten, thereby alleviating the overweight state of the medical equipment. When the ship is lowered, the counterweight block 250 is in a weightless state. At this time, the pressure applied by the counterweight block 250 to the pressure sensor 341 is reduced, and then the control system controls the electric telescopic rod 340 to extend. Therefore, when the ship rises and falls, the electric telescopic rod 340 is adaptively extended and retracted to reduce the vibration of the medical equipment in the vertical direction.
[0060] Regarding the structure of the anti-tilt mechanism 400, specifically:
[0061] The anti-tilt mechanism 400 includes an extension plate 420 slidably connected to four sides of the rectangular frame seat 350. When the swing angle of the semicircular ball 210 increases, the extension plate 420 located on the opposite side of the mounting plate 130 is extended.
[0062] In order to improve the contact stability between the rectangular frame seat 350 and the ground, when the swing angle of the hemispherical sphere 210 increases, the tipping tendency of the rectangular frame seat 350 relative to the ship increases. At this time, the extension plate 420 on the opposite side of the swing direction of the mounting plate 130 is extended to further support the rectangular frame seat 350, thereby improving the contact stability between the rectangular frame seat 350 and the ship.
[0063] Among the optional methods of this embodiment, the more preferred ones are:
[0064] The anti-tilt mechanism 400 also includes four pressure-sensitive switches 430 disposed on the mounting seat 110. The four sides of the rectangular frame seat 350 are respectively connected to four cylinders 410 for driving the four extension plates 420 to slide. The four pressure-sensitive switches 430 respectively control the extension and retraction of the cylinders 410 on the opposite sides.
[0065] When the mounting plate 130 swings to the maximum angle, the lower surface of the mounting plate 130 can contact one or two of the pressure-sensitive switches 430. At this time, the pressurized pressure-sensitive switch 430 controls the cylinder 410 on the opposite side to extend, so that the cylinder 410 drives the corresponding extension plate 420 to extend, forming a stable support for the rectangular frame seat 350.
[0066] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or replace some or all of the technical features therein with equivalents. However, these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.
Claims
1. A protective housing system suitable for extreme climatic conditions, characterized by: The invention comprises a supporting mechanism (100) and a stabilizing mechanism (200), wherein the supporting mechanism (100) comprises a mounting seat (110) and a mounting plate (130), wherein the medical device is mounted on the mounting plate (130), and the stabilizing mechanism (200) comprises a semicircular ball (210) hingedly connected to the mounting seat (110), wherein the mounting plate (130) is connected to the top of the semicircular ball (210), and a sliding rod (220) is connected to the bottom of the semicircular ball (210). A counterweight block (250) is connected to the sliding rod (220), and a level (260) is connected to the mounting seat (110). When the level (260) detects that the mounting seat (110) is close to horizontal, the semi-circular ball (210) is locked to the mounting seat (110); and when the level (260) detects that the inclination of the mounting seat (110) increases, the semi-circular ball (210) is unlocked from the mounting seat (110).
2. The protective housing system suitable for extreme climate conditions according to claim 1, characterized in that: The support mechanism (100) further comprises a ball (120), a plurality of the ball (120) are provided, and the plurality of ball (120) are all rollingly connected to the semicircular ball (210).
3. The protective housing system suitable for extreme climate conditions according to claim 2, characterized in that: The support mechanism (100) further comprises a plurality of screw rods (140) threadedly connected to the mounting plate (130); after the medical device is placed on the mounting plate (130), the screw rods (140) are tightened so that the medical device is fixedly connected to the mounting plate (130); Two blocking rods (290) are arranged on the mounting seat (110), and the two blocking rods (290) are respectively close to two adjacent sides of the mounting plate (130).
4. The protective housing system suitable for extreme climate conditions according to claim 3, characterized in that: A connecting column (240) is provided on the semicircular sphere (210) at the opposite side of the sliding rod (220), and the mounting plate (130) is connected to the top of the connecting column (240).
5. The protective housing system suitable for extreme climate conditions according to claim 4, characterized in that: The stabilizing mechanism (200) further comprises two electric push rods (270), the two electric push rods (270) are symmetrically connected to the mounting seat (110), and the ends of the two electric push rods (270) are both connected to a clamping block (280), and when the level (260) detects that the mounting seat (110) is close to horizontal, the two electric push rods (270) are both extended so that the two clamping blocks (280) are both clamped on the semicircular sphere (210), and when the level (260) detects that the inclination degree of the mounting seat (110) increases, the two electric push rods (270) are both shortened so that the two clamping blocks (280) are both away from the semicircular sphere (210).
6. The protective housing system suitable for extreme climate conditions according to claim 5, characterized in that: The stabilizing mechanism (200) further comprises a limit plate (230) connected to the bottom end of the sliding rod (220), the counterweight block (250) being slidably connected to the sliding rod (220), and when the counterweight block (250) moves down the sliding rod (220) to a maximum stroke, the limit plate (230) abuts against the counterweight block (250).
7. The protective housing system suitable for extreme climate conditions according to claim 6, characterized in that: The lifting mechanism (300) further comprises four connecting seats (310) connected to the four corners of the mounting seat (110), two connecting seats (310) are connected to a hydraulic rod (320), the output end of the hydraulic rod (320) is connected to a rectangular frame seat (350), when the semicircular ball (210) is unlocked on the mounting seat (110), the hydraulic rod (320) is extended, when the hydraulic rod (320) is extended, the sliding rod (220) slides up on the counterweight block (250) and drives the counterweight block (250) away from the lower contact surface through the limiting plate (230).
8. The protective housing system suitable for extreme climate conditions according to claim 7, characterized in that: The lifting mechanism (300) further comprises four groups of electric telescopic rods (340), the four groups of electric telescopic rods (340) being respectively connected to the four corners of the rectangular frame seat (350), the output ends of the four hydraulic rods (320) being respectively connected to a top seat (330), and the tops of the four groups of electric telescopic rods (340) being respectively connected to the four top seats (330); The upper surface of the limiting plate (230) is connected to a pressure sensor (341). When the ship rises and falls so that the counterweight block (250) is in an overweight state, the pressure on the pressure sensor (341) increases, so that the four groups of electric telescopic rods (340) are shortened. When the ship descends so that the counterweight block (250) is in a weightless state, the pressure on the pressure sensor (341) decreases, so that the four groups of electric telescopic rods (340) are extended.
9. The protective housing system suitable for extreme climate conditions according to claim 8, characterized in that: It also includes an anti-tilt mechanism (400), which includes an extension plate (420) slidably connected to the four sides of the rectangular frame seat (350). When the swing angle of the semicircular ball (210) increases, the extension plate (420) located on the opposite side of the swing of the mounting plate (130) is extended.
10. The protective housing system suitable for extreme climate conditions according to claim 9, characterized in that: The anti-tilt mechanism (400) further comprises four pressure-sensitive switches (430) arranged on the mounting seat (110); the four sides of the rectangular frame seat (350) are respectively connected to four cylinders (410) for driving the four extension plates (420) to slide; the four pressure-sensitive switches (430) respectively control the extension and retraction of the cylinders (410) on the opposite sides.