PRESSURE-RESISTANT HULL FOR A SUBMERSIBLE AND DESIGN METHOD THEREFOR
20230080177 · 2023-03-16
Inventors
- Jian ZHANG (Zhenjiang, CN)
- Rui WANG (Zhenjiang, CN)
- Chenyang DI (Zhenjiang, CN)
- Wenxian TANG (Zhenjiang, CN)
- Xin WANG (Zhenjiang, CN)
- Baoji YIN (Zhenjiang, CN)
- Shijie SU (Zhenjiang, CN)
- Yongmei ZHU (Zhenjiang, CN)
Cpc classification
B63B3/13
PERFORMING OPERATIONS; TRANSPORTING
G06F2119/14
PHYSICS
International classification
Abstract
A pressure-resistant hull for a submersible, includes unit hulls, reinforcing ribs, connecting channels, and closure heads. A plurality of unit hulls are provided, and are sequentially strung together spiralling upward or spiralling downward, the closure heads being arranged on the unit hulls at the first position and the last position respectively, an observation window being provided on each unit hull respectively, adjacent two unit hulls in a horizontal direction being respectively connected by means of a reinforcing rib, and at least two connecting channels being provided between adjacent two rings of the unit hulls in the vertical direction. The design method includes using a spiral joining structure to facilitate organic adjustment of the number of unit hulls, thus having better utilization of space and aiding to greatly expand the space. The sensitivity of the limit load to defects is low, increasing axial rigidity, improving the overall pressure-resistive ability.
Claims
1. A pressure-resistant hull for a submersible, wherein the pressure-resistant hull comprises unit hulls, reinforcing ribs, connecting channels, and closure heads, a plurality of the unit hulls are arranged, and are sequentially strung together spiralling upward or spiralling downward, the closure heads are arranged on the unit hulls at a first position and a last position respectively, each unit hull is provided with an observation window respectively, each adjacent two unit hulls in a horizontal direction are respectively connected to each other by means of one of the reinforcing ribs, and at least two of the connecting channels are arranged between each adjacent two turns of the unit hulls in a vertical direction.
2. The pressure-resistant hull for the submersible according to claim 1, wherein the unit hulls are in a hollow spherical hull-shaped structure, and an outer surface of the hollow spherical hull-shaped structure is provided with two connecting tangent planes arranged opposite to each other.
3. The pressure-resistant hull for the submersible according to claim 1, wherein two of the connecting channels are arranged between each adjacent two turns of the unit hulls, and are respectively arranged at an initial position and a middle position in a spiralling direction between the adjacent two turns of the unit hulls.
4. The pressure-resistant hull for the submersible according to claim 3, wherein two unit hulls at first positions of the each two adjacent turns of the unit hulls are connected to each other through one of the connecting channels, and two unit hulls at middle positions are connected to each other through another one of the connecting channels.
5. The pressure-resistant hull for the submersible according to claim 1, wherein a number of turns of a spiral arrangement of the unit hulls is at least three.
6. The pressure-resistant hull for the submersible according to claim 1, wherein thereinforcing ribs are in an annular structure.
7. The pressure-resistant hull for the submersible according to claim 1, wherein a material of the unit hulls is Carbon Fiber Reinforced Plastic.
8. The pressure-resistant hull for the submersible according to claim 1, wherein a material of the unit hulls is ultra-high-strength steel.
9. The pressure-resistant hull for the submersible according to claim 8, wherein a strength of the unit hulls is greater than 1000 MPa.
10. A method for designing the pressure-resistant hull for the submersible according to claim 1, comprising following steps: Step one, setting parameters for an equivalent annular hull: the parameters for the equivalent annular hull include a rotation radius R, an annulus-section radius r, a working pressure P.sub.s, an elastic modulus E and a Poisson's ratio μ; Step two, calculating a thickness t of the pressure-resistant hull according to a jordan formula, a calculation formula of which is as follows:
D.sub.r=2(r.sub.1+t.sub.1) sin α,
d.sub.r=D.sub.r−2t.sub.r, and where an intersecting angle is α, 30°≤α≤70°, and a thickness of the annular reinforcing ribs is t.sub.r; and Step eight, calculating a width L.sub.r of the reinforcing ribs, through a radial displacement formula of an entire spherical hull under a hydrostatic pressure:
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038] 1. closure head; 2. unit hull; 3. reinforcing rib; 4. observation window; 5. connecting channel.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0039] The present disclosure will be further clarified below in conjunction with the accompanying drawings and specific embodiments. It should be understood that those embodiments are only used to illustrate the present invention and not to limit the scope of the present disclosure.
[0040] As illustrated in
[0041] Each unit hull 2 is a hollow spherical hull-shaped structure, and the material of the unit hulls 2 is Carbon Fiber Reinforced Plastic or ultra-high-strength steel having the strength greater than 1000 MPa. The outer surface of the hollow spherical hull-shaped structure is provided with two connecting tangent planes arranged opposite to each other. A plurality of the unit hulls 2 are arranged, and are sequentially strung together spiralling upward or spiralling downward. The connecting tangent planes on two adjacent unit hulls 2 in the horizontal direction form a joint and are connected to each other by a reinforcing rib 3 at the joint. The reinforcing rib 3 is in an annular shape. The closure heads 1 are arranged on a unit hull 2 at a first position and a unit hull 2 at a last position respectively, which are configured to close the connecting tangent planes without a joint. The number of turns of the spiral arrangement of the unit hulls is at least three.
[0042] Each unit hull 2 is provided with an observation window 4 respectively. At least two connecting channels 5 are arranged between each adjacent two turns of the unit hulls 2 in a vertical direction. For example, two connecting channels 5 are provided. Two unit hulls 2 at the initial positions of adjacent two turns of the unit hulls in a vertical direction are connected to each other through one connecting channel 5, and two unit hulls 2 in the middle positions are connected through the other connecting channel 5.
[0043] Each unit hull of the pressure-resistant hull is a separate individual space, while the unit hulls on each turn (layer) are in communication with one another, so that each turn (layer) forms a larger individual space. Moreover, each turn (layer) is communicatively connected to each other through a connecting channel, so that each turn (layer) is in communication with one another, thereby forming the pressure-resistant hull.
[0044] The present pressure-resistant hull adopts the spiral intersecting structure to facilitate the organic adjustment of the number of the unit hulls, which has the better space utilization rate and is advantageous to significantly expand the space. Compared with a cylindrical hull and a common multi-sphere intersecting hull, the extreme load has low sensitivity to defects, thereby increasing the axial rigidity and improving the total pressure resistance, which has high safety. By adopting the method of connecting multiple sections of the identical hulls through flanges, the process is relatively simple, and the manufacturing cost is reduced.
[0045] As illustrated in
[0046] In Step one, parameters for an equivalent annular hull are set.
[0047] The parameters for the equivalent annular hull include a rotation radius R, an annulus-section radius r, a working pressure P.sub.s, an elastic modulus E and a Poisson's ratio μ, where E=200 Gpa, μ=0.291, R=110 mm, r=40 mm, and P.sub.s=4 Mpa.
[0048] Step two, a thickness t of the pressure-resistant hull is calculated according to a jordan formula, a calculation formula of which is as follows:
whereby t=1.5012 mm is solved.
[0049] In Step three, parameters for the unit hulls 2 are set.
[0050] The set parameters for the unit hulls includes an elastic modulus E.sub.1, a Poisson's ratio μ.sub.1, a thickness t of the spherical hull, and a radius r.sub.1 of the spherical hull, where E.sub.1=E, μ.sub.1=t.sub.1=t, and r1=r.
[0051] In Step four, parameters for the reinforcing ribs 3 are designed.
[0052] The parameters for the reinforcing ribs 3 include a radius R.sub.1 of a spiral line, a pitch B of the spiral line, where R1=R, and B>2r, taking B=85 mm.
[0053] In Step five, a rotation angle θ is calculated according to the spiral line equation, a calculation formula of which is:
[0054] where a=R.sub.1,
wherein the number of turns of the spiral arrangement is at least three, where θ=36°.
[0055] In Step six, the number n of the unit hulls 2 per turn is calculated according to the rotation angle θ said in Step five, a calculation formula of which is:
where when θ=36°, n=10.
[0056] In Step seven, an external diameter D.sub.r and an inner diameter d.sub.r of the reinforcing ribs 3 are calculated, a calculation formula of which is:
D.sub.r=2(r.sub.1+t.sub.1) sin α, and
d.sub.r=D.sub.r−2t.sub.r
where the intersecting angle is α, the intersecting angle α is an important geometric parameter for a multi-sphere intersecting pressure-resistant hull. According to the experiment of Kloppel and Jungbluth, 30°≤α≤70°, and a thickness of the reinforcing ribs 3 is t.sub.r, where α=45°, and tr=15 mm, Dr=58.6915 mm, and dr=28.6915 mm are solved.
[0057] The buckling behavior of an entire spherical hull depends on t/R, while the buckling behavior of a multi-sphere intersecting pressure-resistant hull is further constrained by the annular reinforcing ribs. The thickness and length of the reinforcing ribs have a great influence on the multi-sphere intersection. Therefore, in order to ensure that the mechanical properties and stability of the spherical hulls of the multi-sphere intersecting pressure-resistant hull are not affected after the intersection, the design concept of deformation coordination shall be adopted when designing the multi-sphere intersection, the objective of which is to make the deformation of the part of the annular reinforcing ribs in the intersection part consistent with the deformation of the entire spherical hull.
[0058] In Step eight, a width L.sub.r of the reinforcing ribs is calculated according to deformation coordination theory.
[0059] Through a radial displacement formula of the entire spherical hull under a hydrostatic pressure:
where P.sub.s is a maximum working pressure of the pressure-resistant hull at a working depth,
E is the Elastic modulus of the pressure-resistant hull material, which is equal to the value of the above-mentioned parameter;
μ is the Poisson's ratio of the pressure-resistant hull material, which is equal to the value of the above-mentioned parameter;
a formula for the pressure exerted on the reinforcing ribs 3:
and
a displacement formula at the external diameter of the reinforcing ribs 3:
and in order to meet the requirements for a deformation coordination between the spherical hulls and the reinforcing ribs 3, to realise δ.sub.s=δ.sub.r, a calculation formula of L.sub.r is:
[0060] The parameters are substituted to solve L.sub.r=4.8689 mm.
[0061] Comparing the pressure-resistant hull of the present disclosure with a common spiral pressure-resistant hull:
[0062] 1. Geometric Dimensions Selection:
[0063] The geometric dimensions of the pressure-resistant hull obtained from the above-mentioned design method, are shown in the following table:
TABLE-US-00001 Number of Model n B(mm) turns R.sub.1(mm) r.sub.1(mm) t.sub.1(mm) t.sub.r(mm) L.sub.r(mm) α (°) Spiral pressure- 10 85 3 110 40 1.5012 15 4.8689 45 resistant hull
[0064] For the common spiral pressure-resistant hull, still taking the spiral-line radius R.sub.2=R=110 mm, B=85 mm, the number of turns is 3 turns, and according to the principle of equal volume and thickness: t.sub.2=t.sub.1=1.5012 mm, and r.sub.2=35.7613 mm are solved.
[0065] The geometric dimensions of the common spiral pressure-resistant hull are shown in the following table:
TABLE-US-00002 Number of Model R.sub.2(mm) turns r.sub.2(mm) t.sub.2(mm) B(mm) Common spiral 110 3 35.7613 1.5012 85 pressure-resistant hull
[0066] 2. Comparison of Bearing Capacities
[0067] In the embodiment, the bearing capacity of the pressure-resistant hull of the present disclosure solved by adopting the following method is obviously higher than that of the common spiral pressure-resistant hull, and the specific solution method is as follows.
[0068] The elastic modulus E of the pressure-resistant hull material=200 Gpa, the Poisson's ratio μ=0.291, and the buckling strength σ.sub.s=680 Mpa.
[0069] In Step one, three-dimensional models are created, that is, three-dimensional surface modeling is performed by utilizing the three-dimensional modeling software SolidWorks for the pressure-resistant hull of the present disclosure and the common spiral pressure-resistant hull.
[0070] In Step two, meshes are divided, that is, the meshes of the three-dimensional models in Step one are divided by adopting the software ansa, where the meshes are in a quadrilateral shape, and the number of the meshes is about 10000.
[0071] In Step 3, the critical pressure is solved, that is, by adopting the software Abaqus and calculating through the Riks method, the meshes in each three-dimensional model in Step two are compared, where the boundary conditions are classical three-point boundary conditions, and the detailed solving parameters of the Riks method are set as follows: the initial increment is 0.2, the minimum increment is 10{circumflex over ( )}-50, the maximum increment is 0.5, and the maximum increment step number is 1000.
[0072] The bearing capacity calculation results are as follows:
TABLE-US-00003 Model Riks (MPa) Common spiral pressure-resistant hull 9.79065 Spiral pressure-resistant hull 42.9378
[0073] It can be seen from the above table that the bearing capacity of the present disclosure is significantly higher than that of the common spiral pressure-resistant hull.